Water purifying assembly and refrigeration device

By designing a water passage between the inner and outer shells in the refrigeration equipment to extend the water path, and utilizing the low-temperature environment of the cold storage room to cool the purified water, the problem that existing water purifiers cannot meet the cooling requirements of water-using devices is solved, thus achieving a highly efficient supply of purified water.

CN117101224BActive Publication Date: 2026-04-28HEFEI MIDEA REFRIGERATOR CO LTD +2
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
HEFEI MIDEA REFRIGERATOR CO LTD
Filing Date
2022-05-16
Publication Date
2026-04-28

AI Technical Summary

Technical Problem

Existing water purifiers are insufficient to meet the demand for cooling and purified water for water-using devices in refrigeration equipment.

Method used

Design a water purification component, including an inner shell, an outer shell, and a water filter unit. Utilize the low-temperature environment of the cold storage compartment to cool the purified water. Extend the water path through the water passage between the inner and outer shells to achieve both cooling and supply of purified water.

Benefits of technology

In the low-temperature environment of the cold storage room, the purified water receives sufficient cooling time to meet the cooling requirements of water-using devices, thus achieving an efficient supply of purified water.

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Abstract

The present application relates to the technical field of refrigeration equipment, and provides a water quality purification assembly and refrigeration equipment. The water quality purification assembly comprises a water inlet, a water outlet, an inner shell, an outer shell and a water filtering unit. The inner shell is arranged in the outer shell. A first water passing channel is defined between the inner wall surface of the outer shell and the outer wall surface of the inner shell. The water inlet, the inner shell, the first water passing channel and the water outlet are sequentially communicated. The water filtering unit is arranged in the inner shell. The purified water after filtering is delivered through the first water passing channel. Based on the extension effect of the first water passing channel on the internal water path of the water quality purification assembly, there is sufficient time to cool the purified water under the low-temperature environment provided by the refrigeration compartment, so that the purified water after cooling treatment can be conveniently supplied to the water-using device.
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Description

Technical Field

[0001] This invention relates to the field of refrigeration equipment technology, and in particular to a water purification component and refrigeration equipment. Background Technology

[0002] In related technologies, water purifiers are used in refrigeration equipment such as refrigerators and freezers to provide purified water to the water-using components within the refrigeration equipment. However, in practical applications, existing water purifiers have simple structures and are insufficient to meet the demand for purified water to cool the water-using components within the refrigeration equipment. Summary of the Invention

[0003] The present invention aims to at least solve one of the technical problems existing in the related art. To this end, the present invention proposes a water purification component that facilitates the supply of purified water for cooling to water-using devices within refrigeration equipment.

[0004] The present invention also proposes a refrigeration device.

[0005] According to a first aspect of the present invention, a water purification component is used to be installed in the cold storage compartment of a refrigeration equipment, the water purification component comprising:

[0006] Inlet and outlet;

[0007] The inner shell is disposed within the outer shell, and a first water passage is defined between the inner wall surface of the outer shell and the outer wall surface of the inner shell. The water inlet, the inner shell, the first water passage, and the water outlet are connected in sequence.

[0008] A water filtration unit is disposed in the inner shell.

[0009] According to an embodiment of the present invention, when the water purification component is placed in the cold storage room of a refrigeration equipment, the water entering the water purification component is first filtered into purified water by a water filtration unit. After the purified water enters the first water passage, based on the extension effect of the first water passage on the internal water path of the water purification component, there is sufficient time to cool the purified water in the low temperature environment provided by the cold storage room. The cooled purified water is then discharged from the inlet, thereby facilitating the supply of cooled purified water to water-using devices.

[0010] According to one embodiment of the present invention, the first end of the first water passage is formed between the outer wall surface of the first end of the inner shell and the inner wall surface of the outer shell, and communicates with the water outlet;

[0011] The second end of the first water passage is formed between the outer wall surface of the second end of the inner shell and the inner wall surface of the outer shell, and communicates with the second end of the inner shell.

[0012] According to one embodiment of the present invention, the first end of the water filtration unit is used to output purified water, and the first end of the water filtration unit faces the second end of the inner shell; the second end of the water filtration unit faces the first end of the inner shell, and the first end of the inner shell is connected to the water inlet.

[0013] According to one embodiment of the present invention, the inner shell is provided with a water storage chamber and a filter chamber, the first water passage, the water storage chamber and the filter chamber are in fluid communication, the water filtration unit is disposed in the filter chamber, and the filter chamber is in communication with the water inlet.

[0014] According to one embodiment of the present invention, the first end of the water filtration unit is used to output purified water, and the first end of the water filtration unit faces the second end of the inner shell; the second end of the water filtration unit faces the first end of the inner shell, and the water inlet is located at the first end of the inner shell;

[0015] A water storage cavity is formed between the first end of the water filtration unit and the second end of the inner shell, and the first water passage is connected to the water storage cavity through the second end of the inner shell.

[0016] According to one embodiment of the present invention, a support member is provided inside the water storage cavity, the support member is supported on the first end of the water filtration unit, and the second end of the water filtration unit abuts against the first end of the inner shell.

[0017] According to one embodiment of the present invention, the first end of the water filtration unit is provided with a positioning structure, the positioning structure being adapted to the first end of the support member facing the water filtration unit; or, the first end of the water filtration unit and the support member are formed as an integral structure.

[0018] According to one embodiment of the present invention, the second end of the outer shell is closed, and the second end of the inner shell is open; a flow guiding gap is provided between the second end of the inner shell and the second end of the outer shell, and the first water passage is connected to the water storage cavity through the flow guiding gap.

[0019] According to one embodiment of the present invention, the second end of the outer shell is closed, and the second end of the inner shell is open; the second end of the inner shell is spaced apart from the second end of the outer shell to form a water storage cavity between the second end of the inner shell and the second end of the outer shell; the first water passage is in communication with the water storage cavity, and the water storage cavity is in communication with the inner cavity of the inner shell through the second end of the inner shell.

[0020] According to one embodiment of the present invention, the water filtration unit includes a filter element; a second water passage is formed between the side of the filter element and the inner wall of the inner shell, and a clean water flow channel is provided inside the filter element, the clean water flow channel being connected to the first water passage;

[0021] The filter element is used to filter the water that enters the purified water channel from the second water passage.

[0022] According to one embodiment of the present invention, the water filtration unit further includes a first cap and a second cap; the first cap is sealed at one end of the filter element, and the first cap is provided with a purified water outlet communicating with the purified water flow channel; the second cap is sealed at the other end of the filter element.

[0023] According to one embodiment of the present invention, it further includes:

[0024] A water-stopping structure, comprising a water-stopping component and a water-stopping channel constructed at the first end of the outer shell, wherein the water-stopping component is connected to the first end of the inner shell, the water-stopping component is movably disposed in the water-stopping channel, and the water-stopping component is constructed with an inlet channel and an outlet channel.

[0025] The water inlet is formed between the inner wall surface of the water-stopping channel and the outer wall surface of the water-stopping component; the water outlet end of the water inlet channel is connected to the inner shell; the water outlet end of the water outlet channel is formed as the water outlet.

[0026] When the water-stopping component moves to the blocking position of the water-stopping channel, the water inlet end of the water inlet channel and the water inlet end of the water outlet channel are blocked, so that the water inlet is blocked from the water inlet channel and the first water passage is blocked from the water outlet channel.

[0027] When the water-stopping component moves to the position where the water-stopping channel is connected, the inlet end of the water inlet channel and the inlet end of the water outlet channel are open, so that the water inlet is connected to the water inlet channel and the first water passage is connected to the water outlet channel.

[0028] According to one embodiment of the present invention, the water-stopping structure further includes: a first sealing ring, a second sealing ring, and a third sealing ring sequentially and spaced apart between the outer wall surface of the water-stopping member and the inner wall surface of the water-stopping channel along the movement direction of the water-stopping member;

[0029] The water inlet end of the water inlet channel is located between the first sealing ring and the second sealing ring; the water outlet end of the water outlet channel is located between the second sealing ring and the third sealing ring.

[0030] When the water-stopping component moves to the blocking position of the water-stopping channel, the water inlet end of the water inlet channel is in the blocking channel formed between the first sealing ring and the second sealing ring, and the water inlet end of the water outlet channel is in the blocking channel formed between the second sealing ring and the third sealing ring.

[0031] When the water-stopping component moves to the position where the water-stopping channel is connected, the water-stopping component and the water-stopping channel form a flow-guiding gap at the position where the first sealing ring is located, and the water-stopping component and the water-stopping channel form a flow-guiding gap at the position where the third sealing ring is located.

[0032] According to a second aspect of the present invention, a refrigeration device includes a cold storage compartment and a water supply component, and further includes a water purification component as described in any of the preceding claims installed in the cold storage compartment, wherein the outlet of the water purification component is connected to the water supply component.

[0033] According to one embodiment of the present invention, it further includes: a liquid dispensing valve; the liquid dispensing valve includes a liquid inlet and a plurality of liquid outlets, the water outlet of the water purification component is connected to the liquid inlet, and the plurality of liquid outlets are connected to a plurality of water-using devices in a corresponding manner.

[0034] According to one embodiment of the present invention, the water-using device includes a first ice maker, a second ice maker, and a distributor; the first ice maker is located in the cold storage room, the second ice maker is located in the freezer room of the refrigeration equipment, and the distributor is located on the door of the refrigeration equipment.

[0035] Additional aspects and advantages of the invention will be set forth in part in the description which follows, and in part will be obvious from the description, or may be learned by practice of the invention. Attached Figure Description

[0036] To more clearly illustrate the technical solutions in the embodiments of the present invention or related technologies, the drawings used in the description of the embodiments or related technologies will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0037] Figure 1 This is a schematic diagram of the structure of the water purification component provided in an embodiment of the present invention;

[0038] Figure 2 This is provided by the embodiments of the present invention. Figure 1 One of the schematic diagrams of the AA cross-sectional structure;

[0039] Figure 3 This is provided by the embodiments of the present invention. Figure 1 Schematic diagram of the AA cross-section structure (Part 2);

[0040] Figure 4 This is a schematic diagram of the connection between the water purification component and the connector provided in an embodiment of the present invention;

[0041] Figure 5This is provided by the embodiments of the present invention. Figure 4 A schematic diagram of the AA cross-sectional structure;

[0042] Figure 6 This is provided by the embodiments of the present invention. Figure 4 A schematic diagram of the exploded structure;

[0043] Figure 7 This is provided by the embodiments of the present invention. Figure 2 A magnified view of a portion of point K;

[0044] Figure 8 This is a schematic diagram of the structure of the water-stopping component provided in an embodiment of the present invention;

[0045] Figure 9 This is one of the structural schematic diagrams of the refrigeration equipment provided in the embodiments of the present invention;

[0046] Figure 10 This is the second structural schematic diagram of the refrigeration equipment provided in the embodiment of the present invention.

[0047] Figure label:

[0048] 100: Water purification component; 200: Connector; 300: Liquid dispensing valve; 400: First ice maker; 500: Second ice maker; 600: Distributor; 700: Refrigeration compartment; 800: Freezer compartment; 900: Door;

[0049] 11: Inlet; 12: Outlet; 13: Inner shell; 14: Outer shell; 141: Cover; 15: Filter unit; 151: Filter element; 152: First cover; 153: Second cover; 16: Flow guide; 17: Support; 18: Water-stopping structure; 181: Water-stopping component; 1811: First sealing ring; 1812: Second sealing ring; 1813: Third sealing ring; 81: Inlet channel; 82: Outlet channel; 182: Water-stopping channel; 1821: First protrusion; 183: Elastic element; 101: First water passage channel; 102: Second water passage channel; 131: Filter chamber; 132: Water storage chamber. Detailed Implementation

[0050] The embodiments of the present invention will be described in further detail below with reference to the accompanying drawings and examples. The following examples are for illustrative purposes only and should not be construed as limiting the scope of the invention.

[0051] In the description of the embodiments of the present invention, it should be noted that the terms "center," "longitudinal," "lateral," "upper," "lower," "front," "rear," "left," "right," "vertical," "horizontal," "top," "bottom," "inner," and "outer," etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing the embodiments of the present invention and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on the embodiments of the present invention. In addition, the terms "first," "second," and "third" are used for descriptive purposes only and should not be construed as indicating or implying relative importance.

[0052] In the description of the embodiments of the present invention, it should be noted that, unless otherwise explicitly specified and limited, the terms "connected" and "linked" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium. Those skilled in the art can understand the specific meaning of the above terms in the embodiments of the present invention based on the specific circumstances.

[0053] In embodiments of the present invention, unless otherwise explicitly specified and limited, "above" or "below" the second feature can mean that the first feature is in direct contact with the second feature, or that the first feature is in indirect contact with the second feature through an intermediate medium. Furthermore, "above," "on top of," and "over" the second feature can mean that the first feature is directly above or diagonally above the second feature, or simply that the first feature is at a higher horizontal level than the second feature. "Below," "below," and "under" the second feature can mean that the first feature is directly below or diagonally below the second feature, or simply that the first feature is at a lower horizontal level than the second feature.

[0054] In the description of this specification, the references to terms such as "one embodiment," "some embodiments," "example," "specific example," or "some examples," etc., refer to specific features, structures, materials, or characteristics described in connection with that embodiment or example, which are included in at least one embodiment or example of the present invention. In this specification, the illustrative expressions of the above terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples. Moreover, without contradiction, those skilled in the art can combine and integrate the different embodiments or examples described in this specification, as well as the features of different embodiments or examples.

[0055] like Figures 1 to 10 As shown, this embodiment of the invention provides a water purification component and a refrigeration device.

[0056] like Figures 1 to 6 As shown, the first aspect of the present invention provides a water purification component 100 for installation in the cold storage compartment 700 of a refrigeration equipment. The water purification component 100 has an inlet 11 and an outlet 12. The water purification component 100 also includes an inner shell 13, an outer shell 14 and a water filtration unit 15.

[0057] The inner shell 13 is disposed within the outer shell 14. A first water passage 101 is defined between the inner wall surface of the outer shell 14 and the outer wall surface of the inner shell 13. The water inlet 11, the inner shell 13, the first water passage 101, and the water outlet 12 are sequentially connected. In this embodiment, both the inner shell 13 and the outer shell 14 can be made of thermally conductive materials such as copper, aluminum, and stainless steel to facilitate heat exchange between the water in the water purification component 100 and the low-temperature air in the cold storage compartment 700.

[0058] Furthermore, in this embodiment, the water filtration unit 15 is disposed within the inner shell 13. After the water enters the inner shell 13 through the inlet 11, the water filtration unit 15 filters the water. The purified water output by the water filtration unit 15 enters the first water passage 101 from the inner shell 13, and the first water passage 101 guides the purified water to be discharged from the outlet 12. Here, this embodiment does not require the inlet 11, the inner shell 13, the first water passage 101, and the outlet 12 to be arranged continuously, as long as it is ensured that the water can flow sequentially along the inlet 11, the inner shell 13, the first water passage 101, and the outlet 12.

[0059] Compared to existing water purifiers, when the water purification component 100 of this embodiment is placed in the cold storage compartment 700 of the refrigeration equipment, the water entering the water purification component 100 is first filtered into purified water by the water filtration unit 15. After the purified water enters the first water passage 101, based on the extension effect of the first water passage 101 on the internal water path of the water purification component 100, there is sufficient time to cool the purified water in the low temperature environment provided by the cold storage compartment 700. The cooled purified water is then discharged from the water inlet 11, thereby facilitating the supply of cooled purified water to water-using devices.

[0060] In some embodiments, such as Figure 2 , Figure 3 and Figure 5 As shown, the first end of the first water passage 101 in this embodiment is formed between the outer wall surface of the first end of the inner shell 13 and the inner wall surface of the outer shell 14, and is connected to the water outlet 12.

[0061] The second end of the first water passage 101 is formed between the outer wall surface of the second end of the inner shell 13 and the inner wall surface of the outer shell 14, and communicates with the second end of the inner shell 13.

[0062] In this embodiment, the first water passage 101 is arranged along the extension direction from the first end to the second end of the inner shell 13 to maximize the arrangement length of the first water passage 101.

[0063] Since the first water passage 101 is formed between the opposing walls of the inner shell 13 and the outer shell 14, and the water filtration unit 15 is disposed in the inner shell 13, the purified water obtained after filtration by the water filtration unit 15 will be cooled during the flow of the purified water in the first water passage 101 under the condition of air convection heat exchange between the outer shell 14 and the cold storage compartment 700. Furthermore, the cooling capacity of the purified water in the first water passage 101 can be further conducted to the inner shell 13 through the inner shell 13 to cool the water in the inner shell 13. Thus, the water purification component 100 achieves cooling treatment while purifying the water, meeting the demand for supplying cooled purified water to water-using devices.

[0064] In some embodiments, such as Figure 2 , Figure 3 and Figure 5 As shown, in order to further increase the water flow path within the water purification component 100, this embodiment sets the first end of the water filtration unit 15 for outputting purified water, with the first end of the water filtration unit 15 facing the second end of the inner shell 13; the second end of the water filtration unit 15 faces the first end of the inner shell 13, and the first end of the inner shell 13 is connected to the water inlet 11.

[0065] In practical applications, water enters the inner shell 13 through the inlet 11 at the first end of the inner shell 13. After being filtered by the water filter unit 15, the purified water is output towards the second end of the inner shell 13 into the first water passage 101 shown in the above embodiment, and is discharged from the outlet 12 under the guidance of the first water passage 101. Figure 5 The arrows in the middle indicate the direction of water flow.

[0066] As can be seen from the above, the flow direction of the water in the inner shell 13 is exactly opposite to the flow direction of the water in the first water passage 101. This not only makes effective use of the internal space of the water purification component 100 and maximizes the water flow path, but also facilitates heat exchange between the water inside and outside the inner shell 13, ensuring the cooling effect of the water inside the water purification component 100.

[0067] In some embodiments, in order to achieve the integrated design of water purification function and water storage function of water purification component 100, the inner shell shown in this embodiment is provided with water storage cavity 132 and filter cavity 131. The first water passage 101, water storage cavity 132 and filter cavity 131 are fluidly connected. The water filtration unit is disposed in filter cavity 131 and filter cavity 131 is connected to water inlet 11.

[0068] In this embodiment, the filter chamber 131 can be positioned near the first end of the inner shell 13, and the water storage chamber 132 can be positioned near the second end of the inner shell 13, so that the first water passage 101, the water storage chamber 132 and the filter chamber 131 are connected in sequence. Alternatively, the filter chamber 131 can be positioned near the second end of the inner shell 13, and the water storage chamber 132 can be positioned near the first end of the inner shell 13, so that the first water passage 101, the filter chamber 131 and the water storage chamber 132 are connected in sequence.

[0069] like Figure 2 and Figure 3 As shown, the first end of the water filtration unit 15 in this embodiment is used to output purified water, and the first end of the water filtration unit 15 faces the second end of the inner shell 13; the second end of the water filtration unit 15 faces the first end of the inner shell 13, and the water inlet 11 is located at the first end of the inner shell 13.

[0070] The first end of the water filtration unit 15 is located in the inner shell 13, and a water storage cavity 132 is formed between the first end of the water filtration unit 15 and the second end of the inner shell 13. The first water passage 101 is connected to the water storage cavity 132 through the second end of the inner shell 13.

[0071] In this embodiment, based on the design of the water storage chamber 132, the first water passage 101, the water storage chamber 132 and the water filtration unit 15 are integrated into one unit, so that the water purification component 100 shown in this embodiment has both water storage function and water purification function.

[0072] In this embodiment, the water purification system utilizes a water storage chamber 132 to store the purified water. Because the water purification component 100 is located in the low-temperature environment of the cold storage room 700, the purified water is cooled during long-term storage, thus meeting the water supply needs of the water-using components within the refrigeration equipment.

[0073] In some embodiments, such as Figure 2 As shown, in order to facilitate the installation of the water filter unit 15, the water storage cavity 132 shown in this embodiment is provided with a support member 17. The support member 17 supports the first end of the water filter unit 15, and the second end of the water filter unit 15 abuts against the first end of the inner shell 13.

[0074] like Figure 2 As shown, the second end of the outer shell 14 in this embodiment is provided with a cap, so that the second end of the outer shell 14 is closed and the second end of the inner shell 13 is open. Thus, after the second end of the water filtration unit 15 abuts against the first end of the inner shell 13, this embodiment can abut one end of the support member 17 against the first end of the water filtration unit 15. Therefore, after the cap 141 is installed at the second end of the outer shell 14, the other end of the support member 17 abuts against the second end of the outer shell 14, so that the support member 17 is supported on the first end of the water filtration unit 15.

[0075] Here, the support member 17 shown in this embodiment includes a plurality of arc-shaped support plates, which are arranged in a cylindrical shape along the circumference relative to the central axis of the inner shell 13, so as to support the first end of the water filtration unit 15.

[0076] Thus, the support member 17 shown in this embodiment not only provides stable support for the water filtration unit 15, but also does not occupy too much of the internal space of the water storage chamber 132.

[0077] Meanwhile, the support member 17 shown in this embodiment has a second flow channel spaced out in the water storage cavity 132. The second flow channel is used to guide the water in the water storage cavity 132 to flow in a directional manner along the extension direction of the second flow channel. Thus, while the second flow channel realizes water storage, it also realizes the first-in-first-out of water, which has the effect of preventing water mixing.

[0078] In some examples, the support 17 shown in this embodiment extends spirally within the water storage cavity 132 relative to the central axis of the inner shell 13, so that the second flow channel is formed as a spiral flow channel.

[0079] In some examples, the support member 17 shown in this embodiment may also adopt multiple arc-shaped support plates as in the above embodiments, so that the second flow channel extends along the axial direction of the inner shell 13, so as to guide the water in the inner shell 13 to flow in the axial direction of the inner shell 13 based on the second flow channel.

[0080] In some embodiments, in order to ensure that the support member 17 provides stable support to the first end of the water filter unit 15 facing the water filter unit 15, this embodiment provides a positioning structure at the first end of the water filter unit 15. For example, the positioning structure is a positioning groove or a positioning block, and the positioning structure is adapted to the first end of the support member 17 facing the water filter unit 15.

[0081] In some examples, to facilitate the installation of the water filter unit 15, this embodiment forms the first end of the water filter unit 15 and the support member 17 into an integral structure.

[0082] In some embodiments, such as Figure 3 As shown, the second end of the outer shell 14 in this embodiment is closed, and the second end of the inner shell 13 is open; a flow guide gap is provided between the second end of the inner shell 13 and the second end of the outer shell 14, and the first water passage 101 is connected to the water storage cavity 132 through the flow guide gap.

[0083] In this embodiment, based on the setting of the flow guide gap, the purified water in the water storage chamber 132 can flow directly into the first water passage 101 through the flow guide gap.

[0084] In some examples, the second end of the inner shell 13 may abut against the second end of the outer shell 14, and multiple openings may be provided at the second end of the inner shell 13 to form the flow guide gap shown in this embodiment based on the multiple openings.

[0085] In some examples, since the second end of the water filter unit 15 abuts against the first end of the inner shell 13, the support member 17 supports the first end of the water filter unit 15. Based on the supporting effect of the support member 17, in this embodiment, the second end of the inner shell 13 can also be spaced apart from the second end of the outer shell 14. The space between the second end of the inner shell 13 and the second end of the outer shell 14 forms the flow guide gap shown in this embodiment.

[0086] In some embodiments, such as Figure 2 As shown, in order to facilitate the integrated design of the water purification component 100's water storage function and water purification function, in this embodiment, the second end of the outer shell 14 can be set as a closed shape, and the second end of the inner shell 13 can be set as an open shape; the second end of the inner shell 13 is spaced apart from the second end of the outer shell 14 to form a water storage cavity 132 between the second end of the inner shell 13 and the second end of the outer shell 14, the first water passage 101 is connected to the water storage cavity 132, and the water storage cavity 132 is connected to the inner cavity of the inner shell 13 through the second end of the inner shell 13.

[0087] In this embodiment, a support member 17 can also be provided in the water storage cavity 132. One end of the support member 17 is connected to the first end of the water filtration unit 15 and the inner shell 13 respectively, and the other end of the support member 17 abuts against the second end of the outer shell 14. The second end of the water filtration unit 15 abuts against the first end of the inner shell 13.

[0088] In actual arrangement, this embodiment can optimize the extension length of the water filter unit 15 along the axial direction of the inner shell 13 so that when the second end of the water filter unit 15 abuts against the first end of the inner shell 13, the first end of the water filter unit 15 is flush with the second end of the inner shell 13.

[0089] Thus, in this embodiment, when installing the support member 17, one end of the support member 17 can abut against the first end of the water filter unit 15 and the second end of the inner shell 13 respectively. After the cover 141 is installed on the second end of the outer shell 14, the other end of the support member 17 abuts against the cover 141 on the second end of the outer shell 14, so that the support member 17 can jointly support the water filter unit 15 and the inner shell 13, and ensure that a water storage cavity 132 is formed between the second end of the inner shell 13 and the second end of the outer shell 14.

[0090] In some embodiments, such as Figure 5As shown in the figure, a flow guide 16 is provided between the inner wall surface of the outer shell 14 and the outer wall surface of the inner shell 13 in this embodiment. The flow guide 16 forms a first flow channel within the first water passage 101. One end of the first flow channel is connected to the water outlet, and the other end of the first flow channel is connected to the inner shell 13. The first flow channel is used to guide the water to flow in a directional manner along its extension direction, so as to achieve the first-in-first-out of water and prevent water mixing.

[0091] In practical applications, this embodiment can be configured such that the flow guide 16 extends along the central axis of the inner shell 13, so that the first flow guide channel is formed as a straight flow channel extending along the central axis of the inner shell 13.

[0092] In some examples, this embodiment may also be configured such that the guide member 16 extends in a spiral shape relative to the central axis of the inner shell 13, so as to create a spiral flow channel in the first water passage 101. The spiral flow channel guides the water to flow on the outer wall of the inner shell 13, so as to realize the first-in-first-out of the water and prevent the water from becoming turbid during the flow process.

[0093] In this embodiment, based on the design of the flow guide 16, on the one hand, a radial support is formed between the inner shell 13 and the outer shell 14, and on the other hand, a spiral flow channel can be formed between the inner shell 13 and the outer shell 14. After the water enters the spiral flow channel, it can only flow along the extension direction of the spiral flow channel. During the process of the water flowing along the spiral flow channel, the water is first-in, first-out. When the water purification component 100 vibrates or operates due to external force, the water will not flow back in the spiral flow channel, thereby reducing the turbidity inside the flow channel.

[0094] In this embodiment, the flow guide 16 can be disposed on the inner wall surface of the outer shell 14, the outer wall surface of the inner shell 13, or sandwiched between the inner wall surface of the outer shell 14 and the outer wall surface of the inner shell 13.

[0095] In some embodiments, the axial length of the flow guide 16 extending relative to the central axis of the inner shell 13 may be less than the axial length of the inner shell 13. For example, the axial length of the flow guide 16 extending relative to the central axis of the inner shell 13 may be equal to (50% to 75%) the axial length of the inner shell 13.

[0096] To further enhance the anti-mixing effect, in this embodiment, the axial length of the guide member 16 extending relative to the central axis of the inner shell 13 is also set to be equal to the axial length of the inner shell 13.

[0097] In some embodiments, such as Figure 5 and Figure 6As shown, the water filtration unit 15 in this embodiment includes a filter element 151; a second water passage 102 is formed between the side of the filter element 151 and the inner wall of the inner shell 13, and a clean water flow channel is provided inside the filter element 151, which is connected to the first water passage 101.

[0098] The filter element 151 can be either an activated carbon rod filter element 151 or a filter element 151 made of reverse osmosis membrane, which is known in the art. The filter element 151 is used to filter the water that enters the purified water channel from the second water passage 102.

[0099] In the water purification process, this embodiment sets up a second water passage 102 to ensure that the water in the inner shell 13 first enters the second water passage 102 and is then filtered by the filter element 151 to achieve water purification.

[0100] In some embodiments, such as Figure 6 As shown, the water filtration unit 15 in this embodiment also includes a first cover 152 and a second cover 153; the first cover 152 is encapsulated at one end of the filter element 151, and the first cover 152 is provided with a clean water outlet that communicates with the clean water flow channel; the second cover 153 is encapsulated at the other end of the filter element 151.

[0101] Specifically, in this embodiment, the first cover 152 is provided with a first positioning groove on one side facing the filter element 151, and one end of the filter element 151 is inserted into the first positioning groove. The center of the first cover 152 facing the filter element 151 is provided with a first extension, which is adapted to be inserted into one end of the purified water channel. The first extension is provided with a purified water outlet that passes through the filter element 151 along its axial direction.

[0102] Meanwhile, the second cover 153 shown in this embodiment has a second positioning groove on one side facing the filter element 151, and the other end of the filter element 151 is inserted into the second positioning groove. The center of the second cover 153 facing the filter element 151 has a third extension, which is adapted to be inserted into the other end of the water purification channel to block the other end of the water purification channel.

[0103] In some examples, this embodiment may provide the positioning structure shown in the above embodiment on the side of the first cover 152 facing away from the filter element 151. For example, the positioning structure is a positioning groove or a positioning protrusion. The positioning structure is used to adapt to the end of the support member 17 facing the water filtration unit 15 shown in the above embodiment to ensure the reliability of the support member 17 in supporting the water filtration unit 15.

[0104] In some examples, in order to facilitate the installation of the water filtration unit 15, the first cover 152 and the support member 17 can also be designed as an integral structure.

[0105] In some embodiments, such as Figure 7 and Figure 8 As shown, the water purification component 100 shown in this embodiment further includes a water-stopping structure 18, which includes a water-stopping component 181 and a water-stopping channel 182 constructed at the first end of the outer shell 14. The water-stopping component 181 is connected to the first end of the inner shell 13. The water-stopping component 181 is movably disposed in the water-stopping channel 182. The water-stopping component 181 is constructed with an inlet channel 81 and an outlet channel 82.

[0106] The inner wall of the water-stop channel 182 and the outer wall of the water-stop component 181 form the water inlet 11 shown in the above embodiment. The water inlet end of the water inlet channel 81 and the water outlet end of the water outlet channel 82 are respectively constructed on the outer wall of the water-stop component 181. The water outlet end of the water inlet channel 81 is connected to the inner shell 13, and the water outlet end of the water outlet channel 82 is formed as the water outlet 12 shown in the above embodiment.

[0107] The water-stopping structure 18 has a first mating state and a second mating state; when the water-stopping structure 18 is in the first mating state, the water-stopping component 181 moves to the blocking position of the water-stopping channel 182, and the water inlet end of the water inlet channel 81 and the water inlet end of the water outlet channel 82 are blocked, so that the water inlet 11 is blocked from the water inlet channel 81, and the first water passage 101 is blocked from the water outlet channel 82.

[0108] When the water-stopping structure 18 is in the second mating state, the water-stopping component 181 moves to the connection position of the water-stopping channel 182, and the water inlet end of the water inlet channel 81 and the water inlet end of the water outlet channel 82 are open, so that the water inlet 11 is connected to the water inlet channel 81 and the first water passage 101 is connected to the water outlet channel 82.

[0109] According to the embodiment of the present invention, the water-stopping structure 18, by constructing an inlet channel 81 and an outlet channel 82 in the water-stopping member 181, when the water-stopping structure 18 is in the first engagement state, the water-stopping member 181 moves to the blocking position of the water-stopping channel 182, and the water-stopping channel 182 blocks the inlet channel 81 and the outlet channel 82, so as to avoid the problem of internal water flowing out when the water filter unit 15 of the water purification component 100 is pulled out and replaced, and facilitates the installation and maintenance of the water purification component 100.

[0110] In practical applications, the water-stopping structure 18 provided in this embodiment is detachably connected to the connector 200. When it is found that the filter element 151 needs to be pulled out and replaced, the connector 200 can be separated from the water-stopping structure 18. At this time, the water-stopping structure 18 is in the first mating state, and the water-stopping component 181 is moved to the blocking position of the water-stopping channel 182. Figure 7As shown, the water-stopping component 181 moves upward relative to the water-stopping channel 182. Since the water inlet and outlet of the water-stopping component 181 are blocked, the water in the water purification component 100 cannot flow out from its inlet 11 and outlet 12, thereby realizing the water-stopping function of the water-stopping structure 18.

[0111] When the water-stop structure 18 is installed on the connector 200, the water-stop structure 18 is in the second mating state, and the water-stop component 181 moves to the communication position of the water-stop channel 182. At this time, the water-stop component 181 moves downward relative to the water-stop channel 182, and the water inlet and water outlet on the water-stop component 181 are exposed. The water flow from the first water inlet on the connector 200 can flow into the inner shell 13 in sequence through the water inlet 11 and the water inlet channel 81. The water in the first water passage 101 can also flow to the second water inlet of the connector 200 through the water outlet channel 82.

[0112] In some embodiments, such as Figure 7 As shown, the water-stopping structure 18 in this embodiment further includes a first sealing ring 1811, a second sealing ring 1812, and a third sealing ring 1813, which are sequentially and spaced apart between the outer wall surface of the water-stopping member 181 and the inner wall surface of the water-stopping channel 182 along the direction of movement of the water-stopping member 181. For example, in this embodiment, the water-stopping member 181 can move up and down relative to the water-stopping channel 182. Therefore, the first sealing ring 1811, the second sealing ring 1812, and the third sealing ring 1813 are sequentially and spaced apart from top to bottom on the water-stopping member 181. The first sealing ring 1811, the second sealing ring 1812, and the third sealing ring 1813 are all located between the water-stopping member 181 and the water-stopping channel 182. The first sealing ring 1811, the second sealing ring 1812, and the third sealing ring 1813 can be rubber rings.

[0113] In this embodiment, the water inlet end of the water inlet channel 81 is located between the first sealing ring 1811 and the second sealing ring 1812; the water outlet end of the water outlet channel 82 is located between the second sealing ring 1812 and the third sealing ring 1813. That is, the water inlet end of the water inlet channel 81 is located above the water outlet end of the water outlet channel 82.

[0114] It should be noted that in other embodiments, the first sealing ring 1811, the second sealing ring 1812, and the third sealing ring 1813 may be sequentially and alternately fitted onto the water-stopping member 181 from bottom to top. That is, the water inlet end of the water inlet channel 81 is located below the water outlet end of the water outlet channel 82.

[0115] like Figure 7 As shown, the inner wall of the water-stop channel 182 is provided with a first protrusion 1821, which is an annular protrusion.

[0116] When the water-stopping structure 18 is in the first mating state, the water-stopping member 181 moves upward relative to the water-stopping channel 182, and the water-stopping member 181 moves to the blocking position of the water-stopping channel 182. At this time, the first sealing ring 1811 abuts against the first protrusion 1821, and the first sealing ring 1811 forms a first sealing surface at the first protrusion 1821. The second sealing ring 1812 forms a second sealing surface on the inner wall surface of the water-stopping channel 182, and the third sealing ring 1813 forms a third sealing surface on the inner wall surface of the water-stopping channel 182, so that the water inlet end of the water inlet channel 81 is in the blocking channel formed between the first sealing ring 1811 and the second sealing ring 1812, and the water inlet end of the water outlet channel 82 is in the blocking channel formed between the second sealing ring 1812 and the third sealing ring 1813, thereby realizing the water-stopping function of the water-stopping structure 18.

[0117] When the water-stop structure 18 is in the second mating state, the water-stop member 181 moves downward relative to the water-stop channel 182, moving to the communication position of the water-stop channel 182. The first sealing ring 1811 disengages from the first protrusion 1821, the second sealing ring 1812 forms a second sealing surface on the inner wall surface of the water-stop channel 182, and the third sealing ring 1813 disengages from the inner wall surface of the water-stop channel 182, so that the water-stop member 181 and the water-stop channel 182 form a flow guiding gap at the position where the first sealing ring 1811 is located, and the water-stop member 181 and the water-stop channel 182 form a flow guiding gap at the position where the third sealing ring 1813 is located, thereby realizing the conduction function of the water-stop structure 18.

[0118] It should be noted that the water-stopping component 181 shown in this embodiment includes a water-stopping section and a fixing section. One end of the water-stopping section is connected to one end of the fixing section, and the other end of the fixing section is connected to the first end of the inner shell 13.

[0119] In this embodiment, the water-stopping section is constructed with an inlet channel 81 and an outlet channel 82; the inlet end of the inlet channel 81 and the outlet end of the outlet channel 82 are respectively constructed on the side wall of the water-stopping section; the outlet end of the inlet channel 81 extends to the fixed section and communicates with the water inlet at the first end of the inner shell 13 through the inner cavity of the fixed section; the outlet end of the outlet channel 82 is constructed at the other end of the water-stopping section.

[0120] In some examples, the diameter of the fixed section shown in this embodiment is larger than the diameter of the water-stopping section, and the other end of the fixed section is connected to the first end of the inner shell 13 through the elastic element 183.

[0121] In practical applications, when the water-stopping structure 18 is in the first engagement state, the elastic element 183 is in the first state, and the water-stopping member 181 moves to the blocking position of the water-stopping channel 182 under the drive of the elastic element 183. When the water-stopping structure 18 is in the second engagement state, the elastic element 183 is in the second state, and the water-stopping member 181 moves to the connecting position of the water-stopping channel 182 under the action of external force. The deformation of the elastic element 183 in the second state is greater than the deformation of the elastic element 183 in the first state.

[0122] Thus, after the water-stopping structure 18 is removed from the connector 200, since the water-stopping component 181 is no longer subjected to the resistance from the connector 200, the elastic element 183 will return from the second state to the first state. During the process of restoring its deformation, the elastic element 183 will drive the water-stopping component 181 to move to the blocking position of the water-stopping channel 182, so as to realize the water-stopping function of the water-stopping structure 18. This avoids the problem of internal water flowing out when the staff removes the water purification component 100 from the connector 200, and improves the user's experience of replacing the water filter unit 15.

[0123] like Figure 9 and Figure 10 As shown, a second aspect of the present invention provides a refrigeration device, including a cold storage compartment 700 and a water-using component, and further including a water purification component 100 as described above installed in the cold storage compartment 700, wherein the water outlet 12 of the water purification component 100 is connected to the water-using device.

[0124] In practical applications, the refrigeration equipment shown in this embodiment is equipped with a water supply pipeline. One end of the water supply pipeline is used for connection to the water supply system (tap water network), and the other end of the water supply pipeline extends into the cold storage room 700.

[0125] In this embodiment, the water inlet 11 of the water purification component 100 is connected to the other end of the water supply pipeline. Since the water purification component 100 is located in the cold storage room 700, the water entering the water purification component 100 can be filtered and then cooled in the low-temperature environment of the cold storage room 700, and the low-temperature purified water output by the water purification component 100 is supplied to the water-using devices.

[0126] Furthermore, in this embodiment, by setting a water storage chamber 132 inside the water purification component 100, the existing water tank structure and the water purifier are integrated into one unit, thereby simplifying the water supply circuit structure of the water-using device.

[0127] In some embodiments, when multiple water-using devices are provided, the refrigeration equipment shown in this embodiment is further provided with a liquid distribution valve 300; the liquid distribution valve 300 includes a liquid inlet and multiple liquid outlets, the water outlet 12 of the water purification component 100 is connected to the liquid inlet, and the multiple liquid outlets are connected to multiple water-using devices one by one.

[0128] Therefore, based on the design of the liquid distribution valve 300, this embodiment enables the water purification component 100 to selectively supply purified water to multiple water-using devices, thereby significantly reducing the length of the entire water supply system and improving the maintainability of the water supply system.

[0129] In this embodiment, the liquid dispensing valve 300 and the water purification component 100 can be respectively installed in the cold storage compartment 700, so that users can regularly replace and maintain the liquid dispensing valve 300 and the water purification component 100.

[0130] like Figure 10 As shown, the water-using appliances in this embodiment include a first ice maker 400, a second ice maker 500, and a distributor 600. The first ice maker 400 is located in the refrigerator compartment 700, the second ice maker 500 is located in the freezer compartment 800 of the refrigeration equipment, and the distributor 600 is located on the door 900 of the refrigeration equipment.

[0131] Accordingly, the liquid dispensing valve 300 shown in this embodiment is a one-in-three-out valve. The outlet 12 of the water purification component 100 is connected to the inlet of the one-in-three-out valve. The first outlet of the one-in-three-out valve is connected to the first ice maker 400 located on the top of the cold storage room 700 through a pipeline. The second outlet of the one-in-three-out valve is connected to the second ice maker 500 through a pipeline. The third outlet of the one-in-three-out valve is connected to the distributor 600 through a pipeline.

[0132] During use, the purified water output by the water purification component 100 is controllably distributed to the first ice maker 400, the second ice maker 500 and the distributor 600 through a one-in-three-out valve to meet the ice-making needs of the first ice maker 400 or the second ice maker 500. Users can also take ice water through the distributor 600 without opening the door 900.

[0133] Furthermore, the refrigeration equipment shown in this embodiment can be a refrigerator or a freezer, and is not specifically limited here.

[0134] Finally, it should be noted that the above embodiments are only for illustrating the present invention and not for limiting the present invention. Although the present invention has been described in detail with reference to the embodiments, those skilled in the art should understand that various combinations, modifications, or equivalent substitutions of the technical solutions of the present invention do not depart from the spirit and scope of the technical solutions of the present invention and should be covered within the scope of the claims of the present invention.

Claims

1. A water purification component, characterized in that, include: Inlet and outlet; The inner shell is disposed within the outer shell, and a first water passage is defined between the inner wall surface of the outer shell and the outer wall surface of the inner shell. The water inlet, the inner shell, the first water passage, and the water outlet are connected in sequence. A water filtration unit is disposed within the inner shell; It also includes: a water-stopping structure, which includes a water-stopping component and a water-stopping channel constructed at the first end of the outer shell, the water-stopping component being connected to the first end of the inner shell, the water-stopping component being movably disposed in the water-stopping channel, and the water-stopping component having an inlet channel and an outlet channel. The water inlet is formed between the inner wall surface of the water-stopping channel and the outer wall surface of the water-stopping component; the water outlet end of the water inlet channel is connected to the inner shell; the water outlet end of the water outlet channel is formed as the water outlet. When the water-stopping component moves to the blocking position of the water-stopping channel, the water inlet end of the water inlet channel and the water inlet end of the water outlet channel are blocked, so that the water inlet is blocked from the water inlet channel and the first water passage is blocked from the water outlet channel. When the water-stopping component moves to the position where the water-stopping channel is connected, the water inlet end of the water inlet channel and the water inlet end of the water outlet channel are open, so that the water inlet is connected to the water inlet channel and the first water passage is connected to the water outlet channel. The water-stopping structure further includes: a first sealing ring, a second sealing ring, and a third sealing ring, which are sequentially and spaced apart between the outer wall surface of the water-stopping component and the inner wall surface of the water-stopping channel along the direction of movement of the water-stopping component; The water inlet end of the water inlet channel is located between the first sealing ring and the second sealing ring; the water inlet end of the water outlet channel is located between the second sealing ring and the third sealing ring. When the water-stopping component moves to the blocking position of the water-stopping channel, the water inlet end of the water inlet channel is in the blocking channel formed between the first sealing ring and the second sealing ring, and the water inlet end of the water outlet channel is in the blocking channel formed between the second sealing ring and the third sealing ring. When the water-stopping component moves to the position where the water-stopping channel is connected, the water-stopping component and the water-stopping channel form a flow-guiding gap at the position where the first sealing ring is located, and the water-stopping component and the water-stopping channel form a flow-guiding gap at the position where the third sealing ring is located.

2. The water purification component according to claim 1, characterized in that, The first end of the first water passage is formed between the outer wall surface of the first end of the inner shell and the inner wall surface of the outer shell, and communicates with the water outlet; The second end of the first water passage is formed between the outer wall surface of the second end of the inner shell and the inner wall surface of the outer shell, and communicates with the second end of the inner shell.

3. The water purification component according to claim 2, characterized in that, The first end of the water filtration unit is used to output purified water, and the first end of the water filtration unit faces the second end of the inner shell; the second end of the water filtration unit faces the first end of the inner shell, and the first end of the inner shell is connected to the water inlet.

4. The water purification component according to claim 1, characterized in that, The inner shell is provided with a water storage chamber and a filter chamber. The first water passage, the water storage chamber and the filter chamber are in fluid communication. The water filtration unit is located in the filter chamber and the filter chamber is in communication with the water inlet.

5. The water purification component according to claim 4, characterized in that, The first end of the water filtration unit is used to output purified water, and the first end of the water filtration unit faces the second end of the inner shell; the second end of the water filtration unit faces the first end of the inner shell, and the water inlet is located at the first end of the inner shell. A water storage cavity is formed between the first end of the water filtration unit and the second end of the inner shell, and the first water passage is connected to the water storage cavity through the second end of the inner shell.

6. The water purification component according to claim 5, characterized in that, Also includes: The water storage cavity is provided with a support member, which supports the first end of the water filtration unit, and the second end of the water filtration unit abuts against the first end of the inner shell.

7. The water purification component according to claim 6, characterized in that, The first end of the water filtration unit is provided with a positioning structure, which is adapted to the first end of the support member facing the water filtration unit; or, the first end of the water filtration unit and the support member are formed as an integral structure.

8. The water purification component according to claim 5, characterized in that, The second end of the outer shell is sealed, and the second end of the inner shell is open; A flow guide gap is provided between the second end of the inner shell and the second end of the outer shell, and the first water passage is connected to the water storage cavity through the flow guide gap.

9. The water purification component according to claim 1, characterized in that, The second end of the outer shell is closed, and the second end of the inner shell is open; the second end of the inner shell is spaced apart from the second end of the outer shell to form a water storage cavity between the second end of the inner shell and the second end of the outer shell; The first water passage is connected to the water storage cavity, and the water storage cavity is connected to the inner cavity of the inner shell through the second end of the inner shell.

10. The water purification component according to any one of claims 1 to 9, characterized in that, The water filtration unit includes a filter element; a second water passage is formed between the side of the filter element and the inner wall of the inner shell, and a clean water flow channel is provided inside the filter element, which is connected to the first water passage. The filter element is used to filter the water that enters the purified water channel from the second water passage.

11. The water purification component according to claim 10, characterized in that, The water filtration unit further includes a first cap and a second cap; the first cap is sealed at one end of the filter element and has a purified water outlet that communicates with the purified water flow channel; the second cap is sealed at the other end of the filter element.

12. A refrigeration device, comprising a cold storage compartment and water-using appliances, characterized in that, It also includes a water purification component as described in any one of claims 1 to 11, installed in the cold storage room, wherein the outlet of the water purification component is connected to the water-using device.

13. The refrigeration equipment according to claim 12, characterized in that, Also includes: Liquid mixing valve; The liquid dispensing valve includes one liquid inlet and multiple liquid outlets. The water outlet of the water purification component is connected to the liquid inlet, and the multiple liquid outlets are connected to multiple water-using devices in a one-to-one correspondence. The water-using equipment includes a first ice maker, a second ice maker, and a distributor; the first ice maker is located in the cold storage room, the second ice maker is located in the freezer room of the refrigeration equipment, and the distributor is located on the door of the refrigeration equipment.

Citation Information

Patent Citations

  • A filter assembly having exhaust function and tube assembly for filter assembly

    CN211752887U