Water supply equipment

By designing a connected first water tank and water storage cup in the water purification equipment, the problem that the water purification equipment cannot simultaneously meet the needs of instant hot water output and large-scale water withdrawal is solved, and the continuous water supply and pure water storage of the instant hot component are achieved, thereby improving the quality of drinking water.

CN223311053UActive Publication Date: 2025-09-09FOSHAN MIDEA CHUNGHO WATER PURIFICATION MFG +1
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Patent Information

Application Number
CN202422418362.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-30
Publication Date
2025-09-09
Estimated Expiration
2034-09-30

AI Technical Summary

Technical Problem

Existing water purification equipment cannot simultaneously meet the needs of instant hot water output and large-scale use of pure water, resulting in the instant hot water outlet losing its water supply function after the pure water cup is removed.

Method used

A water supply device is designed, which includes a box body, a first water tank, a water storage cup and an instant heating component. By arranging the first water tank inside the box body and connecting it with the water storage cup, the instant heating component and the first water tank are connected, ensuring that the instant heating component can continuously supply water. By arranging the water storage cup outside the box body, the pure water storage capacity is increased and bacterial growth is reduced.

Benefits of technology

The continuous water supply function of the instant heating component is realized, which meets the user's demand for instant hot water. At the same time, the storage capacity of pure water is increased and the growth of bacteria is reduced, thus ensuring the quality of drinking water.

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Abstract

The utility model particularly relates to water supply equipment which comprises a box body, a first water tank, a water storage cup and an instant heating assembly. The first water tank is arranged in the box body, and the water storage cup is separably arranged on the box body and communicates with the first water tank. The instant heating assembly can be arranged on the box body and communicated with the first water tank, the instant heating assembly can heat and output pure water flowing from the first water tank to the instant heating assembly, according to the water supply equipment, the first water tank is arranged in the box body to be matched with the arrangement of the water storage cup, the storage amount of the pure water is increased, and the water supply efficiency is improved. Bacteria breeding in the first water tank is reduced, the drinking water quality is guaranteed, and a large amount of heated pure water can be provided for the instant heating assembly, so that pure water supply of the instant heating assembly can be guaranteed while a large amount of pure water is rapidly taken, the rapid requirement of a user for instant heating of the pure water is met, and the user experience is improved. And the problem that the existing water purification equipment cannot simultaneously meet instant hot water outlet and large-amount taking of pure water is solved.
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Description

Technical Field

[0001] The utility model relates to the technical field of water supply equipment, in particular to a water supply equipment. Background Art

[0002] With the improvement of living standards, water purification equipment has gradually become a standard feature of quality life. Existing water purification equipment is equipped with a removable pure water cup for storing pure water filtered by the filtration module. However, when the pure water cup is removed, the instant hot water nozzle in the water purification equipment loses its pure water supply, rendering it unusable. In other words, existing water purification equipment cannot simultaneously meet the needs of large-scale pure water withdrawal and instant hot water output. Utility Model Content

[0003] The purpose of this utility model is to at least solve the problem that existing water purification equipment cannot simultaneously meet the requirements of instant hot water output and large-scale water extraction. This purpose is achieved through the following technical solutions:

[0004] The utility model provides a water supply device, comprising:

[0005] Box;

[0006] a first water tank, the first water tank being arranged inside the box body;

[0007] a water storage cup, the water storage cup being detachably mounted on the box body, and being in communication with the first water tank when the water storage cup is mounted on the box body;

[0008] The instant heating component is arranged on the box body, the instant heating component is connected to the first water tank, and the instant heating component can heat and output pure water flowing from the first water tank to the instant heating component.

[0009] The water supply device described in this utility model increases the storage capacity of pure water by disposing a first water tank inside the housing, which is combined with a detachable water storage cup outside the housing. Furthermore, since the instant heating component is connected to the first water tank, and the first water tank is connected to the water storage cup, the instant heating component can provide a large amount of heated pure water. Furthermore, when a user needs to remove a large amount of pure water, they can simply remove the water storage cup. In this case, the first water tank can still promptly supply pure water to the instant heating component, ensuring the effectiveness of the instant heating component. Furthermore, by disposing the water storage cup outside the housing and connecting it to the first water tank, bacterial growth within the first water tank is reduced, thereby ensuring the quality of drinking water.

[0010] In addition, the water supply equipment according to the present invention may also have the following additional technical features:

[0011] In some embodiments of the present invention, the water supply equipment further includes a pump body, and the pump body is communicatively arranged between the first water tank and the instant heating component.

[0012] In some embodiments of the present invention, the instant heating component includes a heating element and an output element connected in sequence, and the heating element and the output element are both arranged on the front panel of the box body, and are respectively located on opposite sides of the front panel along a first direction, and the first direction intersects with the front panel.

[0013] In some embodiments of the present invention, an output nozzle and a control panel are provided inside the output member. Along the first direction, the control panel, the output nozzle and the front panel are arranged in sequence, and part of the output nozzle extends to a side of the front panel away from the control panel.

[0014] Wherein, the output nozzle is connected to the heating element, and the control panel is electrically connected to the heating element.

[0015] In some embodiments of the present invention, a mounting structure is provided on the front panel, and the output member has a first part and a second part connected in sequence along the first direction, the first part is used to accommodate the output nozzle and the control panel, and the second part is used to adapt and connect with the mounting structure.

[0016] In some embodiments of the present invention, the mounting structure includes a groove formed on the front panel, and the second portion has a first end embedded in the groove.

[0017] In some embodiments of the present invention, the mounting structure also includes a plurality of latch holes opened on the groove, and a latch hook having the same number as the latch holes is provided on the end face of the first end, and the latch hook can be engaged with the latch holes in a detachable manner and embed the second part into the groove.

[0018] In some embodiments of the present invention, the output member includes a first connecting portion and a second connecting portion that are detachably connected, the first connecting portion having a first cavity for accommodating the control panel, the second connecting portion having a second cavity for accommodating the output nozzle, and the first cavity is connected to the second cavity.

[0019] In some embodiments of the present invention, the output nozzle has a first output port for outputting the pure water, a first distance d1 is provided between the first output port and the operating surface of the control panel, and a second distance d2 is provided between the operating surface and the front panel, wherein d1≥1 / 4d2.

[0020] In some embodiments of the present invention, a first storage body is protruding from the top of the output nozzle, and a second output port is provided at the bottom of the output nozzle, one end of the second output port extends into the interior of the first storage body, and the other end of the second output port is spaced apart from the first output port and is located between the first output port and the front panel.

[0021] In some embodiments of the present invention, a guide structure is provided inside the output nozzle, and the guide structure is used to drive the pure water to flow toward the first output port;

[0022] And / or, an anti-collision structure is provided inside the output nozzle, and the anti-collision structure is provided facing the input port of the output nozzle;

[0023] And / or, a baffle is provided inside the output nozzle, and the number of the baffles is multiple, and the multiple baffles are staggered. BRIEF DESCRIPTION OF THE DRAWINGS

[0024] Various other advantages and benefits will become apparent to those skilled in the art upon reading the detailed description of the preferred embodiment below. The accompanying drawings are for illustration purposes only and are not to be considered as limiting the present invention. The same reference numerals are used throughout the accompanying drawings to denote the same components. In the accompanying drawings:

[0025] Figure 1 Schematically shows a structural diagram of a water supply device according to an embodiment of the present invention;

[0026] Figure 2 for Figure 1 Schematic diagram of the internal structure of the water supply equipment shown in;

[0027] Figure 3 for Figure 1 A partial schematic diagram of the waterway structure of the water supply equipment shown in FIG;

[0028] Figure 4 for Figure 1 A schematic diagram of a partial structure of the water supply equipment shown in ;

[0029] Figure 5 for Figure 1 A schematic diagram of the structure of the output component shown in FIG;

[0030] Figure 6 for Figure 5 An exploded schematic diagram of the output components shown in FIG;

[0031] Figure 7 for Figure 5 A schematic structural diagram of the output element shown in FIG. 1 from another perspective;

[0032] Figure 8 for Figure 8 A schematic cross-sectional view of the output member shown in FIG.

[0033] Figure 9 for Figure 4 An enlarged view of the local structure of the connection between the instant heating component and the front panel is shown in the figure.

[0034] The symbols in the accompanying drawings represent the following:

[0035] 1. Water supply equipment;

[0036] 10. Box body; 11. Front panel; 1101. Groove; 1102. First communication hole; 1103. First mounting hole; 1104. Clamp hole; 12. Raw water tank;

[0037] 20. First water tank; 21. Tank body; 22. Liquid level detection assembly;

[0038] 30. Filter component;

[0039] 40. Water storage component; 41. Water storage cup;

[0040] 50. Brewing component;

[0041] 60. Instant heating component; 61. Pump body; 62. Heating element; 63. Output element; 631. First part; 632. Second part; 633. First connecting part; 6331. Mounting column; 6332. First cavity; 634. Second connecting part; 6341. Hook; 6342. Second mounting hole; 6343. Third mounting hole; 6344. Second connecting hole; 6345. Second cavity; 6346. Fixing hole; 64. Output nozzle; 641. First output port; 642. Second output port; 643. First hopper body; 644. Limiting element; 65. Guide structure; 651. Guide surface; 652. Guide plate; 66. Anti-collision structure; 67. Baffle; 68. Control panel; 681. Operation panel; 682. Display panel; 683. Control panel; 69. Protection panel. DETAILED DESCRIPTION

[0042] Exemplary embodiments of the present disclosure will be described in more detail below with reference to the accompanying drawings. Although exemplary embodiments of the present disclosure are shown in the accompanying drawings, it should be understood that the present disclosure can be implemented in various forms and should not be limited by the embodiments described herein. Rather, these embodiments are provided to enable a more thorough understanding of the present disclosure and to fully convey the scope of the present disclosure to those skilled in the art.

[0043] It should be understood that the terms used in the text are only for the purpose of describing specific example embodiments and are not intended to be limiting. Unless the context clearly indicates otherwise, the singular forms "one", "an" and "said" as used in the text may also be meant to include plural forms. The terms "comprise", "include", "contain" and "have" are inclusive and therefore specify the presence of stated features, steps, operations, elements and / or parts, but do not exclude the presence or addition of one or more other features, steps, operations, elements, parts, and / or combinations thereof. The method steps, processes, and operations described herein are not interpreted as necessarily requiring them to be performed in the specific order described or illustrated, unless the order of execution is clearly indicated. It should also be understood that additional or alternative steps may be used.

[0044] Although the terms first, second, third, etc. can be used in the text to describe multiple elements, components, regions, layers and / or sections, these elements, components, regions, layers and / or sections should not be limited by these terms. These terms can only be used to distinguish an element, component, region, layer or section from another region, layer or section. Unless the context clearly indicates otherwise, terms such as "first", "second" and other numerical terms do not imply order or sequence when used in the text. Therefore, the first element, component, region, layer or section discussed below can be referred to as the second element, component, region, layer or section without departing from the teaching of the example embodiments.

[0045] For ease of description, spatially relative terms may be used herein to describe the relationship of one element or feature relative to another element or feature as shown in the figures, such as "inside," "outside," "inside," "outside," "below," "beneath," "above," and the like. Such spatially relative terms are intended to encompass different orientations of the device in use or operation in addition to the orientation depicted in the figures. For example, if the device in the figures is flipped over, an element described as "below" or "beneath" another element or feature would then be oriented "above" or "above" the other element or feature. Thus, the example term "below" can encompass both above and below orientations.

[0046] The present invention provides an embodiment of a water supply device 1. In this embodiment, the water supply device 1 is a water purification device, i.e., equipment that produces purified water, primarily used to purify water and provide healthy drinking water. Most water purification devices utilize reverse osmosis, a physical process that desalinates salt water at room temperature using no phase change. The water purification device can be a water purifier, a water purifier, or a water purifier.

[0047] The existing water purification equipment has the functions of water intake and filtration, and a filter assembly 30 is provided inside. The water intake is directly connected to the filter assembly 30. The tap water is filtered by the filter assembly 30 to form pure water, and flows out through the water intake. At the same time, the water purification equipment is also provided with a removable pure water cup for storing the pure water filtered by the filter assembly 30. The pure water cup is usually set on the front shell, and the pure water cup is connected to the instant hot water outlet through a water channel. However, when the pure water cup is removed, the instant hot water outlet in the water purification equipment will lose the pure water supply, resulting in it being unusable. In other words, the existing water purification equipment cannot simultaneously meet the needs of large-scale pure water intake and instant hot water outlet.

[0048] In order to solve the above problems, the present invention proposes a water supply device 1 to solve the problem that existing water purification equipment cannot simultaneously meet the requirements of instant hot water output and large-scale use of pure water.

[0049] In terms of overall design, Figures 1-9 As shown, the water supply device 1 includes a housing 10, a first water tank 20, a water storage cup 41, and an instant heating assembly 60. The first water tank 20 is disposed within the housing 10. The water storage cup 41 is detachably mounted on the housing 10. When the water storage cup 41 is mounted on the housing 10, the water storage cup 41 communicates with the first water tank 20. The instant heating assembly 60 is mounted on the housing 10 and is in communication with the first water tank 20. The instant heating assembly 60 is capable of heating and outputting pure water flowing from the first water tank 20 to the instant heating assembly 60.

[0050] Specifically, the placement of the first water tank 20 within the housing 10, combined with the detachable water storage cup 41 outside the housing 10, helps increase the storage capacity of pure water. Furthermore, because the instant heating component 60 is connected to the first water tank 20, and the first water tank 20 is connected to the water storage cup 41, the instant heating component 60 can provide a large amount of heated pure water. Furthermore, when a user needs to remove a large amount of pure water, they can simply remove the water storage cup 41. In this case, the first water tank 20 can still promptly supply pure water to the instant heating component 60, ensuring its effectiveness. Furthermore, the placement of the water storage cup 41 outside the housing 10, connecting the water storage cup 41 to the first water tank 20, helps reduce bacterial growth within the first water tank 20, thereby ensuring the quality of the drinking water.

[0051] It is important to understand that if Figures 1 to 3As shown, the water supply equipment 1 includes a box body 10, a first water tank 20, a water storage component 40 and an instant heating component 60. Among them, the box body 10 includes a base, a front panel 11, side panels, a back panel and a top panel, and the base, front panel 11, side panels, back panel and top panel are enclosed to form a receiving cavity, and the receiving cavity is used to install several internal components such as a raw water tank 12, a filter component 30, a water pump, etc. The box body 10 is made of a hard material, and the hard material can be set to a hard material such as ABS, HIPS, PP, PC, or a metal or alloy material, etc., and there is no specific restriction here. At the same time, the shape of the box body 10 can be rectangular, circular, polygonal, combined, special-shaped, etc., and can be selected and designed according to actual use requirements, and there is no specific restriction here. Usually, in order to facilitate manufacturing and molding, and for the reasonable installation layout of the internal components of the box body 10, the shape of the box body 10 is roughly rectangular.

[0052] It should be noted that the raw water tank 12 is disposed within the accommodating cavity and is primarily used to provide raw water to the water system of the water supply device 1. Specifically, the raw water tank 12 can be fixedly connected to the base or detachably connected thereto. Furthermore, the raw water tank 12 can be connected to an external tap water inlet pipe to replenish raw water, or it can serve as a standalone water tank, thus eliminating the constraints of water pipes. In this embodiment, the raw water tank 12 is a standalone water tank, not connected to any external pipes, and can be used anywhere, indoors or outdoors, making it convenient and easy to use.

[0053] In addition, the filter assembly 30 can be provided with multiple filter elements, which are connected by water channels, or only one reverse osmosis filter element can be provided. Preferably, a pre-filter element is provided upstream of the reverse osmosis filter element. The type of the pre-filter element can be PP in different forms, activated carbon in different forms, ultrafiltration, nanofiltration, or a composite filter element of the above materials. A post-filter element can also be provided downstream of the reverse osmosis filter element. The type of the post-filter element can be activated carbon in different forms. Of course, the post-filter element and the pre-filter element can be two independent filter elements or a composite filter element. If the post-filter element and the pre-filter element are a composite filter element, the composite filter element has the filtering functions of both the pre-filter element and the post-filter element. There are two flow paths inside the composite filter element that do not interfere with each other. One flow path is used for coarse filtration, which is equivalent to the pre-filter element. The raw water enters the reverse osmosis filter element after coarse filtration in this flow path; the other flow path is used for re-filtration, which is equivalent to the post-filter element. The pure water filtered by the reverse osmosis filter element is filtered again from this flow path and finally flows out from the water outlet of the composite filter element.

[0054] Furthermore, a water pump is located between the raw water tank 12 and the filter assembly 30. This pump is readily available and can be purchased directly, helping to reduce assembly costs. Furthermore, the raw water in the raw water tank 12 flows through the filter assembly 30 under the action of the water pump and ultimately flows into the first water tank 20, forming pure water to meet the user's pure water needs.

[0055] In addition, a first water tank 20 is disposed within the accommodating chamber and is primarily used to receive the pure water output by the filter assembly 30. Specifically, the first water tank 20 can be fixedly connected to the base or detachably connected thereto. The first water tank 20 includes a first tank body 21 and a liquid level detection assembly 22 disposed on the first tank body 21. The liquid level detection assembly 22 can drive the water supply device 1 to perform raw water filtration when the pure water level in the first tank body 21 is low, and can also drive the water supply device 1 to stop performing raw water filtration when the pure water level in the first tank body 21 is high.

[0056] It should be further understood that an adapter (not shown) is provided on the front panel 11 and is connected to the first water tank 20. This adapter has two states: open and closed. Furthermore, in this embodiment, the water storage assembly 40 includes a water storage cup 41. A water receiving box is provided at the bottom of the front panel 11, and the water storage cup 41 is located above the water receiving box. A one-way valve is provided on the water storage cup 41. The adapter is connected to the inner cavity of the water storage cup 41 via the one-way valve, allowing pure water in the first water tank 20 to flow through the adapter and the one-way valve in sequence, ultimately entering the inner cavity of the water storage cup 41, thereby establishing communication between the water storage cup 41 and the first water tank 20.

[0057] It should be noted that when the water storage cup 41 is connected to the adapter, the adapter enters an open state, allowing the pure water in the first water tank 20 to enter the adapter, then flow from the adapter to the one-way valve and ultimately into the inner cavity, thus fulfilling the water collection and storage functions of the water storage cup 41. When the water storage cup 41 is separated from the adapter, the adapter is closed. The pure water in the first water tank 20 enters the adapter but does not flow out of the adapter. At the same time, because a one-way valve is provided on the pipeline connecting the inner cavity and the adapter, even if the water storage cup 41 is removed, pure water is stored in the inner cavity and the water in the water storage cup 41 will not leak out. The water storage cup 41 can be removed at any time, which makes it convenient for regular cleaning of the water storage cup 41. When a large amount of pure water is needed quickly, the water storage cup 41 can also be immediately removed and used directly.

[0058] At this point, it should be noted that since the water storage cup 41 is connected to the first water tank 20 through the adapter, the interior of the first water tank 20 is connected to the atmosphere through the vent. When the water storage cup 41 is connected to the adapter, the pure water in the first water tank 20 can enter the water storage cup 41 under the action of pressure, and finally make the water level of the first water tank 20 basically consistent with the water level of the water storage cup 41.

[0059] In addition, in this embodiment, the water supply device 1 further includes a brewing assembly 50, which is disposed on the front panel 11. The brewing assembly 50 is connected to the first water tank 20 and can extract a large amount of pure water from the first water tank 20 for functions such as making tea and steaming.

[0060] Furthermore, the thermal assembly 60 includes a heating element 62 and an output element 63 connected in sequence. The heating element 62 and the output element 63 are respectively arranged on the front panel 11 and are located on opposite sides of the front panel 11 along the first direction a. The first direction a intersects with the front panel 11.

[0061] Specifically, by providing a heater 62 and output element 63 that are interconnected, pure water from the first water tank 20 can flow through these elements in sequence, thereby discharging cold, warm, and hot water, meeting the user's diverse needs. Furthermore, by arranging the heater 62 and output element 63 on opposite sides of the front panel 11, the instant heating assembly 60 is integrated with the front panel 11 and can be fixed as the front panel 11 is installed. This facilitates modularization of the instant heating assembly 60 and facilitates its removal and installation. Furthermore, it effectively reduces the path between the heater 62 and output element 63, thereby effectively ensuring the heating effect and reducing heat loss.

[0062] It is important to understand that if Figure 2 and Figure 4 As shown, along the first direction a, the front panel 11 has an outer side surface and an inner side surface. The heating element 62 is installed on the inner side surface and is connected to the first water tank 20. The output element 63 is arranged on the outer side surface, and the heating element 62 and the output element 63 are connected through a connecting pipe passing through the front panel 11, which helps to realize the integrated setting of the instant heating component 60 on the front panel 11, helps to improve the modularity of the water supply equipment 1, and makes the water supply equipment 1 highly compatible and easy to replace each module. In this embodiment, the heating element 62 includes a heat collecting pipe and a control board 683, wherein the heat collecting pipe and the control board 683 are integrated into a module, which helps to optimize the module space, minimize the volume of the heating element 62 and is installed on the front panel 11 to heat the pure water in the first water tank 20. Preferably, the heating element 62 can be fixed to the front panel 11 by screws.

[0063] It should be noted that the heating element 62 may also include a refrigeration module that can cool water and, when a user requires cold water, discharge the cold water through the output element 63 for the user's use. Preferably, the refrigeration module can cool pure water using semiconductor refrigeration, resulting in a compact structure, minimal space occupation, and a consistent and reliable cooling effect.

[0064] It should be further understood that the heating component 60 also includes a pump body 61, which is connected and arranged between the first water tank 20 and the heating element 62. Specifically, the pump body 61 is arranged on the inner side of the front panel 11. When the user needs to take hot water, the pump body 61 can output the pure water in the first water tank 20 to the heating element 62. Preferably, the pump body 61, the heat collecting pipe and the control board 683 are integrated, thereby further optimizing the module space. In this embodiment, the pump body 61 is an existing product and can be purchased and used directly. Accordingly, a mounting base is provided on the front panel 11 to cooperate with the installation and fixation of the pump body 61.

[0065] Furthermore, an output nozzle 64 and a control panel 68 are provided inside the output member 63. Along the first direction a, the control panel 68, the output nozzle 64 and the front panel 11 are sequentially arranged. The output nozzle 64 is connected to the heating member 62, and the control panel 68 is electrically connected to the heating member 62.

[0066] Specifically, by providing the output nozzle 64 and the control panel 68, and limiting the electrical connection between the control panel 68 and the heating element 62, not only can the heated pure water be smoothly output, but the opening and closing of the heating element 62 can also be independently controlled to ensure precise control of the output temperature of the pure water. At the same time, integrating the control panel 68 and the output nozzle 64 into the output element 63 helps to achieve the modularization of the output element 63 and reduce the assembly difficulty of the water supply equipment 1. By limiting the control panel 68, the output nozzle 64 and the front panel 11 to be arranged in sequence along the first direction a, the control panel 68 can be arranged to protrude from the front panel 11. On the one hand, it is convenient for the user to use and operate, and on the other hand, it can reduce the impact of hot steam on the control panel 68, thereby avoiding the occurrence of water mist deposition on the control panel 68.

[0067] It is important to understand that if Figure 6 and Figure 8 As shown, along the first direction a, the control panel 68, the output nozzle 64 and the front panel 11 are arranged in sequence, wherein the operating surface (display surface) of the control panel 68 is arranged parallel to the front panel 11, and the output end of the output nozzle 64 is located between the operating surface (display surface) of the control panel 68 and the front panel 11. Such an arrangement allows the hot steam formed by the heated pure water flowing out of the output nozzle 64 to avoid the control panel 68 and move, thereby reducing the water mist attached to the control panel 68 and ensuring the display effect of the control panel 68. At the same time, the control panel 68 and the output nozzle 64 are both arranged inside the output member 63 and can be fixed to the front panel 11 together with the output member 63, which can effectively reduce the difficulty of assembling the instant heating component 60, thereby improving the assembly efficiency of the water supply equipment 1. In this embodiment, part of the output nozzle 64 extends to the side of the front panel 11 away from the control panel 68, as shown in FIG. Figure 6As shown, the end of the output nozzle 64 facing away from the control panel 68 passes through the front panel 11 and extends to the interior of the box body 10. At this time, the part of the output nozzle 64 located inside the box body 10 is provided with an input port connected to the heating element 62. This arrangement facilitates the connection between the input port and the heating element 62.

[0068] It should be noted that in this embodiment, the operating surface and display surface of the control panel 68 are the same vertical surface, and this vertical surface is arranged parallel to the front panel 11. In this case, the display surface of the control panel 68 is arranged to face the user, and the user can see the operation keys and temperature display through the display surface. Of course, the operating surface and display surface of the control panel 68 can also be arranged separately, such as by tilting the display surface upward, so as to further reduce the accumulation of water mist on the display surface.

[0069] Furthermore, a mounting structure is provided on the front panel 11, and the output member 63 has a first portion 631 and a second portion 632 connected in sequence along a first direction. The first portion 631 is used to accommodate the output nozzle 64 and the control panel 68, and the second portion 632 is used to adapt to the mounting structure.

[0070] Specifically, the output member 63 is configured with a first portion 631 and a second portion 632. The first portion 631 houses the output nozzle 64 and control panel 68. This not only facilitates the installation and fixation of the output nozzle 64 and control panel 68, but also reduces damage to the nozzle 64 and control panel 68 from the external environment, thereby extending the service life of the output nozzle 64 and control panel 68. Furthermore, it facilitates subsequent optimization of the output member 63. For example, by adjusting the first portion 631, not only can the shape of the first portion 631 be effectively improved, enhancing the aesthetics of the output member 63, but the orientation of the operating surface of the control panel 68 can also be adjusted, improving user comfort. Furthermore, the second portion 632 cooperates with the mounting structure of the front panel 11, simplifying installation and improving installation effectiveness.

[0071] It is important to understand that if Figure 5 As shown, first portion 631 is configured as a cylindrical structure. The operating surface of control panel 68 is positioned parallel to front panel 11 and faces the user when obtaining instant hot pure water, making it easier for the user to observe or adjust the output temperature of the pure water. Furthermore, because the outlet of outlet nozzle 64 is located between control panel 68 and front panel 11, when the hot steam generated by the hot pure water flowing out of outlet nozzle 64 flows around first portion 631, the outer circumference of the cylindrical structure forms an adsorption surface, reducing the flow of hot steam and thereby improving the performance of outlet member 63.

[0072] It should be pointed out that, in addition to being configured as a cylindrical structure, the first portion 631 may also be configured as other shapes, such as a square column, a pentagonal column, a hexagonal column, a triangular column, an elliptical column, a diamond column, or an irregular structure, etc., so as to accommodate the installation of the output nozzle 64 and the control panel 68, without further restriction here.

[0073] It should be further understood that the second portion 632 is adapted to be connected to the mounting structure on the front panel 11. In this embodiment, the second portion 632 is fixed to the front panel 11 by screwing. Specifically, Figures 4 to 9 As shown, the front panel 11 is provided with a first mounting hole 1103 and a first connecting hole 1102, wherein the number of first mounting holes 1103 is multiple, and the multiple first mounting holes 1103 are respectively arranged on opposite sides of the first connecting hole 1102. Correspondingly, the second portion 632 is provided with a plurality of second mounting holes 6342 and a second connecting hole 6344, wherein the second mounting holes 6342 are arranged opposite to the first mounting hole 1103, and the second connecting holes 6344 are arranged opposite to the first connecting hole 1102. The screw connection member is threaded through the first mounting hole 1103 and the second mounting hole 6342 to achieve the installation and fixation of the output member 63 on the front panel 11. At the same time, the connecting pipe connecting the output nozzle 64 and the heating element 62, as well as the connecting line connecting the control panel 68 and the heating element 62, are both passed through the second connecting hole 6344 and the first connecting hole 1102 to ensure that the instantaneous hot output of pure water can be implemented.

[0074] It should be pointed out that the second part 632 is adapted to be connected with the mounting structure, so that the output member 63 can be connected and fixed to the front panel 11. However, in addition to the above-mentioned screw connection method, other connection methods such as snap connection, buckle connection, riveting, and bonding can also be used for its connection and fixation, and no further restrictions are imposed here.

[0075] Furthermore, the mounting structure includes a groove 1101 formed on the front panel 11 . The groove 1101 has a special-shaped structure. The second portion 632 has a first end embedded in the groove 1101 .

[0076] Specifically, the mounting structure includes a groove 1101, the shape of which matches the first end of the second portion 632. By providing the groove 1101 and using it to position the second portion 632, the output member 63 is positioned and mounted, thereby improving the mounting accuracy of the output member 63. Furthermore, the groove 1101 has a special-shaped structure, which further improves the mounting accuracy of the output member 63. Furthermore, along the first direction a, the second portion 632 can be partially or entirely disposed within the groove 1101.

[0077] It is important to understand that if Figures 4 to 9As shown, groove 1101 is formed on the outer surface of the front panel 11, and groove 1101 includes a circular structure and a special-shaped structure, wherein the axis of the circular structure is aligned with the axis of the first portion 631, and the special-shaped structure is located below the circular structure. At the same time, at least a portion of the second portion 632 is adapted to the shape of groove 1101. In this embodiment, the first end of the second portion 632 is received and disposed within groove 1101 along the first direction a, and abuts against the bottom surface of groove 1101. By configuring groove 1101 with a circular structure and a special-shaped structure, on the one hand, it can cooperate with the first portion 631, reducing the difficulty of processing the front panel 11, and on the other hand, it can form an identification structure, improving assembly efficiency.

[0078] It should be noted that the groove 1101 is provided on the front panel 11 , and the strength of the front panel 11 is further enhanced by utilizing the structural change, thereby further improving the overall structural strength of the box body 10 .

[0079] Furthermore, the mounting structure also includes a plurality of latch holes 1104 opened on the groove 1101, and the end face of the first end is provided with latch hooks 6341 whose number is the same as the latch holes 1104. The latch hooks 6341 can be engaged with the latch holes 1104 in a detachable manner and the second part 632 is embedded in the groove 1101.

[0080] Specifically, the mounting structure includes a plurality of latch holes 1104 that engage with latch hooks 6341 of the second portion 632, thereby providing preliminary mounting of the output member 63 to the front panel 11 and providing an auxiliary connection for the screw connection of the output member 63 to the front panel 11. The structure is simple and easy to manufacture, and the latch holes 1104 and latch hooks 6341 cooperate well and are easy to operate, thereby further improving the efficiency of mounting the output member 63.

[0081] It is important to understand that if Figure 4 and Figure 9 As shown, latch holes 1104 are provided on opposite sides of the first communication port, and a latch hook 6341 is provided on the end surface of the first end of the second portion 632. The latch hook can pass through the latch hole 1104 and be hooked on the front panel 11. Preferably, a guide portion and a clamping portion are formed on the latch hole 1104. The guide portion allows the latch hook 6341 to pass through and drive the latch hole 1104 into the clamping portion. The clamping portion and the latch hook 6341 are adapted to be arranged. At this time, the second portion 632 is embedded in the groove 1101 and abuts against the bottom surface of the groove 1101. Such an arrangement helps to further improve the installation efficiency of the output member 63 and the front panel 11.

[0082] Furthermore, the output member 63 includes a first connecting portion 633 and a second connecting portion 634 that are detachably connected. The first connecting portion 633 has a first cavity 6332 for accommodating the control panel 68, and the second connecting portion 634 has a second cavity 6345 for accommodating the output nozzle 64. The first cavity 6332 and the second cavity 6345 are connected.

[0083] Specifically, the output member 63 is configured with a detachable first connecting portion 633 and a detachable second connecting portion 634, which allows for the coordinated installation of the control panel 68 and the output nozzle 64, thereby reducing the difficulty of assembling the output member 63. Furthermore, the first cavity 6332 and the second cavity 6345 can accommodate the control panel 68 and the output nozzle 64, respectively, helping to reduce the impact of the external environment on the output nozzle 64 and the control panel 68. The communication between the first cavity 6332 and the second cavity 6345 allows for the routing of the connecting lines between the control panel 68 and the heater 62, thus ensuring the aesthetics of the output member 63.

[0084] It is important to understand that if Figure 5 and Figure 8 As shown, the output member 63 includes a first connecting portion 633 and a second connecting portion 634. The second connecting portion 634 has a cylindrical portion and a special-shaped portion. The cylindrical portion cooperates with the first connecting portion 633 to form the aforementioned first portion 631. The special-shaped portion is the aforementioned second portion 632. In this case, the first end of the second portion 632 is the side of the second connecting portion 634 away from the first connecting portion 633. In this embodiment, the first connecting portion 633 and the second connecting portion 634 are arranged in sequence along the first direction. The first connecting portion 633 has a first cavity 6332, and the second connecting portion 634 has a second cavity 6345. The second communication port is arranged in communication with the second cavity 6345. In this case, the first cavity 6332, the second cavity 6345, and the second communication port are arranged in sequence.

[0085] like Figures 5 to 9 As shown, a third mounting hole 6343 is further provided on the end surface of the first end. A mounting post 6331 is provided on the first connecting portion 633. A fastener can be passed through the third mounting hole 6343 and screwed onto the mounting post 6331 to securely connect the first connecting portion 633 to the second connecting portion 634. Preferably, the fastener can be a bolt or a screw. Simultaneously, the delivery nozzle 64 is securely connected to the first connecting portion 633, and the control panel 68 is securely connected to the second connecting portion 634. The securing methods include, but are not limited to, screwing, snap-fitting, snap-fitting, riveting, and bonding.

[0086] In this embodiment, if Figure 6 and Figure 8As shown, a fixing hole 6346 is provided on the first connecting part 633, and the output nozzle 64 has a first output port 641 for outputting pure water. The first output port 641 is passed through the fixing hole 6346, and the part of the output port passing through the fixing hole 6346 is detachably provided with a limiting member 644. The limiting member 644 is cooperated with the first output port 641 to realize the installation and fixation of the output nozzle 64 on the first connecting part 633. The structure is simple and the installation is convenient, which helps to improve the installation efficiency of the output nozzle 64.

[0087] Furthermore, in this embodiment, the control panel 68 includes an operating panel 681, a display panel 682, and a control panel 683, arranged sequentially along a first direction. The control panel 683 is screwed to the second connecting portion 634, while the display panel 682 and the control panel 683 are connected to the control panel 683 by snapping, riveting, or bonding. Furthermore, a protective plate 69 is disposed within the first cavity 6332. This protective plate 69 is disposed on the side of the operating panel 681 facing away from the control panel 683 and is bonded to the operating panel 681. The provision of the protective plate 69 reduces damage to the control panel 68 from external debris, thereby extending the service life of the control panel 68.

[0088] Furthermore, there is a first distance d1 between the first output port 641 and the operation surface of the control panel 68 , and a second distance d2 between the operation surface and the front panel 11 , wherein d1 ≥ 1 / 4 d2 .

[0089] Specifically, by comparing the distance d1 between the first output port 641 and the operating surface of the control panel 68 with the second distance d2 between the operating surface and the front panel 11, and limiting d1≥1 / 4d2, the distance between the first output port 641 and the operating surface of the control panel 68 can be effectively determined, thereby further ensuring that the hot steam generated by the hot pure water flowing out of the output nozzle 64 will not adhere to the surface of the operating surface and affect the use of the control panel 68.

[0090] It is important to understand that if Figure 8 As shown, a first distance d1 is defined between the axis of the first output port 641 and the operating surface of the control panel 68, and a second distance d2 is defined between the operating surface and the front panel 11. In this case, the depth to which the second portion 632 is embedded in the groove 1101 is equal to the thickness of the sidewall of the second connecting portion 634 away from the first connecting portion 633. Where d1 ≥ 1 / 4 d2, this arrangement effectively meets the user's need for instant hot pure water while reducing water mist from adhering to the operating surface, thereby enhancing the performance of the output member 63 and, consequently, the performance of the water supply device 1.

[0091] Furthermore, a first storage body 643 is protruding from the top of the output nozzle 64, and a second output port 642 is provided at the bottom of the output nozzle 64. One end of the second output port 642 extends into the interior of the first storage body 643, and the other end of the second output port 642 is spaced apart from the first output port 641 and is located between the first output port 641 and the front panel 11.

[0092] Specifically, by installing a first chamber 643 at the top of the outlet 64, in conjunction with the second outlet 642, the air pressure inside the outlet 64 is balanced, thereby ensuring efficient pure water delivery. Furthermore, placing the first chamber 643 at the top of the outlet 64 and the second outlet 642 at the bottom effectively extends the length of the second outlet 642, thereby helping to prevent external impurities from entering the outlet 64 and affecting the quality of drinking water. Furthermore, placing the second outlet 642 between the first outlet 641 and the front panel 11 effectively prevents the user from contacting the second outlet 642, further improving the safety of the outlet 64.

[0093] It is important to understand that if Figure 8 As shown, a first housing 643 protrudes outward from the top of the outlet nozzle 64. The first housing 643 can be a square or cylindrical structure. In this case, a second outlet 642 is provided at the bottom of the outlet nozzle 64. The first end of the second outlet 642 communicates with the outside, while the second end of the second outlet 642 extends into the first housing 643 and is spaced from the inner wall of the first housing 643. In terms of height, the first end of the second outlet 642 is higher than the output end of the first outlet 641 and is located between the first outlet 641 and the front panel 11. This arrangement further prevents users from contacting the second outlet 642, helping to ensure drinking water quality. Furthermore, a long ventilation channel is provided between the first and second ends of the second outlet 642, further preventing external impurities from entering the outlet nozzle 64.

[0094] It should be further understood that a guide structure 65 is further provided inside the output nozzle 64, and the guide structure 65 is used to drive the pure water to flow toward the first output port 641. In this embodiment, an input port is provided at the top of the output nozzle 64, and the input port and the first output port 641 are spaced apart along the first direction a. At the same time, the guide structure 65 includes a guide surface 651 and a guide plate 652. The guide surface 651 is provided at the bottom of the output nozzle 64 and is tilted between the input port and the first output port 641. In the height direction, the side of the guide surface 651 close to the input port is higher than the side of the guide surface 651 close to the first output port 641, thereby ensuring that the hot pure water flows to the first output port 641 after entering the output nozzle 64 from the input port.

[0095] At this time, along the first direction, a guide plate 652 is provided on the side of the first output port 641 facing away from the input port. The guide plate 652 has a guide arc surface. The guide plate 652 can prevent the hot pure water from flowing through the first output port 641. At the same time, the guide arc surface can further guide the hot pure water to flow toward the first output port 641. The guide arc surface can be set to a V-shaped or semicircular structure to cooperate with the first output port 641 to output the hot pure water.

[0096] In addition, an anti-collision structure 66 is provided inside the output nozzle 64, and the anti-collision structure 66 is provided facing the input port of the output nozzle 64. Figure 8 As shown, in this embodiment, the anti-impact structure 66 is a conical structure arranged on the guide surface 651, and the conical structure is arranged facing the input port of the output nozzle 64. With such a setting, the bottom strength of the output nozzle 64 is further enhanced by utilizing the structural changes, thereby further improving the overall structural strength of the output nozzle 64. At the same time, the conical setting can also drain the instant pure water to ensure the flow effect of the instant pure water.

[0097] In addition, a baffle 67 is provided inside the outlet nozzle 64. The number of baffles 67 is multiple, and the multiple baffles 67 are staggered. Figure 8 As shown, a plurality of baffles 67 are provided between the input port and the first output port 641. The pure water flowing into the input port will be guided by the baffles 67 and eventually flow to the first output port 641. The baffles 67 can be arranged in a staggered manner along the first direction. At this time, the pure water flowing into the input port will flow along a Z-shaped path. Of course, the baffles 67 can be arranged in a staggered manner in combination along the first direction to form a path flowing along a T-shape. By providing the baffles 67, the flow path of the pure water can be effectively extended, thereby helping to reduce the situation where the pure water impacts the first output port 641, thereby ensuring the water collection effect of the user.

[0098] The above description is merely a preferred embodiment of the present invention, but the scope of protection of the present invention is not limited thereto. Any changes or substitutions that can be easily conceived by a person skilled in the art within the technical scope disclosed in the present invention should be included in the scope of protection of the present invention. Therefore, the scope of protection of the present invention should be based on the scope of protection of the claims.

Claims

1. A water supply device, characterized in that: include: Box; a first water tank, the first water tank being arranged inside the box body; a water storage cup, the water storage cup being detachably mounted on the box body, and being in communication with the first water tank when the water storage cup is mounted on the box body; The instant heating component is arranged on the box body, the instant heating component is connected to the first water tank, and the instant heating component can heat and output pure water flowing from the first water tank to the instant heating component.

2. The water supply equipment according to claim 1, characterized in that The water supply equipment further includes a pump body, which is communicatively arranged between the first water tank and the instant heating component.

3. The water supply equipment according to claim 1, characterized in that The instant heating component includes a heating element and an output element connected in sequence. The heating element and the output element are both arranged on the front panel of the box body and are located on opposite sides of the front panel along a first direction, and the first direction intersects with the front panel.

4. The water supply equipment according to claim 3, characterized in that An output nozzle and a control panel are provided inside the output member. Along the first direction, the control panel, the output nozzle and the front panel are arranged in sequence, and part of the output nozzle extends to a side of the front panel away from the control panel. Wherein, the output nozzle is connected to the heating element, and the control panel is electrically connected to the heating element.

5. The water supply equipment according to claim 4, characterized in that: The front panel is provided with a mounting structure, and the output member has a first part and a second part connected in sequence along the first direction, the first part is used to accommodate the output nozzle and the control panel, and the second part is used to be adapted to be connected with the mounting structure.

6. The water supply equipment according to claim 5, characterized in that The mounting structure includes a groove formed on the front panel, and the second portion includes a first end embedded in the groove.

7. The water supply equipment according to claim 6, characterized in that The mounting structure also includes a plurality of latch holes provided on the groove, and the end surface of the first end is provided with latch hooks having the same number as the latch holes. The latch hooks can be engaged with the latch holes in a detachable manner and enable the second part to be embedded in the groove.

8. The water supply equipment according to claim 4, characterized in that The output member includes a first connecting portion and a second connecting portion that are detachably connected. The first connecting portion has a first cavity for accommodating the control panel, and the second connecting portion has a second cavity for accommodating the output nozzle. The first cavity is communicated with the second cavity.

9. The water supply equipment according to claim 4, characterized in that: The output nozzle has a first output port for outputting the pure water. A first distance d1 is defined between the first output port and the operating surface of the control panel. A second distance d2 is defined between the operating surface and the front panel. d1 ≥ 1 / 4 d2.

10. The water supply equipment according to claim 9, characterized in that A first storage body is protruding from the top of the output nozzle, and a second output port is provided at the bottom of the output nozzle. One end of the second output port extends into the interior of the first storage body, and the other end of the second output port is spaced apart from the first output port and is located between the first output port and the front panel.

11. The water supply equipment according to claim 10, characterized in that: A flow guiding structure is provided inside the output nozzle, and the flow guiding structure is used to drive the pure water to flow toward the first output port; And / or, an anti-collision structure is provided inside the output nozzle, and the anti-collision structure is provided facing the input port of the output nozzle; And / or, a baffle is provided inside the output nozzle, and the number of the baffles is multiple, and the multiple baffles are staggered.