Water outlet faucet and water dispenser
By designing a defoaming chamber and defoamer in the water dispenser's faucet, the problem of bubble interference when hot and cold water are supplied simultaneously is solved, achieving a safe and stable water output effect and improving the user experience.
Patent Information
- Application Number
- CN202423223912.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-25
- Publication Date
- 2025-11-21
- Estimated Expiration
- 2034-12-25
AI Technical Summary
When existing water dispensers provide both hot and cold water at the same time, the water faucets are prone to causing liquid jitter or splashing due to air bubbles, which affects safety and user experience.
Design a water tap that includes a defoaming chamber and a defoamer. The defoaming chamber has multiple inlets that connect to the water outlet. The defoamer is installed at the water outlet and forms a flow channel through a grid-like structure and a guide plate to eliminate air bubbles in the liquid and prevent splashing.
It effectively eliminates air bubbles in liquids, prevents liquid shaking or splashing, improves user experience, and ensures safe water dispensing.
Smart Images

Figure CN223577237U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to the technical field of water dispenser, especially to a water outlet faucet and water dispenser. BACKGROUND
[0002] At present, many water dispensers connect cold water and hot water to the same water outlet faucet, so that the same water outlet faucet can provide hot water and cold water. Thus, after a container takes hot water from the water outlet faucet, the user can take cold water from the water outlet faucet without moving the container. Compared with the water dispenser with a hot water outlet faucet and a cold water outlet faucet, the user can avoid being scalded by the container with boiling water when taking hot and cold water at the same time.
[0003] Because hot water often contains bubbles, the water outlet will shake severely when taking hot water due to the interference of bubbles. In some cases, the user will be scalded by the splashing of hot water due to the rupture of bubbles.
[0004] In particular, the water outlet faucet that provides hot water and cold water at the same time will splash when taking hot water and cold water. This affects the normal use of the user. SUMMARY
[0005] The utility model provides a water outlet faucet, which simultaneously solves the problems of cold water splashing and hot water splashing.
[0006] In a first aspect, the utility model provides a water outlet faucet, which comprises: a water outlet nozzle, the inside of the water outlet nozzle is formed with a defoaming cavity, the defoaming cavity is provided with at least two water inlets, part of the water inlets are used to connect hot water, and the other part of the water inlets are used to connect cold water, the defoaming cavity is also provided with a water outlet, and each water inlet is in communication with the water outlet; and a defoaming device, which is installed at the water outlet and is used to eliminate the bubbles of the liquid flowing out of the water outlet. The defoaming device arranged at the water outlet can eliminate the bubbles of the liquid flowing out of the water outlet. This avoids the liquid flowing out of the water outlet from shaking or splashing due to containing too many bubbles, thereby avoiding the user from being scalded by the splashing of hot water when taking hot water from the water outlet faucet. This improves the user experience of the user.
[0007] In an embodiment, the defoaming device is in a grid-shaped structure to separate the water outlet into a plurality of mutually spaced water outlets.
[0008] In an embodiment, the side wall of the defoaming cavity is connected with a first flow guide plate and a second flow guide plate, the first flow guide plate and the second flow guide plate enclose a flow guide channel, one side of the flow guide channel is in communication with each water inlet, the other side of the flow guide channel is in communication with the water outlet, and the flow area of the flow guide channel gradually decreases along the water flow direction.
[0009] In one embodiment, the first flow guide plate and the sidewall of the defoaming cavity form an overflow cavity on the side of the first flow guide plate away from the flow guide channel, a first gap is formed between the first flow guide plate and the inner wall top surface of the defoaming cavity, and the first gap is in communication with the overflow cavity; part of the water outlet channel is in communication with the flow guide channel, and another part of the water outlet channel is in communication with the overflow cavity.
[0010] In one embodiment, a first flow baffle is further arranged at the flow guide channel, and the length direction of the first flow baffle is arranged at an angle with the water flow direction at the flow guide channel.
[0011] In one embodiment, the water outlet faucet comprises a bubbler, and the bubbler is mounted outside the water outlet of the water outlet nozzle.
[0012] In one embodiment, the water outlet faucet further comprises a water inlet assembly, a water outlet assembly, and a rotating assembly; the water outlet assembly is connected with the water outlet nozzle to supply water to the water inlet of the water outlet nozzle; a first end of the rotating assembly is sealingly connected with an end of the water outlet assembly away from the water outlet nozzle, a second end of the rotating assembly is sealingly connected with the water inlet assembly, and the first end and the second end of the rotating assembly can rotate relative to each other.
[0013] In one embodiment, the water inlet assembly comprises a first housing and a waterway plate, and the waterway plate forms a hot water supply channel; the water outlet assembly comprises a second housing and a hot water outlet pipe, and the hot water outlet pipe is in communication with one of the water inlets; the rotating assembly forms a first water passing channel between the first end and the second end, and when the first end is sealingly connected with the second housing and the second end is sealingly connected with the first housing, the hot water outlet pipe and the hot water supply channel are respectively inserted into the first water passing channel, so that the hot water outlet pipe and the hot water supply channel are in communication.
[0014] In one embodiment, the water inlet assembly further comprises a cold water inlet pipe, and the water outlet assembly further comprises a cold water outlet pipe; the rotating assembly further forms a second water passing channel, the cold water outlet pipe is in communication with one side of the second water passing channel, and the cold water inlet pipe is in communication with the other side of the second water passing channel.
[0015] In a second aspect, the utility model further comprises a water dispenser, which comprises any of the above water outlet faucets.
[0016] Compared with the prior art, the water outlet nozzle is formed with a defoaming cavity, the defoaming cavity is provided with a plurality of water inlets, hot water can be introduced into the defoaming cavity, and cold water can also be introduced into the defoaming cavity. The first flow guide plate and the second flow guide plate of the defoaming cavity surround a flow guide channel, and liquid flowing into the defoaming cavity from the plurality of water inlets can be gathered at the water outlet of the defoaming cavity. Since each water inlet is in communication with the water outlet, the cold water channel and the hot water channel share the defoaming cavity, a defoaming device is installed at the water outlet of the defoaming cavity, liquid at the water outlet can be defoamed, splashing of the liquid flowing out due to the presence of bubbles is avoided, and the user's water taking experience is improved. BRIEF DESCRIPTION OF DRAWINGS
[0017] The utility model will be described in more detail below based on the embodiments and with reference to the drawings.
[0018] Figure 1 is the three-dimensional structure schematic diagram of the water outlet faucet in the embodiment of the utility model;
[0019] Figure 2 is the overhead structure schematic diagram of the water outlet nozzle and the water outlet assembly connecting structure in the embodiment of the utility model;
[0020] Figure 3 is Figure 2 the enlarged structure schematic diagram of the water outlet nozzle in the embodiment of the utility model;
[0021] Figure 4 is Figure 2 the main view structure schematic diagram of the structure in the embodiment of the utility model;
[0022] Figure 5 is Figure 4 the cross-sectional structure schematic diagram of the water outlet nozzle in the embodiment of the utility model;
[0023] Figure 6 is the cross-sectional structure schematic diagram of the water outlet faucet in the embodiment of the utility model;
[0024] Figure 7 is the local cross-sectional structure schematic diagram of the rotating assembly in the utility model.
[0025] REFERENCE SIGNS:
[0026] 1, water outlet nozzle;
[0027] 11, water inlet; 12, water outlet; 121, water outlet channel; 13, first flow guide plate; 14, second flow guide plate; 15, first flow baffle; 16, second flow baffle; 17, shunt partition; 18, first overflow hole; 19, second overflow hole;
[0028] 2, defoaming device; 21, first partition; 22, second partition;
[0029] 3, bubbler; 31, upper cover; 32, lower cover; 33, outer shell; 34, inner core.
[0030] 4, water outlet assembly; 41, second housing; 42, hot water outlet pipe; 43, cold water outlet pipe;
[0031] 5, rotating assembly; 51, first water passage; 52, second water passage; 53, first connecting piece; 54, second connecting piece; 55, third connecting piece; 551, slot;
[0032] 6, water inlet assembly; 61, first housing; 62, waterway board; 621, hot water supply passage; 63, cold water inlet pipe; 64, first electromagnetic valve; 65, second electromagnetic valve;
[0033] 7, screw. DETAILED DESCRIPTION
[0034] The utility model will be further described below with reference to the drawings.
[0035] Referring to Figures 1 to 3 illustrated, the utility model provides a water outlet faucet, which comprises a water outlet nozzle 1 and a defoamer 2.
[0036] The defoaming cavity is provided with at least two water inlets 11, part of the water inlets 11 are used for passing in hot water, and the other part of the water inlets 11 are used for passing in cold water. In use, hot water and cold water can be passed into the defoaming cavity from different water inlets 11 of the defoaming cavity.
[0037] It should be noted that the water temperature of hot water in the application refers to water higher than room temperature, and cold water can refer to water lower than room temperature or equal to room temperature.
[0038] The defoaming cavity is also provided with a water outlet 12, the defoamer 2 is installed at the water outlet 12, each water inlet 11 is communicated with the water outlet 12, and the cold water passage and the hot water passage share the defoaming cavity. The defoamer 2 arranged at the water outlet 12 can eliminate bubbles of liquid flowing out of the water outlet 12. The liquid flowing out of the water outlet 12 is prevented from shaking or splashing due to containing too many bubbles, so that the user is prevented from being scalded when taking hot water from the water outlet faucet. The user experience of the user is improved.
[0039] That is, the defoaming cavity plays a role of converging multiple water inlets 11 together, and compared with arranging multiple cavity structures respectively, the internal structure of the water outlet nozzle 1 is reduced.
[0040] Referring to Figures 1 to 3 illustrated, in some implementations, the defoamer 2 is in a grid-shaped structure, so as to separate the water outlet 12 into multiple mutually spaced water passages 121.
[0041] Figure 3 In the embodiment, the defoaming device 2 is a cross-shaped grid structure, and the water outlet 12 is divided into four water outlet channels 121 which are spaced apart. The large bubbles can be cut by the defoaming device 2 without reducing the maximum water flow, thereby achieving the defoaming function.
[0042] Specifically, the defoaming device 2 includes a first partition plate 21 and a second partition plate 22 which are perpendicular to each other, and the first partition plate 21 and the second partition plate 22 form a cross-shaped structure to divide the water outlet 12 into four water outlet channels 121 which are spaced apart.
[0043] The width direction of the first partition plate 21 is perpendicular to the water flow direction at the flow guide channel, so that the liquid from the flow guide channel is impacted on the first partition plate 21 under the action of the water flow, thereby assisting in breaking the bubbles in the water flow. The width direction of the second partition plate 22 is the same as the water flow direction at the flow guide channel, so that the liquid flowing into the defoaming device 2 from the flow guide channel is cut into two streams, and flows out from the water outlet channels 121 on both sides of the second partition plate 22. When the second partition plate 22 cuts the liquid, the bubbles in the liquid are also cut, thereby improving the defoaming effect of the defoaming device 2.
[0044] In order to install the defoaming device 2, the hole wall at the water outlet 12 is formed with a first mounting groove and a second mounting groove which extend in the vertical direction. In use, the first partition plate is inserted into the first mounting groove, and the second partition plate is inserted into the second mounting groove, thereby avoiding the deflection of the first partition plate and the second partition plate under the impact of the water flow, and improving the stability of the defoaming device 2.
[0045] It can be understood that the grid structure of the defoaming device 2 can also be other structures, such as a cross-shaped structure or a mesh structure, which divides the water outlet 12 into finer water outlet channels 121 to cut the bubbles in the water into smaller bubbles, thereby avoiding the interference of the bubbles on the water flow.
[0046] Referring to Figures 1 to 3 In some implementations, the side wall of the defoaming cavity is connected with a first flow guide plate 13 and a second flow guide plate 14, the first flow guide plate 13 and the second flow guide plate 14 enclose a flow guide channel, one side of the flow guide channel is connected with each water inlet 11, the other side of the flow guide channel is connected with the water outlet 12, and the flow area of the flow guide channel gradually decreases along the water flow direction.
[0047] That is, when the liquid flows into the defoaming cavity from each water inlet 11, the liquid gradually converges under the action of the flow guide channel, and then flows out from the water outlet 12 which is connected with the flow guide channel.
[0048] Referring to Figure 3As shown, the first guide plate 13 is an arc-shaped plate, and the second guide plate 14 is also an arc-shaped plate, with the first guide plate 13 and the second guide plate 14 arranged symmetrically. This allows the flow channel to converge the liquid towards the middle area on the outlet side, and the outlet can be set on the axis of the nozzle, resulting in a more aesthetically pleasing design.
[0049] See Figures 1 to 3 As shown, the length direction of the first guide plate 13 is set at an angle to the liquid flow direction at the outlet 12. When the liquid impacts the first guide plate 13, it will first collide. During the collision, some of the bubbles will directly break, thus achieving the defoaming effect.
[0050] Because the first guide plate 13 is connected to the side wall of the defoaming chamber, gaps are avoided between the first guide plate 13 and the side wall of the defoaming chamber, allowing more liquid to be collected into the guide channel. Similarly, because the second guide plate 14 is connected to the side wall of the defoaming chamber, gaps are avoided between the second guide plate 14 and the side wall of the defoaming chamber, allowing more liquid to be collected into the guide channel.
[0051] See Figure 2 and Figure 3 As shown, in some implementations, the first guide plate 13 and the side wall of the defoaming chamber form an overflow chamber, the overflow chamber is located on the side of the first guide plate 13 away from the guide channel, and a first gap is formed between the first guide plate 13 and the top surface of the defoaming chamber, the first gap being connected to the overflow chamber.
[0052] One part of the water outlet channel 121 is connected to the flow guide channel, and the other part of the water outlet channel 121 is connected to the overflow cavity.
[0053] In other words, the first guide plate 13 and the second guide plate 14 divide the defoaming chamber into a guide channel and an overflow chamber. The liquid flowing from the guide channel to the outlet 12 will partially overflow from the outlet channel 121. Figure 3 The liquid flows out from the two water outlet channels 121 on the right side, while the liquid overflowing from the guide channel into the overflow chamber will flow out from another part of the water outlet channel 121. Figure 3 The water flows out through the two outlet channels 121 on the left side of the middle section. This achieves gas-liquid separation, reducing the probability of vaporization mixing into the liquid and generating bubbles.
[0054] Because a first gap is formed between the first guide plate 13 and the top surface of the defoaming chamber, and the first gap is connected to the overflow chamber, the gas above the guide channel can flow from the first gap to the overflow chamber, and then flow out from the water outlet channel 121 connected to the overflow chamber. This prevents the gas above the liquid from mixing into the water outlet channel 121 from which the liquid flows out, thus avoiding the generation of bubbles again.
[0055] Of course, when the flow is large, the liquid in the flow guide channel is difficult to flow out from the water outlet channel 121 connected with the flow guide channel in time, which will cause the liquid to overflow from the first gap above the first flow guide plate 13 to the overflow cavity, and then flow out from the water outlet channel 121 connected with the overflow cavity.
[0056] As shown in Figures 1 to 3 In some implementations, the second flow guide plate 14 is also in contact with the overflow cavity on the side away from the flow guide channel, and a gap is also left between the second flow guide plate 14 and the inner wall top surface of the defoaming cavity, which allows gas or liquid to flow from above the second flow guide plate 14 to the overflow cavity.
[0057] Of course, the second flow guide plate 14 can also be connected with the inner wall top surface of the defoaming cavity, so that the gas and liquid on the upper layer of the flow guide channel can only flow to the overflow cavity from above the first flow guide plate 13.
[0058] As shown in Figure 2 and Figure 3 As shown in the overflow cavity, a shunt baffle 17 is also arranged to divide the overflow cavity into multiple overflow holes, and each overflow hole is connected to a different water outlet channel 121. The liquid overflowing from the flow guide channel first flows into the first overflow hole 18 adjacent to the first flow guide plate 13 or the second flow guide plate 14, and only when the first overflow hole 18 cannot meet the flow of the overflowing liquid, the liquid will overflow from above the shunt baffle 17, and then flow into the second overflow hole 19 to the water outlet 12.
[0059] As shown in Figures 1 to 3 In some implementations, a first baffle 15 is also arranged at the flow guide channel, and the length direction of the first baffle 15 is arranged at an angle with the water flow direction at the flow guide channel. When the water flow hits the first baffle 15, part of the gas will overflow from the liquid due to the impact, achieving the effect of breaking bubbles. That is, by arranging the first baffle 15, the defoaming capacity of the defoaming cavity can be enhanced.
[0060] Among them, the acute angle formed by the first baffle 15 and the liquid flow direction is greater than the acute angle formed by the first flow guide plate 13 and the liquid flow direction, that is, compared with the first flow guide plate 13, the first baffle 15 has stronger bubble breaking capacity.
[0061] As shown in Figures 1 to 3 In some implementations, a second baffle 16 is also arranged in the flow guide channel, and the second baffle 16 is arranged at an angle with the water flow direction. That is, the second baffle 16 can also play a role in hitting the water flow, further improving the defoaming capacity of the defoaming cavity.
[0062] As shown in Figures 1 to 3As shown, the first baffle 15 is connected with the first deflector 13, the second baffle 16 is connected with the second deflector 14, and the first baffle 15 and the second baffle 16 form a flow guide hole. When the liquid passes through the first baffle 15 or the second baffle 16, the first baffle 15 and the second baffle 16 can be used to collect the liquid. Thus, in the case of broken bubbles, the flow rate of the liquid is increased, so that the liquid passes through the defoaming device 2 at a higher flow rate, and the defoaming effect of the defoaming device 2 on the liquid is enhanced.
[0063] Referring to Figures 1 to 3 As shown, the first baffle 15 and the second baffle 16 are symmetrically arranged, and the symmetry axes between the first baffle and the second baffle 16 and the symmetry axes between the first deflector 13 and the second deflector 14 coincide. The symmetry axis of the water outlet nozzle also coincides with the symmetry axis between the first baffle 15 and the second baffle 16. The water outlet can be arranged on the middle axis of the water outlet nozzle, and the shape is more beautiful.
[0064] Referring to Figure 1 , Figure 4 and Figure 5 As shown, in some implementations, the water faucet further comprises a bubbler 3 installed outside the water outlet 12 of the water outlet nozzle 1. The bubbler 3 reduces the flow rate of the water flow and reduces the splashing of the water outlet. The user's water taking experience is improved. The bubbler 3 comprises an upper cover 31, a lower cover 32, an outer shell 33 and an inner core 34. The upper cover 31 is threadedly connected with the water outlet nozzle 1, so that the liquid flowing out of the water outlet 12 passes through the lower cover 32. The lower cover 32 is provided with a filter screen. The water flow passing through the lower cover 32 will generate bubbles under the action of the filter screen, thereby achieving the effect of reducing the flow rate of the water flow and reducing the splashing of the water outlet.
[0065] Referring to Figure 1 , Figure 6 and Figure 7 As shown, in some implementations, the water faucet further comprises a water inlet assembly 6, a water outlet assembly 4 and a rotating assembly 5. The water outlet assembly 4 is connected with the water outlet nozzle 1 to supply water to each water inlet 11 of the water outlet nozzle 1. The first end of the rotating assembly 5 is sealingly connected with the end of the water outlet assembly 4 away from the water outlet nozzle 1, and the second end of the rotating assembly 5 is sealingly connected with the water inlet assembly 6, so that the water path of the water inlet assembly 6 is connected with the water path of the water outlet assembly 4. One end of the rotating assembly 5 can rotate relative to the second end.
[0066] That is, the water inlet assembly 6 and the water outlet assembly 4 are connected through the rotating assembly 5. The liquid in the water inlet assembly 6 can be supplied to the water outlet assembly 4, and then the liquid can be delivered to each water inlet 11 of the water outlet nozzle 1. Since the first end and the second end of the rotating assembly 5 can rotate relative to each other, the extension direction of the water outlet assembly 4 can be adjusted by adjusting the rotating assembly 5, and thus the water outlet direction of the water outlet nozzle 1 can be completed.
[0067] Referring to Figure 1 , Figure 6 and Figure 7 , two sealing members are arranged between the first end of the rotating assembly 5 and the water outlet assembly 4, so as to realize the sealing connection between the rotating assembly 5 and the water outlet assembly 4. Similarly, two sealing members are arranged between the second end of the rotating assembly 5 and the water inlet assembly 6, so as to realize the sealing connection between the rotating assembly 5 and the water inlet assembly 6.
[0068] Referring to Figure 1 , Figure 6 and Figure 7 , the water inlet assembly 6 comprises a first housing 61 and a waterway plate 62, the waterway plate 62 is formed with a hot water supply passage 621, the water outlet assembly 4 comprises a second housing 41 and a hot water outlet pipe 42, the hot water outlet pipe 42 is connected with one of the water inlets 11; the rotating drill forms a first water passing passage 51 between the first end and the second end, when the first end is sealingly connected with the second housing 41 and the second end is sealingly connected with the first housing 61, the hot water outlet pipe 42 and the hot water supply passage 621 are respectively inserted into the first water passing passage 51, so as to connect the hot water outlet pipe 42 and the hot water supply passage 621.
[0069] That is to say, the hot water supply is realized by connecting the hot water outlet pipe 42 and the hot water supply passage 621 of the waterway plate 62.
[0070] Referring to Figure 1 , Figure 6 and Figure 7 , when the hot water outlet pipe 42 is connected with the hot water supply passage 621, the waterway plate 62 is inserted into the first water passing passage 51, and the first water passing passage 51 is sealingly connected with the waterway plate 62.
[0071] Referring to Figure 1 , Figure 6 and Figure 7 , the first water passing passage 51 extends in the direction of the rotating axis of the rotating assembly 5 at the end connected with the hot water supply passage 621, when the rotating assembly 5 is rotated, the axis position of the first water passing passage 51 will not be deviated, so as to avoid the misalignment between the first water passing passage 51 and the hot water supply passage 621.
[0072] Referring to Figure 1 , Figure 6 and Figure 7As shown, the rotating assembly 5 includes a first connecting piece 53, a second connecting piece 54 and a third connecting piece 55, wherein the bottom end of the first connecting piece 53 is clamped on the third connecting piece 55, and the upper end of the first connecting piece 53 is connected with the water outlet assembly 4 through a screw 7, so that when the first connecting piece 53 rotates relative to the second connecting piece 54, the third connecting piece 55 rotates with the first connecting piece 53. The upper end of the second connecting piece 54 is rotationally connected with the first connecting piece 53, and the lower end of the second connecting piece 54 is connected with the first shell 61 of the water inlet assembly 6.
[0073] The first water passage 51 and the second water passage 52 are both formed in the third connecting piece 55.
[0074] The upper end of the third connecting piece 55 is formed with a slot 551 for inserting the second shell 41 of the water outlet assembly 4 into the slot 551 to be closely connected with the third connecting piece 55. The bottom of the third connecting piece 55 is sleeved on the upper joint of the waterway plate 62, so that the third connecting piece 55 is closely connected with the upper joint of the waterway plate 62.
[0075] Referring to Figure 1 , Figure 6 and Figure 7 , the first electromagnetic valve 64 is arranged in the first shell 61, and is used to control the opening and closing of the hot water supply passage 621. When hot water is needed to be provided by the water outlet faucet, the first electromagnetic valve 64 controls the hot water supply passage 621 to be opened, so that the hot water in the hot water supply passage 621 flows from the first water passage 51 to the hot water outlet pipe 42, and then flows out from the water outlet 12 of the water outlet nozzle 1.
[0076] Referring to Figure 1 , Figure 6 and Figure 7 , in some implementations, the water inlet assembly 6 further includes a cold water inlet pipe 63, and the water outlet assembly 4 further includes a cold water outlet pipe 43. The rotating assembly 5 is further formed with a second water passage 52, the cold water outlet pipe 43 is connected in communication with one side of the second water passage 52, and the cold water inlet pipe 63 is connected in communication with the other side of the second water passage 52. That is, the connection of the cold water circuit is realized through the second water passage 52.
[0077] Referring to Figure 1 , Figure 6 and Figure 7 , the second electromagnetic valve 65 is arranged in the first shell 61, and is used to control the on-off of the cold water inlet pipe 63. When cold water is needed to be provided, the second electromagnetic valve 65 controls the cold water inlet pipe 63 to be opened, so that the cold water in the cold water inlet pipe 63 flows from the second water passage 52 to the cold water outlet pipe 43, and then flows out from the water outlet nozzle 1.
[0078] Referring to Figure 1、 Figure 6 and Figure 7 As shown in
[0079] And since the cold water inlet pipe 63 is a silica gel hose, when the water outlet assembly 4 rotates relatively, the cold water inlet pipe 63 will bend relatively with the rotation of the water outlet assembly 4 to adapt to the change in angle.
[0080] Referring to Figure 1 、 Figure 6 and Figure 7 As shown, the water outlet faucet further comprises a housing, and the water outlet assembly 4 and the water outlet nozzle 1 are both mounted on the housing.
[0081] Referring to Figure 1 、 Figure 6 and Figure 7 Figure 1 Figure 6 Figure 7 Figure 1 Figure 6 Figure 7 Figure 1 Figure 6 Figure 7 Figure 1 Figure 6 Figure 7 Figure 1 Figure 6 Figure 7 Figure 1 Figure 6 Figure 7 Figure 1 Figure 6 Figure 7 Figure 1 Figure 6 Figure 7 Figure 1 Figure 6 Figure 7 Figure 1 Figure 6 Figure 7 Figure 1 Figure 6 Figure 7 Figure 1 Figure 6 Figure 7 Figure 1 Figure 6 In order to improve the stability of the connection, the first end of the rotating assembly 5 is further connected to the water outlet assembly 4 through a screw 7.
[0082] In the second aspect, the utility model further provides a water dispenser, which comprises the above-mentioned water outlet faucet, can guide cold water and hot water into the defoaming cavity, and realizes the sharing of the defoaming device 2. Compared with the defoaming structure arranged only on the hot water supply path, the splashing of cold water outlet can be reduced, and compared with the defoaming structure arranged on the hot water path and the defoaming structure arranged on the cold water path, the volume of the water outlet faucet is reduced.
[0083] In some implementations, the water dispenser further comprises a heating assembly, which warms the normal temperature water to form hot water, and then guides the hot water into the hot water supply channel 621 of the water inlet assembly.
[0084] Although the utility model has been described with reference to the preferred embodiments, various improvements can be made and equivalent parts can be replaced without departing from the scope of the utility model. In particular, as long as there is no structural conflict, the technical features mentioned in each embodiment can be combined in any way. The utility model is not limited to the specific embodiments disclosed in the text, but includes all technical solutions falling within the scope of the claims.
Claims
1. A water tap, characterized in that, It comprises: a water outlet nozzle, an inner part of which is formed with a defoaming cavity, the defoaming cavity is provided with at least two water inlets, and the defoaming cavity is also provided with a water outlet, and each water inlet is in communication with the water outlet; and a defoamer installed at the water outlet for eliminating bubbles of liquid flowing out of the water outlet.
2. The water outlet faucet according to claim 1, characterized in that: the defoamer is in a grid-shaped structure to separate the water outlet into a plurality of mutually spaced water outlet channels.
3. The water outlet faucet according to claim 2, characterized in that: a side wall of the defoaming cavity is connected with a first flow guide plate and a second flow guide plate, the first flow guide plate and the second flow guide plate enclose a flow guide channel, one side of the flow guide channel is in communication with each water inlet, the other side of the flow guide channel is in communication with the water outlet, and the flow area of the flow guide channel gradually decreases along the water flow direction.
4. The water outlet faucet according to claim 3, characterized in that: the first flow guide plate and the side wall of the defoaming cavity enclose an overflow cavity, the overflow cavity is located on the side of the first flow guide plate away from the flow guide channel, a first gap is formed between the first flow guide plate and the inner wall top surface of the defoaming cavity, and the first gap is in communication with the overflow cavity; part of the water outlet channels is in communication with the flow guide channel, and the other part of the water outlet channels is in communication with the overflow cavity.
5. The water outlet faucet according to any one of claims 3 or 4, characterized in that: the flow guide channel is also provided with a first flow blocking plate, and the length direction of the first flow blocking plate is arranged at an angle with the water flow direction at the flow guide channel.
6. The water outlet faucet according to any one of claims 1-4, characterized in that: the water outlet faucet comprises a bubbler, and the bubbler is installed outside the water outlet of the water outlet nozzle.
7. The water outlet faucet according to any one of claims 1-4, characterized in that: the water outlet faucet further comprises a water inlet assembly, a water outlet assembly, and a rotating assembly; the water outlet assembly is connected with the water outlet nozzle to supply water to each water inlet of the water outlet nozzle; a first end of the rotating assembly is sealingly connected with one end of the water outlet assembly away from the water outlet nozzle, and a second end of the rotating assembly is sealingly connected with the water inlet assembly, so that the water channel of the water inlet assembly is in communication with the water channel of the water outlet assembly, wherein the first end and the second end of the rotating assembly can rotate relative to each other.
8. The water outlet faucet according to claim 7, characterized in that: the water inlet assembly comprises a first housing and a water channel plate, and the water channel plate is formed with a hot water supply channel; the water outlet assembly comprises a second housing and a hot water outlet pipe, and the hot water outlet pipe is in communication with one of the water inlets; the rotating assembly forms a first water passing channel between the first end and the second end, and when the first end is sealingly connected with the second housing and the second end is sealingly connected with the first housing, the hot water outlet pipe and the hot water supply channel are respectively inserted into the first water passing channel, so that the hot water outlet pipe and the hot water supply channel are in communication.
9. The water outlet faucet according to claim 7, characterized in that, the water inlet assembly further comprises a cold water inlet pipe, and the water outlet assembly further comprises a cold water outlet pipe; the rotating assembly is further formed with a second water passing channel, one side of the second water passing channel is connected with the cold water outlet pipe, and the other side of the second water passing channel is connected with the cold water inlet pipe.
10. A water dispenser, characterized by It comprises the water outlet faucet according to any one of claims 1-9.