Water receiving box and water purifier
By incorporating a divider and a flow guide hole within the water purifier's receiving box, the problems of shaking and splashing when discharging wastewater are resolved, achieving stable water flow and uniform distribution, thus enhancing the user experience.
Patent Information
- Application Number
- CN202520065106.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-11
- Publication Date
- 2025-12-30
- Estimated Expiration
- 2035-01-11
AI Technical Summary
The water purifier's water collection box is prone to violent shaking when wastewater is poured out, causing wastewater to splash out and making cleaning inconvenient.
A partition is installed inside the water receiving box to divide the box body into at least two interconnected areas, and a guide hole is provided on the partition to control the water flow and reduce sloshing.
The design of the dividers and flow guide holes significantly reduces the risk of water sloshing and overflowing within the water receiving box, thus improving the user experience.
Smart Images

Figure CN223736573U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to water purifier technical field, especially relate to a water receiving box and water purifier. BACKGROUND
[0002] The water receiving box is usually provided below the water receiving port of the water purifier, when the sewage in the water receiving box needs to be poured out, the sewage in the water receiving box will shake violently in a large amplitude during the process of being held by hand, which can easily cause the sewage to splash out, and brings great inconvenience to the cleaning of the water receiving box. UTILITY MODEL CONTENTS
[0003] The utility model solves the technical problem that the sewage in the water receiving box is easy to splash out in the prior art, and provides a water receiving box and a water purifier.
[0004] The utility model solves the above technical problem through the following technical scheme:
[0005] A water receiving box comprises a box body, the box body is used for bearing water, and the water receiving box further comprises a separation part, the separation part is arranged in the box body to separate the box body into at least two regions, and the at least two regions are in communication with each other.
[0006] In the scheme, the separation part is arranged in the box body, the box body can be separated into at least two regions in communication with each other, the flow of the water can be controlled to a certain extent to prevent overflow caused by too much water in one region, the large-scale shaking of the water in the whole box body is limited, the regions separated by the separation part are in communication with each other, and the water can be distributed more uniformly between the regions, so that the risk of water overflow during pouring is reduced.
[0007] Preferably, the separation part comprises a plurality of separation pieces, and the plurality of separation pieces are arranged at intervals along the length direction or the width direction of the box body.
[0008] In the scheme, the design of the plurality of separation pieces can effectively divide the water into smaller regions in communication with each other, so that the shaking amplitude of the water during movement or pouring is significantly reduced, and through more precise separation, the resistance received by the water is increased, so that the fluctuation and flow rate of the water are effectively controlled.
[0009] Preferably, two ends of the separation piece are connected with the box body, the separation piece extends along the width direction of the box body, a plurality of first flow guide holes are arranged on the separation piece, and the plurality of first flow guide holes are arranged at intervals along the length direction of the separation piece; the first flow guide hole is formed in the side wall of the side of the separation piece close to the box body; or the separation piece comprises a plurality of separation units arranged at intervals, and the first flow guide hole is surrounded by adjacent separation units.
[0010] In the present scheme, the two ends of the partition are connected with the box body, and the partition extends along the width direction of the box body. This design divides the water body into smaller areas, effectively controlling the shaking of the water body in the box body. The first flow guide hole provides a path for the flow of the water body, but due to the control of the hole diameter and distribution spacing, the flow of the water body becomes more stable and orderly, further reducing the risk of water body shaking and overflowing. If the partition is composed of multiple partition units arranged at intervals, the layout of the first flow guide hole formed between adjacent partition units further enhances the stability of the water body.
[0011] Preferably, the partition is further provided with a plurality of second flow guide holes, and the plurality of second flow guide holes are arranged at intervals along the length direction of the partition; in the height direction of the partition, the plurality of second flow guide holes are located above the plurality of first flow guide holes.
[0012] In the present scheme, in addition to the plurality of first flow guide holes arranged at intervals along the length direction on the partition, a plurality of second flow guide holes are also arranged. The first flow guide hole and the second flow guide hole form two levels of flow guide paths in the height direction, so that the water body can flow more uniformly and orderly at different heights. This layered design further optimizes the flow of the water body and reduces the violent shaking of the water body caused by single-level flow.
[0013] Preferably, the first flow guide hole and the second flow guide hole are arranged at intervals.
[0014] In the present scheme, the first flow guide hole and the second flow guide hole are arranged at intervals along the length direction of the partition. Through this staggered arrangement, the water body will experience a more dispersed and moderated path when flowing, significantly reducing the overall shaking of the water body in the water receiving box and improving the stability of the water flow.
[0015] Preferably, for any partition, the first flow guide hole and the second flow guide hole are arranged at intervals in the length direction and / or the height direction of the partition; and / or, the heights of the second flow guide holes on adjacent partitions are the same.
[0016] In the present scheme, the staggered arrangement of the flow guide holes forces the water body to bypass the flow guide holes at different positions during the flow process, which not only lengthens the flow path of the water body and disperses the kinetic energy of the water flow, but also allows as many first flow guide holes or second flow guide holes as possible to be arranged in the case of insufficient partition height or length, thereby ensuring to reduce the shaking amplitude of the water body in the box body. The heights of the second flow guide holes are the same, so that the height of the water body in different areas can remain basically the same, and the user can control the water body more easily when using.
[0017] Preferably, the water receiving box further comprises a detection assembly arranged in the box body for detecting the water level in the box body.
[0018] In the scheme, the arrangement of the detection assembly enables the water receiving box to monitor the water level in the box body in real time, accurately reflects the real-time state of the water body, and enables the user to learn the change of the water level in time, thereby avoiding the risk of overflow caused by excessively high water level.
[0019] Preferably, the detection assembly comprises a float and a sleeve, the sleeve is located in the box body and is vertically installed on the bottom wall of the box body, and the float is slidably sleeved on the sleeve.
[0020] In the scheme, the design of the float and the sleeve in the detection assembly enables the water receiving box to accurately monitor the water level, the height of the float changes when the water level changes, and the user can learn the actual height of the water body in real time, thereby improving the overall reliability and user experience.
[0021] Preferably, the length of the sleeve is less than the height of the box body, and / or the height of the partition is lower than the height of the box body.
[0022] In the scheme, the height of the partition and the sleeve is lower than the height of the box body, thereby avoiding the waste of space or the complicated installation problem caused by the excessively long sleeve.
[0023] A water purifier comprises the water receiving box as described above.
[0024] In the scheme, the water receiving box can well bear sewage, and when the user takes out the water receiving box during the process of pouring sewage, the water receiving box shakes, but the partition blocks and slows down the violent shaking of the sewage, and the flow guide hole achieves the effect of sewage flow, so that the sewage is not easily spilled out, thereby improving the user experience.
[0025] The positive progress effect of the utility model lies in:
[0026] By arranging the partition in the box body, the box body can be divided into at least two interconnected regions, the flow of the water body can be controlled to a certain extent to prevent overflow caused by excessive water body in one region, the large-scale shaking of the water body in the entire box body is limited, the water body can be more evenly distributed between the regions separated by the partition, and the risk of water overflow during pouring is reduced. BRIEF DESCRIPTION OF DRAWINGS
[0027] Figure 1 FIG. 1 is a perspective view of a water receiving box according to an embodiment of the utility model;
[0028] Mark explanation:
[0029] 100 water receiving box
[0030] 110 partition
[0031] 111 first flow guide hole
[0032] 112 second flow guide hole
[0033] 120 box body
[0034] 130 detection assembly
[0035] 131 sleeve
[0036] 132 float DETAILED DESCRIPTION
[0037] The utility model is described in detail below with reference to the preferred embodiments and drawings.
[0038] As Figure 1 shown, the embodiment provides a water receiving box 100, which comprises a box body 120 for carrying water, and a partition part arranged in the box body 120 to divide the box body 120 into at least two regions, which are in communication with each other.
[0039] By arranging the partition part in the box body 120, the box body 120 can be divided into at least two regions in communication with each other, so that the flow of water can be controlled to some extent to prevent overflow caused by excessive water in one region, and the large-scale shaking of water in the whole box body 120 is limited. The communication between the partition parts also makes the water distribution between the regions separated by the partition parts more uniform, thereby reducing the risk of water overflow when pouring.
[0040] As Figure 1 shown, the partition part comprises a plurality of partition pieces 110 arranged at intervals along the length or width direction of the box body 120. The design of the plurality of partition pieces 110 can effectively divide the water into smaller regions in communication with each other, thereby significantly reducing the shaking amplitude of the water when moving or pouring. Through more precise partition, the resistance of the water is increased, so that the fluctuation and flow rate of the water are effectively controlled.
[0041] As Figure 1As shown, the two ends of the partition 110 are connected with the box body 120, and the partition 110 extends along the width direction of the box body 120, which divides the water body into smaller areas and effectively controls the shaking of the water body in the box body 120. The partition 110 is provided with a plurality of first flow guide holes 111, and the plurality of first flow guide holes 111 are arranged at intervals along the length direction of the partition 110. The first flow guide hole 111 is formed in the side wall of the side of the partition 110 close to the box body; or the partition 110 includes a plurality of partition units arranged at intervals, and the first flow guide hole 111 is surrounded between adjacent partition units. The first flow guide hole 111 provides a path for the flow of the water body, but due to the control of the aperture and the distribution interval, the flow of the water body becomes more stable and orderly, further reducing the risk of shaking and overflowing of the water body.
[0042] In other alternative embodiments, the partition 110 can also be composed of a plurality of partition units (not shown in the figure) arranged at intervals, and the layout of the first flow guide hole 111 surrounded between adjacent partition units further enhances the stability of the water body. By providing a gap between the partition unit and the box body 120, the water body can flow, which can also achieve the effect of slowing down the shaking of the sewage, and without setting the flow guide hole on the partition unit or the partition 110 also reduces the process.
[0043] As shown in the figure, Figure 1 The partition 110 is also provided with a plurality of second flow guide holes 112, and the plurality of second flow guide holes 112 are arranged at intervals along the length direction of the partition 110. In the height direction of the partition 110, the plurality of second flow guide holes 112 are located above the plurality of first flow guide holes 111. The first flow guide hole 111 and the second flow guide hole 112 are arranged at intervals. On the basis of setting the first flow guide hole 111, a plurality of second flow guide holes 112 are also set, and the first flow guide hole 111 and the second flow guide hole 112 form two levels of flow guide paths in the height direction, so that the water body can flow more uniformly and orderly at different heights. This layered design further optimizes the flow of the water body and reduces the violent shaking of the water body due to single-level flow. The interval arrangement of the first flow guide hole 111 and the second flow guide hole 112 can divide the water body in height, and whether the water level is high or low, a good dispersion and moderation effect can be obtained, which significantly reduces the overall shaking of the water body in the water receiving box 100 and improves the stability of the flow of the water body.
[0044] As shown in the figure, Figure 1As shown, for any partition 110, the first guide hole 111 and the second guide hole 112 are staggered in the length and / or height direction of the partition 110; and / or, the second guide holes 112 on adjacent partitions 110 have the same height. The staggered arrangement of the guide holes forces the water to bypass the guide holes at different positions during flow, which not only lengthens the water flow path and disperses the kinetic energy of the water flow, but also allows for the provision of as many first guide holes 111 or second guide holes 112 as possible when the height or length of the partition 110 is insufficient, thereby reducing the amplitude of water sloshing within the box body. The same height of each second guide hole 112 ensures that the height of the water in different areas remains basically consistent, making it easier for the user to control the water during use.
[0045] The water collection box 100 also includes a detection component 130, which is disposed inside the box body 120 and is used to detect the water level inside the box body 120. In some embodiments, the detection component 130 can be configured as a water level sensor (not shown in the figure), which can flexibly, quickly and accurately monitor the height of the water level inside the box body 120 and provide timely feedback to the user, so that the user can empty the water accumulated in the box body 120 in a timely manner.
[0046] In this embodiment, the detection component 130 includes a float 132 and a sleeve 131. The sleeve 131 is located inside the main body of the box and is vertically installed on the bottom wall of the main body 120. The float 132 is slidably fitted onto the sleeve 131. The design of the float 132 and sleeve 131 in the detection component 130 enables the water receiving box 100 to accurately monitor the water level. The float 132 slides inside the sleeve 131, and its height changes accordingly when the water level changes. This flexible and convenient design allows users to understand the actual water level in real time, improving overall reliability and user experience.
[0047] In an alternative embodiment, a chain can be used to connect the bottom wall of the box body 120 and the float 132 at both ends to detect the water level.
[0048] like Figure 1 As shown, the length of the sleeve 131 is less than the height of the box body 120, and / or the height of the partition is lower than the height of the box body 120, thus avoiding space waste or complicated installation problems caused by an excessively long sleeve 131.
[0049] This utility model provides a water purifier based on the water receiving box 100, which includes the water receiving box 100 as described above. The water receiving box 100 of this water purifier can effectively hold wastewater. During the process of emptying wastewater, when the user removes the water receiving box 100, it causes the water receiving box 100 to shake. However, due to the obstruction of the separator 110, the violent shaking of the wastewater is slowed down, and the guide hole also achieves the effect of wastewater flow, preventing wastewater from easily spilling out and improving the user experience.
[0050] Although the specific embodiments of the present application are described above, those skilled in the art should understand that this is only an example, the protection scope of the present application is defined by the appended claims. Those skilled in the art can make various changes or modifications to these embodiments without departing from the principles and essence of the present application, but these changes and modifications all fall within the protection scope of the present application.
Claims
1. A water receptacle comprising a receptacle body for holding a body of water, characterised in that, The water receiving box further comprises a partition part arranged in the box body to divide the box body into at least two regions which are in communication with each other.
2. The water receptacle of claim 1, wherein, The partition part comprises a plurality of partition pieces arranged at intervals along the length direction or the width direction of the box body.
3. The water receptacle of claim 2, wherein, Two ends of the partition piece are connected with the box body, and the partition piece extends along the width direction of the box body, and a plurality of first flow guide holes are arranged on the partition piece and arranged at intervals along the length direction of the partition piece. The first flow guide hole is formed in the side wall of the partition piece close to the side of the box body; or the partition piece comprises a plurality of partition units arranged at intervals, and the first flow guide hole is formed between adjacent partition units.
4. The water receptacle of claim 3, wherein, The partition piece is further provided with a plurality of second flow guide holes arranged at intervals along the length direction of the partition piece. In the height direction of the partition piece, the plurality of second flow guide holes are located above the plurality of first flow guide holes.
5. The water receptacle of claim 4, wherein, The first flow guide hole and the second flow guide hole are arranged at intervals.
6. The water receptacle of claim 5, wherein, For any one of the partition pieces, the first flow guide hole and the second flow guide hole are arranged at intervals in the length direction and / or the height direction of the partition piece. And / or, the heights of the second flow guide holes on adjacent partition pieces are the same.
7. The water receptacle of claim 1, wherein, The water receiving box further comprises a detection assembly arranged in the box body to detect the water level in the box body.
8. The water receptacle of claim 7, wherein, The detection assembly comprises a float and a sleeve, the sleeve is arranged in the box body and is vertically installed on the bottom wall of the box body, and the float is slidably sleeved on the sleeve.
9. The water receptacle of claim 8, wherein, The length of the sleeve is less than the height of the box body, and / or the height of the partition part is lower than the height of the box body.
10. A water purifier characterized by comprising: The water purifier comprises the water receiving box according to any one of claims 1-9.