Heating faucet
By placing the control components in the water outlet of the heated water faucet, combined with a turbine Hall element and a display screen assembly, the problems of insufficient hot water and large size of electric heated water faucets in winter are solved, achieving aesthetically pleasing, efficient temperature control and safe use.
Patent Information
- Application Number
- CN202520074290.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-13
- Publication Date
- 2026-01-09
- Estimated Expiration
- 2035-01-13
AI Technical Summary
Existing electric water heaters are not hot enough in winter, are bulky and unattractive, and are inconvenient to operate.
Design a heated water faucet with control components located at the outlet of both the cold and hot water pipes, away from the heating element and situated in the upper middle part. The heating element is located at the bottom. The faucet combines a turbine assembly and a Hall element to achieve non-contact water flow detection, while the display assembly provides temperature adjustment and real-time feedback.
The faucet structure has been simplified and aesthetically pleasing, improving heating efficiency and temperature control accuracy, reducing energy consumption, avoiding the risks of dry burning and scalding, and enhancing user experience and equipment lifespan.
Smart Images

Figure CN223782165U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of water outlet equipment technology, and in particular to a heated water tap. Background Technology
[0002] Currently, electric water heaters mainly come in several forms, including electric hot water faucets and mini water heaters. Common electric hot water faucets suffer from problems in winter due to low inlet water temperature, resulting in insufficient hot water output. Furthermore, the heating element's power is limited by size. Since the heating and control mechanisms are internal, electric hot water faucets are bulky and unsightly when placed on the sink. Mini water heaters, on the other hand, need to be installed under the sink, requiring operation of the water temperature display and settings. Based on the existing problems with electric water heaters, a new type of heated water faucet is needed. Utility Model Content
[0003] The technical problem to be solved by this utility model embodiment is to provide a water heating faucet that simplifies and beautifies the structure of the water heating faucet.
[0004] To solve the above-mentioned technical problems, this utility model provides a heated water faucet, which includes: a water circuit assembly, a control assembly, and a heating assembly. The water circuit assembly includes an inlet pipe, a cold water pipe, a hot water pipe, and an outlet pipe. The inlet pipe has an inlet, a first outlet, and a second outlet. The first outlet is connected to the inlet of the cold water pipe, and the second outlet is connected to the inlet of the hot water pipe. The outlets of the cold water pipe and the hot water pipe are connected to the outlet pipe via a tee fitting in the control assembly. The heating assembly heats the hot water pipe. The control assembly has an off mode, a cold water mode, and a hot water mode.
[0005] In one feasible implementation, when the control component is in the off mode, neither the outlet of the cold water pipe nor the outlet of the hot water pipe is connected to the outlet pipe; when the control component is in the cold water mode, only the outlet of the cold water pipe is connected to the outlet pipe; when the control component is in the hot water mode, only the outlet of the hot water pipe is connected to the outlet pipe, and the heating component is activated to start heating when the water flows from the inlet through the second outlet of the inlet pipe, and then flows out from the outlet pipe.
[0006] In one feasible implementation, the heated water tap further includes a fixing member, with the water inlet pipe and the heating component disposed on one side of the fixing member along a first direction, and the control component and the water outlet pipe disposed on the other side of the fixing member along the first direction.
[0007] In one feasible implementation, the first direction is parallel to the vertical direction, the water inlet pipe is arranged in the vertical direction, the water inlet is located at the lower end of the water inlet pipe, the first outlet is located at the top end of the water inlet pipe, and the second outlet is located between the water inlet and the first outlet; the cold water pipe is arranged in the vertical direction, the lower end of the cold water pipe is located below the fixing member and communicates with the first outlet, and the top end of the cold water pipe is communicated with the control component.
[0008] In one feasible implementation, the hot water pipeline includes an inlet end, a heating end, and an outlet end, wherein the diameter of the heating end is larger than that of the outlet end; the outlet end is arranged vertically, with its upper end connected to the control component and its lower end located below the fixing member and connected to the top of the heating end; the heating end is a hollow cylinder, and the inlet pipeline is sleeved inside the heating end along the vertical direction, forming a concentric sleeve with the heating end, with the inlet located below the heating end; the second outlet is located inside the heating end and connected to the inlet end, and the inlet end is connected to the hollow bottom of the heating end, for guiding the water flowing in from the second outlet from the bottom of the heating end into the interior of the heating end.
[0009] In one feasible implementation, the fastener includes a left connector cover and a right connector cover, which are arranged symmetrically. One end of the left connector cover and the right connector cover are hinged together, and the other end is locked by a snap-fit connection.
[0010] In one feasible implementation, a turbine assembly and a Hall element are provided between the second outlet of the water inlet pipe and the inlet of the hot water pipe. The turbine assembly is magnetically connected to the Hall element, and the Hall element is electrically connected to the heating assembly. When water flows through the turbine assembly, the turbine assembly starts, triggering the Hall element to generate an electrical signal, thereby activating the heating assembly.
[0011] In one feasible implementation, the control component includes a valve core.
[0012] In one feasible implementation, the control component is further provided with a display screen component.
[0013] In one feasible implementation, the display assembly includes a display interface electrically connected to the heating assembly and temperature adjustment buttons.
[0014] Implementing this utility model has the following beneficial effects:
[0015] The heated water faucet provided in this embodiment can provide hot or cold water by adjusting the mode of the control component. Since the control component is located at the outlet end of the cold and hot water pipes instead of the inlet end, it can be positioned away from the heating component. This allows the control component to be located in the upper middle part of the heated water faucet, while the heating component is located at the lower part, simplifying and improving the shape and structure of the water pipes.
[0016] It should be understood that the above general description and the following detailed description are exemplary and explanatory only, and do not limit this application. Attached Figure Description
[0017] The accompanying drawings, which are incorporated in and form part of this specification, illustrate embodiments consistent with this application and, together with the description, serve to explain the principles of this application, and do not constitute an undue limitation of this application.
[0018] Figure 1 This is a cross-sectional view of a heated water tap shown in some embodiments of this application;
[0019] Figure 2 This is a three-dimensional structural schematic diagram of a water heater faucet shown in some embodiments of this application;
[0020] Figure 3 yes Figure 2 A magnified view of part A in the image;
[0021] Figure 4 This is a simplified schematic diagram of a water heater faucet shown in some other embodiments of this application;
[0022] Figure 5 This is a partial exploded view of a water heater faucet shown in some embodiments of this application.
[0023] The reference numerals in the figure:
[0024] 10-Water inlet pipe, 11-Water inlet, 12-First outlet, 13-Second outlet;
[0025] 20-Hot water pipe, 21-Inlet end, 22-Heating end, 23-Outlet end;
[0026] 40 - Cold water piping;
[0027] 50-Control component; 51-Valve core; 52-Display assembly; 521-Display interface; 522-Temperature adjustment key; 53-Operating indicator light;
[0028] 60 - Heating component;
[0029] 30-Fixed component, 32-Internal thread, 33-Snap fastener, 34-Left cover of connector, 35-Right cover of connector, 36-Wire hole, 37-Fixed groove of connector, 38-Connecting water pipe;
[0030] 71-Turbine assembly, 72-Hall element;
[0031] 80 - Water outlet pipe, 81 - Water outlet elbow;
[0032] 901 - Working platform, 902 - Power supply, 903 - Power cord, 904 - Control board, 905 - First fixing nut, 906 - Second fixing nut, 907 - Third fixing nut. Detailed Implementation
[0033] To make the above-mentioned objects, features, and advantages of this utility model more apparent and understandable, the specific embodiments of this utility model will be described in detail below with reference to the accompanying drawings. Many specific details are set forth in the following description to provide a full understanding of this utility model. However, this utility model can be implemented in many other ways different from those described herein, and those skilled in the art can make similar modifications without departing from the spirit of this utility model. Therefore, this utility model is not limited to the specific embodiments disclosed below.
[0034] In the description of this utility model, it should be understood that the directional descriptions, such as up, down, front, back, left, right, etc., indicate the directional or positional relationship based on the directional or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this utility model and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this utility model.
[0035] In the description of this utility model, "several" means one or more, "multiple" means two or more, "greater than," "less than," and "exceeding" are understood to exclude the stated number, while "above," "below," and "within" are understood to include the stated number. The use of "first" and "second" in the description is merely for distinguishing technical features and should not be construed as indicating or implying relative importance, or implicitly indicating the number of indicated technical features, or implicitly indicating the order of the indicated technical features.
[0036] In the description of this utility model, unless otherwise explicitly defined, terms such as "setting," "installation," and "connection" should be interpreted broadly, and those skilled in the art can reasonably determine the specific meaning of the above terms in this utility model in conjunction with the specific content of the technical solution.
[0037] In the description of this utility model, the terms "one embodiment," "some embodiments," "illustrative embodiment," "example," "specific example," or "some examples," etc., refer to specific features, structures, materials, or characteristics described in connection with that embodiment or example, which are included in at least one embodiment or example of this utility model. In this specification, the illustrative expressions of the above terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples.
[0038] Please refer to Figures 1 to 5 This application provides a heated water faucet capable of providing cold or hot water as needed. The heated water faucet includes a water circuit assembly, a control assembly 50, and a heating assembly 60. The water circuit assembly includes an inlet pipe 10, a cold water pipe 40, a hot water pipe 20, and an outlet pipe 80. The inlet pipe 10 has an inlet 11, a first outlet 12, and a second outlet 13. The first outlet 12 is connected to the inlet 11 of the cold water pipe 40. The second outlet 13 is connected to the inlet 11 of the hot water pipe 20. The outlets of the cold water pipe 40 and the hot water pipe 20 are connected to the outlet pipe 80 via a tee fitting in the control assembly 50. The heating assembly 60 is used to heat the hot water pipe. The control assembly 50 has three modes: an off mode, a cold water mode, and a hot water mode. The heated water faucet provided in this application embodiment can provide hot or cold water by adjusting the mode of the control assembly. Because the control components are located at the outlet of the cold water and hot water pipes instead of the inlet, the control components can be placed far away from the heating components. This allows the control components to be positioned in the upper middle part of the faucet, while the heating components are located at the lower part of the faucet, simplifying and beautifying the shape and structure of the water outlet pipes.
[0039] Furthermore, when the control component 50 is in the off mode, neither the outlet of the cold water pipe 40 nor the outlet of the hot water pipe 20 is connected to the outlet pipe 80; when the control component 50 is in the cold water mode, only the outlet of the cold water pipe 40 is connected to the outlet pipe 80; when the control component 50 is in the hot water mode, only the outlet of the hot water pipe 20 is connected to the outlet pipe 80. Water flows from the inlet 11 through the second outlet 13 of the inlet pipe 10, activating the heating component 60 to begin heating, and then flows out from the outlet pipe 80. Thus, by controlling the connection status of the inlet pipe, cold water pipe, hot water pipe, and outlet pipe through the control component, the output of cold or hot water can be controlled.
[0040] The heated water faucet provided in this embodiment can provide hot or cold water by adjusting the mode of the control component 50. Since the control component 50 is located at the outlet 23 of the cold water pipe 40 and the hot water pipe 20 instead of the inlet, it can be positioned away from the heating component 60. This allows the control component 50 to be located in the upper middle part of the heated water faucet, while the heating component 60 is located at the lower part, simplifying and improving the shape and structure of the water outlet pipe 80.
[0041] In one feasible implementation, the heated water faucet further includes a fixing member 30. The water inlet pipe 10 and the heating component 60 are disposed on one side of the fixing member 30 along a first direction, and the control component 50 and the water outlet pipe 80 are disposed on the other side of the fixing member 30 along the first direction. When the heated water faucet needs to be installed, the fixing member 30 is used to connect the heated water faucet to the device to be installed. Further, if the device to be installed, which the heated water faucet is fixed to in the working environment, is a working platform 901, and the first direction is parallel to the vertical direction, then when the heated water faucet is installed on the working platform 901, the water inlet pipe 10 and the heating component 60 are located below the working platform 901, and the control component 50 is disposed above the working platform 901. That is, the water inlet pipe 10 and the heating component 60 are disposed on the same side, while the control component 50 is disposed on the opposite side. The work platform 901 mentioned here can be a water demand platform in work environments such as a sink in a home kitchen or bathroom, a laboratory or medical institution, or a countertop with instant hot water requirements, such as a tea table. These work platforms are often horizontal. When a hot water faucet is installed on these work platforms 901, the exposed part is usually the control component 50, while the water inlet pipe 10 and the heating component 60 are hidden below or inside the work platform 901. The operator or user adjusts the control component 50 to put the hot water faucet into different working modes. The hot water faucet is aesthetically pleasing and easy to operate. At the same time, because the water inlet pipe 10 and the heating component 60 are hidden below or inside the work platform 901, there is a wider structural space. The heating range can be expanded according to needs, or a higher-power heating element can be used to increase the heating speed and temperature, thereby improving the instant hot water effect.
[0042] In one feasible implementation, the fixing member 30 is disposed between the control component 50 and the heating end 22 of the hot water pipe 20. The top of the fixing member 30 is assembled to the bottom of the working platform 901 by a first fixing nut 905, and the bottom of the fixing member 30 is connected to the bottom of the heating end 22 by a second fixing nut 906. Further, a third fixing nut 907 is provided between the fixing member 30 and the assembly platform. The third fixing nut 907 is used to fix the control component 50 and the connected portions of the cold water pipe 40 and hot water pipe 20 to the working platform 901. Further, as... Figure 5 As shown, the fixing component 30 includes a left connector cover 34 and a right connector cover 35. The left connector cover 34 and the right connector cover 35 are symmetrical. One end of the left connector cover 34 and the right connector cover 35 are hinged together, and the other end is connected and locked by a buckle 33. The fixing component 30 is provided with a wire hole 36. One end of the power cord 903 is connected to the heating end 22, and the other end passes through the wire hole 36 and enters the interior of the fixing component 30, and then passes out from the top of the fixing component 30. This is only one way of arranging the power cord 903. Other ways of arranging the power cord 903 can be set according to actual production and installation requirements. The upper part of the fixing member 30 is connected to the bottom external thread of the water outlet control end through the internal thread 32. The bottom of the fixing member 30 is provided with a connecting member fixing groove 37. The connecting member fixing groove 37 is assembled on the top of the heating end 22. The cold water pipe and the hot water pipe are connected to the control component through the connecting water pipe 38. The connecting water pipe 38 is set in the cavity of the fixing member for easy installation.
[0043] In one feasible implementation, the water inlet pipe 10 is arranged along the vertical direction. The water inlet 11 is located at the lower end of the water inlet pipe 10. The first outlet 12 is located at the top of the water inlet pipe 10. The second outlet 13 is located between the water inlet 11 and the first outlet 12. The cold water pipe 40 is arranged along the vertical direction. The lower end of the cold water pipe 40 is located below the fixing member 30 and communicates with the first outlet 12. Alternatively, the lower end of the cold water pipe 40 is located below the working platform 901 and communicates with the first outlet 12. The top end of the cold water pipe 40 is communicated with the control component 50. This structure allows for top-level control of the hot water pipe 20.
[0044] In one feasible implementation, the hot water pipe 20 includes an inlet end 21, a heating end 22, and an outlet end 23. The diameter of the heating end 22 is larger than that of the outlet end 23. The outlet end 23 is arranged vertically, with its upper end connected to the control component 50 and its lower end located below the fixing member 30 and connected to the top of the heating end 22. Alternatively, the lower end of the outlet end 23 is located below the working platform 901 and connected to the top of the heating end 22. The heating end 22 is a hollow cylinder. The water inlet pipe 10 is sleeved inside the heating end 22 along the vertical direction, forming a concentric sleeve with the heating end 22. The water inlet 11 is located below the heating end 22, and the second outlet 13 is located inside the heating end 22 and connected to the inlet end 21. The inlet end 21 is connected to the hollow bottom of the heating end 22, used to guide the water flowing in from the second outlet 13 into the interior of the heating end 22 from the bottom. Furthermore, the heating end 22 and the inlet pipe 10 form a concentric sleeve: this design allows water to enter the heating end 22 through the inner pipe (i.e., the inlet pipe 10), while hot water is heated in the outer pipe (i.e., the heating end 22) and flows upward. This method effectively utilizes heat conduction, ensuring that the water is heated evenly as it flows through the heating end 22, thus improving heating efficiency. The diameter of the heating end 22 is larger than that of the outlet end 23: the larger diameter of the heating end 22 provides more internal space to accommodate the components required for heating water (such as electric heating rods or heat exchangers), and also increases the contact area between the water and the heating elements, contributing to faster and more uniform heating. The outlet end 23 is arranged vertically, with its upper end connected to the control component 50 and its lower end connected to the top of the heating end 22. This arrangement ensures that hot water can flow directly from the heating area to the point of use, reducing heat loss, and utilizes gravity to help the hot water drain, improving the system's response speed. The inlet end 21 is connected to the hollow bottom of the heating end 22. This design allows water to enter the heating end 22 from the bottom, be heated, and then flow out from the top. Since hot water is less dense than cold water, it naturally rises, forming a good natural circulation and further improving heating efficiency. This overall design can improve heating efficiency and reduce energy consumption. In addition, by fitting the inlet pipe 10 inside the heating end 22, it can also preheat the water when it comes out, further improving heating efficiency and reducing energy consumption. It also saves space, making it particularly suitable for installation in confined spaces, and avoids excessive heat loss due to an overly large structure.
[0045] In one feasible implementation, please refer to Figure 4 ,like Figure 4The structure shown can also achieve the aforementioned structural effects. The water inlet pipe 10 is arranged along the vertical direction. The water inlet 11 is located at the lower end of the water inlet pipe 10. The first outlet 12 is located at the top of the water inlet pipe 10. The second outlet 13 is located between the water inlet 11 and the first outlet 12. The cold water pipe 40 is arranged along the vertical direction. The lower end of the cold water pipe 40 is located below the fixing member and communicates with the first outlet 12. Alternatively, the lower end of the cold water pipe 40 is located below the working platform and communicates with the first outlet 12. The top end of the cold water pipe 40 communicates with the control component 50. The hot water pipe 20 is separated from the water inlet pipe 10. This structure allows the hot water pipe 20 to be independent, and the heating component 60 can heat the water externally or internally. The hot water pipe 20 has a large space. In addition, according to actual needs and design, the heating component 60 can be housed inside the hot water pipe 20 or located outside the hot water pipe 20.
[0046] In one feasible implementation, a turbine assembly 71 and a Hall element 72 are provided between the second outlet 13 of the water inlet pipe 10 and the inlet 11 of the hot water pipe 20. The turbine assembly 71 is magnetically connected to the Hall element 72, and the Hall element 72 is electrically connected to the heating assembly 60. When water flows through the turbine assembly 71, the turbine assembly 71 starts, triggering the Hall element 72 to generate an electrical signal, thereby activating the heating assembly 60. This non-contact design reduces potential points of failure due to mechanical wear or electrical connection problems. It achieves the conversion from mechanical motion (turbine rotation) to electrical signals (Hall voltage changes). When water flows through the turbine assembly 71, the turbine starts and triggers the Hall element 72 to generate an electrical signal, thereby activating the heating assembly 60. This means that the heating function is only activated when there is actual water flow, avoiding unnecessary energy consumption and improving the system's energy efficiency. Because the connection between the turbine assembly 71 and the Hall element 72 is magnetic rather than mechanical, this reduces physical friction between components, lowers the possibility of wear, and thus extends the service life of the equipment. Once water flow is detected, the system reacts quickly and initiates the heating process. This instant feedback mechanism helps maintain a stable water temperature output, improving the user experience. If no water flow is detected, the heating element 60 will not be triggered, effectively preventing dry burning and increasing system safety. This design typically employs a modular approach, making each component easy to disassemble and replace, simplifying maintenance and reducing repair costs. The system can be adjusted according to different application scenarios, such as changing the turbine size or the sensitivity of the Hall element 72, to adapt to different flow range requirements. Furthermore, the combination of the turbine assembly 71 and the Hall element 72 provides highly sensitive and accurate flow detection, allowing the heating power of the heating element 60 to be adjusted according to the water flow rate, saving energy.
[0047] In one feasible implementation, the water heater faucet is equipped with a control board 904. The control board 904 can be located on the side of the control component 50 or on the side of the water inlet pipe 10. The control board 904 is connected to the power supply 902 via a power cord 903. Furthermore, depending on actual safety needs, the power cord 903 of the water heater faucet can be connected to a socket on either the upper or lower side of the work platform 901, improving the installation applicability of the electric water heater faucet. Furthermore, the control board 904 is connected to a working indicator light 53 to indicate whether the electric water heater faucet is currently powered. This immediate visual feedback eliminates the need for users to confirm the device's operating mode through other means (such as touching hot water to sense the temperature), improving convenience and safety. For instant water heaters or other types of heating devices, the indicator light can provide a clear warning during the heating process, reminding those around to avoid contact with the hot water outlet or heating area, thereby reducing the risk of scalding and other accidents. When the water heater faucet malfunctions, such as failing to start the heating process normally, the indicator light can help users quickly determine whether the problem lies with the power supply 902 or the heating element itself. In some cases, indicator lights with different colors or flashing patterns can convey more detailed fault information, facilitating preliminary diagnosis by technicians. If the indicator light is off when the equipment is not in use, it reminds the user that the equipment has stopped working, helping them realize when the equipment is in a non-operating mode, thus promoting energy-saving and environmentally friendly habits, such as promptly turning off unnecessary power. A simple yet effective indicator light can greatly simplify the user's operating process, making it easier for them to understand and control the heating equipment. Good user experience design often increases product appeal and user satisfaction.
[0048] In one feasible implementation, the control component 50 includes a valve core 51. The valve core 51 controls fluid flow by moving or rotating to open or close a fluid passage, selecting or activating a cold water or hot water line. Furthermore, some valve core designs can open and close progressively to regulate the amount of fluid passing through the valve, thereby controlling the water flow rate and saving energy. Further, the valve core 51 can be any of a ball valve core, butterfly valve core, gate valve core, needle valve core, plug valve core, or diaphragm valve core.
[0049] In one feasible implementation, valve core 51 can be a two-position three-way valve. A two-position three-way valve can quickly switch between two paths, that is, rapidly switch between cold water, hot water, or a shut-off mode, reducing switching time and ensuring that fluid reaches the required position in a timely manner. Compared to using two independent two-way valves to achieve the same function, a two-position three-way valve occupies less space, simplifies the structural layout, and is easier for users to operate.
[0050] In one feasible implementation, the control component 50 is further provided with a display screen component 52. The display screen component 52 includes a display interface 521 electrically connected to the heating component 60 and temperature adjustment keys 522. The display screen component 52 is electrically connected to the control motherboard 904 and also to the heating component 60. The display interface 521 is used to display the currently set heating temperature and the current water temperature, and the temperature adjustment keys 522 are used to adjust the heating temperature of the electric water faucet. These display and adjustment methods are mature technologies in the prior art and will not be described in detail here.
[0051] In one feasible implementation, the outlet end 23 of the water outlet pipe 80 is equipped with an outlet bend 81. The outlet bend 81 can redirect vertical or horizontal water flow to the desired angle, ensuring that the water flow can smoothly enter the sewer or other receiving device. By adjusting the outlet angle, splashing during water flow can be effectively reduced, keeping the surrounding environment dry and clean. The outlet bend 81 can form a "U" or "S" shaped trap in the pipe, preventing air from entering the pipe system and thus preventing air hammer (i.e., the impact sound caused by the sudden stop of water flow). The bend can disperse the direct impact of water flow on the end of the pipe, reducing pipe vibration and wear, and extending the service life of the pipe system. A well-designed outlet bend 81 can make the entire pipe system look neater and more aesthetically pleasing, especially in visible areas such as kitchens or bathrooms. Furthermore, the outlet bend 81 can have removable parts for easy periodic cleaning of internal deposits, keeping the pipe unobstructed.
[0052] Accordingly, the operation process of the water heater provided in this application embodiment includes the following operations;
[0053] When the control component 50 is adjusted to the off mode, the outlet of the cold water pipe 40 and the outlet of the hot water pipe are not connected to the outlet pipe 80, and no water flows out. The heating faucet is in the off mode.
[0054] When the control component 50 is adjusted to cold water mode, only the outlet of the cold water pipe 40 is connected to the outlet pipe 80. Water flows from the inlet 11 through the first outlet 12 of the inlet pipe 10 into the inlet of the cold water pipe. The cold water flows out from the outlet pipe 80 through the control component 50, and the heating faucet is in cold water mode.
[0055] When the control component 50 is adjusted to hot water mode, only the outlet of the hot water pipe 20 is connected to the outlet pipe 80. When the water flows from the inlet 11 through the second outlet 13 of the inlet pipe 10, the heating component 60 is activated to start heating. The hot water flows out from the outlet pipe 80 through the control component 50, and the heating faucet is in hot water mode.
[0056] The heating faucet provided in this application embodiment can provide hot or cold water by adjusting the mode of the control component 50. It is easy to operate and is suitable for wide application.
[0057] Furthermore, in a feasible implementation, the embodiment provides that when the control component 50 is adjusted to hot water mode, the turbine component 71 is activated when water flows through it, triggering the Hall element 72 to generate an electrical signal. The Hall element 72 is electrically connected to the heating component 60, activating the heating component 60 to heat water, which can effectively avoid dry burning and energy waste.
[0058] In one feasible implementation, the control component 50 is equipped with a display screen component 52. The display screen component 52 includes a display interface 521 electrically connected to the heating component 60 and temperature adjustment keys 522. In hot water mode, the heating temperature of the water flow by the heating component 60 can be adjusted by adjusting the temperature adjustment keys 522 on the display screen component 52. Thus, through the display screen and adjustment keys, the user can directly see the current water temperature setting and easily adjust the desired temperature without complicated operating procedures. Furthermore, the display interface 521 can provide real-time temperature information and other relevant parameters (such as water flow mode, fault alarms, etc.), allowing the user to understand the device's operating status at any time. The temperature adjustment keys 522 allow users to make fine-tuned temperature adjustments to ensure the water temperature meets individual needs or specific application requirements. The ability to set the same temperature each time ensures the consistency and stability of the hot water supply, making it particularly suitable for temperature-sensitive applications such as baby bathing and laboratory experiments. Users can set appropriate water temperatures according to actual needs, avoiding unnecessary overheating, thereby saving energy and reducing operating costs. The combination of the display screen and keys makes temperature adjustment faster, reduces waiting time, and improves efficiency. With a clear temperature display and controllable adjustment function, the risk of scalding due to excessively high water temperature can be effectively avoided. Furthermore, an overheat protection mechanism can be integrated, automatically cutting off the power supply 902 when abnormally high temperatures are detected, increasing system safety.
[0059] The technical features of the above embodiments can be combined in any way. For the sake of brevity, not all possible combinations of the technical features in the above embodiments are described. However, as long as there is no contradiction in the combination of these technical features, they should be considered to be within the scope of this specification.
[0060] The embodiments described above are merely illustrative of several implementations of this utility model, and while the descriptions are relatively specific and detailed, they should not be construed as limiting the scope of the utility model patent. It should be noted that those skilled in the art can make various modifications and improvements without departing from the concept of this utility model, and these all fall within the protection scope of this utility model. Therefore, the protection scope of this utility model patent should be determined by the appended claims.
Claims
1. A water heating faucet, characterized in that, The heated water tap includes: Water system components, control components, and heating components. in, The water system assembly includes an inlet pipe, a cold water pipe, a hot water pipe, and an outlet pipe; the inlet pipe has an inlet, a first outlet, and a second outlet, wherein the first outlet is connected to the inlet of the cold water pipe, the second outlet is connected to the inlet of the hot water pipe, and the outlets of the cold water pipe and the hot water pipe are connected to the outlet pipe via a control component tee. The heating component is used to heat the hot water pipe; The control component has an off mode, a cold water mode, and a hot water mode.
2. The water heater faucet according to claim 1, characterized in that, When the control component is in the off mode, neither the outlet of the cold water pipe nor the outlet of the hot water pipe is connected to the outlet pipe. When the control component is in cold water mode, only the outlet of the cold water pipeline is connected to the outlet pipeline; When the control component is in hot water mode, only the outlet of the hot water pipe is connected to the outlet pipe. When the water flows from the inlet through the second outlet of the inlet pipe, the heating component is activated to start heating and then flows out from the outlet pipe.
3. The water heater faucet according to claim 2, characterized in that, The heated water tap also includes a fixing component, the water inlet pipe and the heating component are disposed on one side of the fixing component along the first direction, and the control component and the water outlet pipe are disposed on the other side of the fixing component along the first direction.
4. The water heater faucet according to claim 3, characterized in that, The first direction is parallel to the vertical direction, the water inlet pipe is arranged in the vertical direction, the water inlet is located at the lower end of the water inlet pipe, the first outlet is located at the top of the water inlet pipe, and the second outlet is located between the water inlet and the first outlet. The cold water pipe is arranged along the vertical direction, the lower end of the cold water pipe is located below the fixing member and is connected to the first outlet, and the upper end of the cold water pipe is connected to the control component.
5. The water heater faucet according to claim 4, characterized in that, The hot water pipeline includes an inlet end, a heating end, and an outlet end, wherein the diameter of the heating end is larger than that of the outlet end; The water outlet is arranged vertically, with its upper end connected to the control component and its lower end located below the fixing member and connected to the top of the heating end. The heating end is a hollow cylinder. The water inlet pipe is sleeved inside the heating end along the vertical direction, forming a concentric sleeve with the heating end. The water inlet is located below the heating end. The second outlet is located inside the heating end and is connected to the inlet end. The inlet end is connected to the hollow bottom of the heating end and is used to guide the water flowing in from the second outlet into the interior of the heating end from the bottom of the heating end.
6. The water heater faucet according to claim 3, characterized in that, The fastener includes a left connector cover and a right connector cover, which are arranged symmetrically. One end of the left connector cover and the right connector cover are hinged together, and the other end is locked by a snap fastener.
7. The water heater faucet according to claim 1, characterized in that, A turbine assembly and a Hall element are provided between the second outlet of the water inlet pipe and the inlet of the hot water pipe. The turbine assembly is magnetically connected to the Hall element, and the Hall element is electrically connected to the heating assembly.
8. The water heater faucet according to claim 1, characterized in that, The control component includes a valve core.
9. The water heater faucet according to claim 1, characterized in that, The control component is also equipped with a display screen component.
10. The water heater faucet according to claim 9, characterized in that, The display screen assembly includes a display interface electrically connected to the heating assembly and temperature adjustment buttons.