Refrigerator

By designing the ice door structure and rotatably connecting the box in the refrigerator ice-making system, the condensate water is converged and evaporated by gravity and guide structure, the problems of high cost and high energy consumption of heating film are solved, and the low-cost and low-energy consumption of condensate water is removed, which improves the user experience.

CN120333013APending Publication Date: 2025-07-18HISENSE(SHANDONG)REFRIGERATOR CO LTD
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Patent Information

Application Number
CN202411997596.7
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2024-12-31
Publication Date
2025-07-18

AI Technical Summary

Technical Problem

In the existing refrigerator ice making system, heating film is costly and energy consumption is high, and the efficiency of removing condensate is low, which affects the user experience.

Method used

The ice door structure is rotatably connected to the box body. The condensed water converges under gravity and flows into the water-filled cavity through the guide structure. The condensed water is evaporated at room temperature to eliminate the use of the heater.

Benefits of technology

It reduces the cost and energy consumption of the ice making system, improves the efficiency of condensate removal, and improves the user experience.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of refrigeration, and provides a refrigerator which comprises a refrigerator body. A door body; the ice making system comprises an ice making assembly; the ice outlet assembly comprises an ice hopper, and the ice hopper is provided with an ice outlet cavity; the box body is provided with a first inner cavity, the side wall of the side, facing the ice hopper, of the box body is connected with the ice hopper, an included angle is formed between the extending plane of the side wall of the side, facing the ice hopper, of the box body and the horizontal plane, and a water containing cavity is formed in the bottom of the box body; the ice door structure is located in the first inner cavity, the ice door structure is rotationally connected with the box body, so that the ice outlet cavity communicates with or does not communicate with the first inner cavity, and when the ice outlet cavity does not communicate with the first inner cavity, an included angle is formed between the extending plane of the ice door structure and the horizontal plane; the guide structure is located in the first inner cavity, and when the first inner cavity does not communicate with the ice outlet cavity, condensate water on the ice door structure and the inner wall of the first inner cavity flows to the water containing cavity through the guide structure.
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Description

Technical Field

[0001] This application relates to refrigeration technology. In particular, it relates to a refrigerator. Background Art

[0002] With the improvement of people's living standards, users' various functional requirements for refrigerators have increased. For example, an ice-making system is provided on the refrigerator door body to automatically make ice cubes for users to use.

[0003] In the related art, a refrigerator includes a door body and an ice-making system provided on the door body. The ice-making system includes an ice-making component and an ice-discharging component. Among them, the ice-discharging component includes an ice hopper, a mounting box, an ice door structure, and a water receiving box. The ice hopper is located at the bottom of the ice-making component and is communicated with the ice-making component. The bottom of the ice hopper is connected to the mounting box. The ice door structure is located in the mounting box and is connected to the mounting box. The ice door structure rotates relative to the mounting box to open or close the ice-discharging port of the ice hopper. The water receiving box is connected to the mounting box. The water receiving box is embedded in the front side of the door body and is communicated with the mounting box. Among them, the ice door structure includes an ice door box, a heat insulation member, a sealing member, and a heating film. The heat insulation member is located in the area surrounded by the sealing member and the ice door box, and the heating film is arranged on the inner wall of the ice door box facing the heat insulation member.

[0004] However, the cost of the heating film is relatively high, and the energy consumption of the ice-discharging component is relatively large. Summary of the Invention

[0005] This application provides a refrigerator with relatively low cost and low energy consumption.

[0006] In order to achieve the above object, this application adopts the following technical solutions:

[0007] This application provides a refrigerator, including:

[0008] A box body, which is provided with a refrigerating compartment;

[0009] A door body, which is rotatably connected to the box body to open or close the refrigerating compartment;

[0010] An ice-making system, which includes:

[0011] An ice-making component, which is arranged in the refrigerating compartment or on the door body;

[0012] An ice-discharging component, which is arranged on the door body and includes:

[0013] An ice hopper, which is communicated with the ice-making component and is provided with an ice-discharging cavity;

[0014] A box body, which is provided with a first inner cavity. The side wall of the box body facing the ice hopper is connected to the ice hopper. The extending plane of the side wall of the box body facing the ice hopper has an included angle with the horizontal plane. The bottom of the box body is provided with a water receiving cavity;

[0015] An ice door structure is located in the first inner cavity. The ice door structure is rotatably connected to the box body and rotates relative to the box body to connect or disconnect the ice outlet cavity from the first inner cavity. When the ice outlet cavity is not connected to the first inner cavity, the extended plane of the ice door structure forms an angle with the horizontal plane.

[0016] A guiding structure is located in the first inner cavity. When the first inner cavity is not connected to the ice outlet cavity, the condensed water on the ice door structure and the inner wall of the first inner cavity flows to the water storage cavity through the guiding structure.

[0017] In this way, the refrigerator includes a box body, a door body, and an ice-making system. The ice-making system includes an ice-making component and an ice outlet component. The ice outlet component is arranged on the door body for the user to easily take ice. The ice outlet component includes an ice hopper, a box body, an ice door structure, and a guiding structure. The side wall of the box body facing the ice hopper is connected to the ice hopper, and the extended plane of the side wall of the box body facing the ice hopper forms an angle with the horizontal plane. In this way, the condensed water formed on the side wall of the box body facing the ice hopper can converge downward under the action of gravity. The ice door structure is located in the first inner cavity and is rotatably connected to the box body. The ice door structure rotates relative to the box body to connect or disconnect the ice outlet cavity from the first inner cavity. When the ice outlet cavity is not connected to the first inner cavity, the extended plane of the ice door structure forms an angle with the horizontal plane. In this way, the condensed water formed on the ice door structure can converge downward under the action of gravity. The guiding structure is located in the first inner cavity, and the condensed water on the ice door structure and the inner wall of the first inner cavity flows to the water storage cavity of the box body through the guiding structure. Then, the condensed water in the water storage cavity can evaporate at room temperature, so there is no need to set a heater, reducing costs and energy consumption.

[0018] In some embodiments, the guiding structure is provided with a guiding inner cavity, which is connected to the first inner cavity and the water storage cavity.

[0019] At least part of the guiding structure is arranged below the ice door structure. When the first inner cavity is not connected to the ice outlet cavity, the condensed water on the ice door structure and the inner wall of the first inner cavity flows to the water storage cavity through the inner wall of the guiding inner cavity.

[0020] In this way, by providing the guiding inner cavity in the guiding structure, the condensed water flows in the guiding inner cavity, and the guiding structure can block the water stains generated by the evaporation of the condensed water.

[0021] In some embodiments, the guiding structure includes:

[0022] A first guiding member, which is located in the first inner cavity and is provided with a second inner cavity, and the second inner cavity is connected to the first inner cavity.

[0023] When the first inner cavity is connected to the ice outlet cavity, the ice cubes in the ice-making component enter the ice-taking container through the ice hopper and the second inner cavity of the first guiding member.

[0024] In this way, the first guiding member can restrict the path of the ice cubes, thereby facilitating the entry of the ice cubes into the ice-taking container.

[0025] In some embodiments, the top of the first guiding member abuts against the inner wall of the first inner cavity on the side facing the ice hopper, part of the first guiding member is located in the lower part of the ice door structure, and part of the ice door structure is located in the second inner cavity;

[0026] When the first inner cavity is not communicated with the ice outlet cavity, the condensed water on the ice door structure and the inner wall of the first inner cavity enters the water receiving cavity through the first guiding member.

[0027] In this way, the guiding structure can include only the first guiding member, and the structure of the guiding structure is relatively simple.

[0028] In some embodiments, the guiding structure includes a second guiding member;

[0029] The first guiding member is provided with an avoidance portion for avoiding the second guiding member, and the second guiding member is located below the ice door structure and below the avoidance portion;

[0030] The second guiding member is provided with a third inner cavity, the third inner cavity is communicated with the first inner cavity, and the third inner cavity is communicated with the water receiving cavity;

[0031] When the first inner cavity is not communicated with the ice outlet cavity, the condensed water on the ice door structure and the inner wall of the first inner cavity enters the water receiving cavity through the second guiding member.

[0032] In this way, the guiding structure can conduct the flow only by using the second guiding member, and the structure of the guiding structure is relatively simple.

[0033] In some embodiments, the guiding structure includes a second guiding member;

[0034] The top of the first guiding member abuts against the inner wall of the first inner cavity on the side facing the ice hopper, part of the first guiding member is located in the lower part of the ice door structure, and part of the ice door structure is located in the second inner cavity;

[0035] The second guiding member is arranged below the first guiding member, the second guiding member is provided with a third inner cavity, the third inner cavity is communicated with the second inner cavity and is communicated with the water receiving cavity;

[0036] The positive projection of the inner wall of the second guiding member towards the horizontal plane is partially located within the positive projection of the inner wall of the first guiding member towards the horizontal plane, and the condensed water on the ice door structure and the inner wall of the first inner cavity enters the water receiving cavity through the first guiding member and the second guiding member.

[0037] In this way, through the cooperation of the first guiding member and the second guiding member, the guiding path of the condensed water is relatively long, which is beneficial to ensuring that the condensed water flows along a predetermined path.

[0038] In some embodiments, the guiding structure includes:

[0039] The second guide member is located below the ice door structure. The second guide member is provided with a third inner cavity which communicates with the first inner cavity and the water storage cavity. When the first inner cavity is not in communication with the ice outlet cavity, the condensed water on the inner wall of the first inner cavity enters the water storage cavity through the second guide member.

[0040] The third guide member is connected to the ice door structure. When the first inner cavity is not in communication with the ice outlet cavity, the condensed water on the ice door structure enters the water storage cavity through the third guide member and the second guide member.

[0041] In this way, by providing the second guide member and the third guide member, through the cooperation of the two, the condensed water on the ice door structure and the condensed water on the inner wall of the first inner cavity are respectively guided, with good pertinence, which is beneficial to improving the guiding effect of the condensed water.

[0042] In some embodiments, the first guide member includes:

[0043] A water guiding portion located below the ice door structure. The orthographic projection of the water guiding portion towards the horizontal plane is partially within the orthographic projection of the inner wall of the water storage cavity towards the horizontal plane.

[0044] An ice guiding portion located on opposite sides of the water guiding portion along the circumferential direction of the first guide member. The included angle between the inner wall of the ice guiding portion and the horizontal plane is smaller than the included angle between the inner wall of the water guiding portion and the horizontal plane.

[0045] In this way, the water guiding portion is used to guide the condensed water into the water storage cavity. The ice guiding portion is used to guide the ice cubes into the ice taking container. Moreover, the included angle between the inner wall of the ice guiding portion and the horizontal plane is smaller than the included angle between the inner wall of the water guiding portion and the horizontal plane, which is beneficial to accelerating the flow rate of the condensed water so that the condensed water can enter the water storage cavity as soon as possible.

[0046] In some embodiments, the first guide member includes:

[0047] A water guiding portion located below the ice door structure and above the second guide member. The orthographic projection of the water guiding portion towards the horizontal plane is within the orthographic projection of the second guide member towards the horizontal plane.

[0048] An ice guiding portion located on opposite sides of the water guiding portion along the circumferential direction of the first guide member. The included angle between the inner wall of the ice guiding portion and the horizontal plane is smaller than the included angle between the inner wall of the water guiding portion and the horizontal plane.

[0049] In this way, the water guiding portion is used to guide the condensed water into the second guide member. The ice guiding portion is used to guide the ice cubes into the ice taking container. Moreover, the included angle between the inner wall of the ice guiding portion and the horizontal plane is smaller than the included angle between the inner wall of the water guiding portion and the horizontal plane, which is beneficial to accelerating the flow rate of the condensed water so that the condensed water can enter the second guide member as soon as possible. The orthographic projection of the water guiding portion towards the horizontal plane is within the orthographic projection of the second guide member towards the horizontal plane, which is beneficial to ensuring that the condensed water in the water guiding portion enters the second guide member.

[0050] In some embodiments, a front projection of the ice door structure onto a horizontal plane is partially located within a front projection of the water guiding part onto the horizontal plane.

[0051] This facilitates condensate dripping downward from the end of the ice door structure to enter the water guiding part.

[0052] In some embodiments, a front projection of the ice door structure onto a horizontal plane is partially located within a front projection of the second guiding member onto the horizontal plane.

[0053] This helps ensure that condensate dripping downward from the end of the ice door structure can directly enter the interior of the second guiding member.

[0054] In some embodiments, the dimension of the water guiding part along the circumferential direction of the first guiding member is smaller than the dimension of the rated ice cubes of the ice making assembly.

[0055] In this way, the dimension of the water guiding part is smaller than that of the ice cubes, so the ice cubes are not easily entered into the water guiding part and are not easily entered into the second guiding member along the water guiding part.

[0056] In some embodiments, the dimension of the water guiding part along the circumferential direction of the first guiding member is greater than 15 mm and less than 18 mm.

[0057] When the dimension of the water guiding part along the circumferential direction of the first guiding member is less than 15 mm, the dimension of the water guiding part is small, which easily causes part of the condensate to enter the second guiding member through the ice guiding part, and the flow rate of the condensate is slow. When the dimension of the water guiding part along the circumferential direction of the first guiding member is greater than 18 mm, the dimension of the water guiding part is large, which easily causes part of the ice cubes to enter the second guiding member through the ice guiding part or the ice cubes are stuck at the top of the second guiding member.

[0058] In some embodiments, the water guiding part includes a first water guiding section and a second water guiding section. The first water guiding section is located at the top of the second water guiding section, and the angle between the inner wall of the first water guiding section and the horizontal plane is greater than the angle between the inner wall of the second water guiding section and the horizontal plane.

[0059] In this way, the speed of the condensate can be relatively fast when it is in the first water guiding section and the speed decreases when it is in the second water guiding section, which is beneficial for the condensate to enter the second guiding member at a relatively low speed, effectively avoiding the condensate flowing outside the second guiding member due to a relatively fast speed.

[0060] In some embodiments, the angle between the inner wall of the first water guiding section and the horizontal plane is greater than 75 degrees and less than 80 degrees;

[0061] The angle between the inner wall of the second water guiding section and the horizontal plane is greater than 50 degrees and less than 75 degrees.

[0062] When the angle between the inner wall of the first water guiding section and the horizontal plane is less than 75 degrees, the flow rate of the condensed water is slow and the efficiency is low. When the angle between the inner wall of the first water guiding section and the horizontal plane is greater than 80 degrees, the flow rate of the condensed water is fast and it is easy to splash outwards.

[0063] When the angle between the inner wall of the second water guiding section and the horizontal plane is less than 50 degrees, the flow rate of the condensed water is slow and the efficiency is low. When the angle between the inner wall of the second water guiding section and the horizontal plane is greater than 75 degrees, the flow rate of the condensed water is fast and it is easy to splash outwards.

[0064] In some embodiments, the extension surface of the inner wall of the bottom of the ice bucket along the extension direction of the ice bucket has a distance from the top of the second guiding member, and is located on the side of the second guiding member facing the first guiding member.

[0065] In this way, the ice cube is not likely to collide with the top of the second guiding member.

[0066] In some embodiments, the second guiding member covers the inner wall of the box body, and the second guiding member and the inner wall of the box body form a third inner cavity.

[0067] In this way, the thickness dimension of the second guiding member can be smaller, which is beneficial to saving space.

[0068] In some embodiments, it further includes a switch assembly, the switch assembly is electrically connected to the ice door structure, and the switch assembly is configured to control the rotation of the ice door structure relative to the box body;

[0069] The second guiding member includes:

[0070] A first guiding portion, the first guiding portion is located below the first guiding member, and the orthographic projection of the ice door structure towards the horizontal plane is partially located within the orthographic projection of the first guiding portion towards the horizontal plane;

[0071] A second guiding portion, the second guiding portion is located at the bottom of the first guiding portion and is communicated with the first guiding portion;

[0072] A third guiding portion, the third guiding portion is located at the bottom of the first guiding portion and is communicated with the first guiding portion. There is a distance between the third guiding portion and the second guiding portion, and the switch assembly is located between the third guiding portion and the second guiding portion.

[0073] The switch assembly is configured to control the rotation of the ice door structure relative to the box body so that the ice outlet cavity is communicated or not communicated with the first inner cavity.

[0074] In this way, the second guiding member is provided with a first guiding portion, a second guiding portion and a third guiding portion that are communicated with each other. There is a distance between the third guiding portion and the second guiding portion. The switch assembly is located between the third guiding portion and the second guiding portion. In this way, the position of the switch assembly does not need to be changed, which is convenient for the user to press the switch assembly with an ice-taking container to take ice.

[0075] In some embodiments, the included angle between the extending direction of the first guiding portion and the horizontal plane is smaller than the included angle between the inner wall of the second water guiding section and the horizontal plane.

[0076] In this way, the condensed water flows along the second water guiding section into the first guiding portion. The included angle between the extending direction of the first guiding portion and the horizontal plane is smaller than the included angle between the inner wall of the second water guiding section and the horizontal plane, and the first guiding portion is relatively gentle, so that it is beneficial to receive the condensed water. Moreover, the first guiding portion is relatively gentle and has a relatively large size in the depth direction of the box body, which is beneficial to receiving the condensed water directly dripping downward from the end of the ice door structure.

[0077] In some embodiments, the included angle between the extending direction of the first guiding portion and the horizontal plane is greater than 45° and smaller than 60°.

[0078] When the included angle between the extending direction of the first guiding portion and the horizontal plane is smaller than 45 degrees, the condensed water is not likely to flow along the first guiding portion. When the included angle between the extending direction of the first guiding portion and the horizontal plane is greater than 60 degrees, the first guiding portion is not likely to receive the condensed water flowing along the second water guiding section, nor is it likely to receive the condensed water directly dripping downward from the end of the ice door structure.

[0079] In some embodiments, in the width direction of the box body, the size of the first guiding portion is not smaller than the size of the ice door structure.

[0080] The ice door structure is a movable structure. When the ice door structure opens the second opening, the water droplets gathering on the outer edge of the ice door structure flow down. Therefore, in the width direction of the box body, the size of the first guiding portion is not smaller than the size of the ice door structure, so as to effectively prevent the outflow of the condensed water.

[0081] In some embodiments, when the first inner cavity is not communicated with the inner cavity of the ice hopper, the included angle between the extending plane of the ice door structure and the horizontal plane is greater than 40°;

[0082] The included angle between the extending plane of the side wall of the box body facing the ice hopper and the horizontal plane is greater than 40°.

[0083] In this way, it is beneficial to the convergence of the condensed water. BRIEF DESCRIPTION OF THE DRAWINGS

[0084] In order to more clearly illustrate the technical solutions in the embodiments of the present application or the prior art, the following will briefly introduce the drawings required to be used in the description of the embodiments or the prior art. Obviously, the drawings in the following description are some embodiments of the present application. For those of ordinary skill in the art, other drawings can be obtained based on these drawings without creative efforts.

[0085] Figure 1 It is a schematic structural diagram of an ice discharging assembly in the related art;

[0086] Figure 2 Cross-sectional view of the ice discharging component in the related art;

[0087] Figure 3 Exploded view of the ice discharging component in the related art;

[0088] Figure 4 For Figure 2 Partial enlarged view at position A in;

[0089] Figure 5 Schematic structural diagram of the ice bucket, ice door structure and ice discharging part in the related art;

[0090] Figure 6 Cross-sectional view of the ice door structure in the related art;

[0091] Figure 7 Cross-sectional view of another ice door structure in the related art;

[0092] Figure 8 Schematic structural diagram of a refrigerator provided by an embodiment of the present application;

[0093] Figure 9 Schematic structural diagram of another refrigerator provided by an embodiment of the present application;

[0094] Figure 10 For Figure 9 Another state schematic diagram of the refrigerator in;

[0095] Figure 11 First schematic structural diagram of the ice discharging component in the refrigerator provided by an embodiment of the present application;

[0096] Figure 12 For Figure 11 Exploded view of;

[0097] Figure 13 For Figure 11 Cross-sectional view of;

[0098] Figure 14 For Figure 11 Schematic structural diagram of the box body and the second guide member in;

[0099] Figure 15 For Figure 14 Schematic structural diagram from another angle of;

[0100] Figure 16 For Figure 13 Partial enlarged view at position W in;

[0101] Figure 17 For Figure 11 Schematic structural diagram of the first guide member in;

[0102] Figure 18is Figure 17 the top view of

[0103] Figure 19 is Figure 18 the sectional view taken along line B-B in

[0104] Figure 20 is Figure 19 the enlarged partial view at C in

[0105] Figure 21 is Figure 11 the structural schematic diagram of the second guide member and the water receiving box in

[0106] Figure 22 is Figure 21 the front view of

[0107] Figure 23 is Figure 22 the sectional view taken along line D-D in

[0108] Figure 24 is Figure 23 the enlarged partial view at E in

[0109] Figure 25 is Figure 11 the top view of

[0110] Figure 26 is Figure 25 the sectional view taken along line U-U in

[0111] Figure 27 is Figure 26 the enlarged partial view at F in

[0112] Figure 28 the structural schematic diagram of the second structure of the ice discharging assembly in the refrigerator provided by the embodiment of the present application;

[0113] Figure 29 is Figure 28 the sectional view of

[0114] Figure 30 is Figure 29 the enlarged partial view at L in

[0115] Figure 31 is Figure 28 the structural schematic diagram of the first guide member in

[0116] Figure 32 the structural schematic diagram of the third structure of the ice discharging assembly in the refrigerator provided by the embodiment of the present application;

[0117] Figure 33 is Figure 32 the sectional view of

[0118] Figure 34 is Figure 33 a partial enlarged view at N in

[0119] Figure 35 is Figure 32 a schematic structural view of the first guiding member in

[0120] Explanation of reference numerals in the drawings:

[0121] 10 - ice bucket; 20 - mounting box; 30 - ice door structure; 31 - ice door box; 32 - heat insulation member; 33 - seal; 34 - heating film; 35 - drive motor; 36 - rotating shaft; 40 - water receiving box; 50 - ice discharging member; 60 - switch; 70 - bracket;

[0122] 100 - box body;

[0123] 200 - door body;

[0124] 300 - ice making assembly;

[0125] 400 - ice discharging assembly; 410 - ice bucket; 420 - box body; 421 - mounting box; 422 - water receiving box; 423 - water holding cavity; 430 - ice door structure; 431 - ice door box; 432 - seal; 433 - heat insulation member; 440 - ice discharging member; 450 - guiding structure; 451 - first guiding member; 4511 - water guiding part; 45111 - first water guiding section; 45112 - second water guiding section; 4512 - ice guiding part; 4513 - avoiding part; 452 - second guiding member; 4521 - first guiding part; 4522 - second guiding part; 4523 - third guiding part;

[0126] 500 - switch assembly. Detailed implementation manners

[0127] To make the objectives, technical solutions and advantages of the embodiments of the present application clearer, the technical solutions in the embodiments of the present application will be clearly and completely described below with reference to the accompanying drawings in the embodiments of the present application. Obviously, the described embodiments are some, but not all, of the embodiments of the present application. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present application without creative efforts shall fall within the protection scope of the present application. Without conflict, the following embodiments and the features in the embodiments may be combined with each other.

[0128] Figure 1 is a schematic structural view of an ice discharging assembly in the related art, Figure 2 is a cross-sectional view of an ice discharging assembly in the related art. Figure 3 is an exploded view of an ice discharging assembly in the related art.

[0129] See Figures 1 to 3As shown in the figure, the ice discharging assembly includes an ice hopper 10, a mounting box 20, an ice door structure 30, a water receiving box 40, and an ice discharging member 50. The ice hopper 10 is located at the bottom of the ice making assembly and is communicated with the ice making assembly. The bottom of the ice hopper 10 is connected to the mounting box 20. The ice door structure 30 is located inside the mounting box 20 and is connected to the mounting box 20 through a bracket 70. The ice door structure 30 rotates relative to the mounting box 20 to open or close the ice discharging port of the ice hopper 10, and the ice discharging member 50 is arranged at the bottom of the mounting box 20. The water receiving box 40 is connected to the mounting box 20, the water receiving box 40 is embedded in the front side of the door body, and the water receiving box 40 is communicated with the ice discharging member 50.

[0130] A switch 60 is arranged on the water receiving box 40, and the switch 60 is electrically connected to the driving motor 35.

[0131] When the user takes ice, the ice taking container presses the switch 60, the driving motor 35 drives the rotating shaft 36 to drive the ice door structure 30 to rotate relative to the bracket 70 to open the ice discharging port, the ice making assembly pushes the ice cubes into the ice hopper 10, the ice cubes pass through the ice hopper 10, pass through the mounting box 20 and the ice discharging member 50, and fall into the user's ice taking container. When the ice taking container leaves the switch 60, the ice making assembly no longer pushes out the ice cubes, and the driving motor drives the ice door structure 30 to rotate to close the ice discharging port. The above process is the complete working process of the ice discharging system. It can be seen that the ice door structure 30 is a portal connecting the inside and outside of the refrigerator, and allows ice cubes to be taken out of the refrigerator when it is opened. Closing it prevents heat exchange between the inside and outside of the refrigerator, and at the same time removes the condensation near the ice discharging port.

[0132] Dew removal is one of the functions of the ice making system. Once the condensation of the ice discharging system is not removed in time, it will have a great impact on the user experience.

[0133] Figure 4 For Figure 2 The partial enlarged view at position A in the figure. Figure 5 It is a schematic structural diagram of an ice hopper, an ice door structure and an ice discharging member in the related art, Figure 6 It is a cross-sectional view of the ice door structure in the related art.

[0134] To remove the condensed water, it is necessary to understand the reasons for its generation. There are two reasons for the generation of condensed water at the ice discharging port:

[0135] 1. Heat and cold exchange. The ice door structure 30 directly connects the internal and external environments. For example: when the ambient temperature is 25°C and the humidity is 70%, and the temperature in the ice hopper 10 is -19°C, the inner surface temperature of the ice door structure 30 is only -3.6°C. The cold quantity is transferred from the inner surface of the ice door structure 30 to the outer surface of the ice door structure 30. Although it is in a 25°C environment, its outer surface temperature is only 16 degrees, which is lower than the dew point temperature, resulting in condensation. See Figure 5 As shown in the figure, the position where condensation is generated due to heat and cold exchange is mainly the outer surface shown at H.

[0136] 2. Heat conduction. The ice bucket 10 is located in an environment below -18°C inside the refrigerator, and the entire component also reaches a temperature below -18°C. The installation box 20 is in partial contact with the ice bucket 10, causing the local temperature of the installation box 20 to be lower than the dew point temperature, resulting in condensation. Refer to Figure 4 As shown, the positions where condensation is generated by heat conduction are mainly the wall surfaces shown as G. The condensation generated at the positions shown as G will converge at the lower end of the ice door structure under the action of gravity. Specifically, it converges at the lower end of the seal.

[0137] Refer to Figures 4 to 6 As shown, the inventor's research found that condensed water is generated from the outer surface of the ice door structure 30 and the inner wall surface G of the installation box 20. It first converges at the lower edge of the ice door structure 30, then drips onto the ice outlet member 50 at the bottom of the installation box 20. The water droplets pass through the ice outlet member 50 and drip onto the switch 60, and finally drip through the switch 60 into the water receiving box 40 to form accumulated water waiting to be wiped or evaporated. Since the water contains impurities, water stains will be left on the paths it passes through and the water receiving groove of the water receiving box 40, greatly affecting the user experience and even breeding bacteria seriously in severe cases.

[0138] In the related art, the ice door structure 30 includes an ice door box 31, a heat insulation member 32, a seal 33, and a heating film 34. The rotating shaft 36 is connected to the driving motor 35, the rotating shaft 36 is rotatably connected to the bracket 70, the ice door box 31 is connected to the rotating shaft 36, the heat insulation member 32 is located in the area surrounded by the seal 33 and the ice door box 31, and the heating film 34 is disposed on the inner wall of the ice door box 31 facing the heat insulation member 32. The ice outlet assembly uses the heating film 34 and the heat insulation member 32 to solve the condensation problem. The driving motor 35 drives the rotating shaft 36 to drive the ice door structure 30 to rotate relative to the bracket 70 to open or close the ice outlet.

[0139] Specifically, the heating film 34 is a 0.01 mm thick film formed by the process of printing nickel-chromium alloy powder. The heating film 34 is wound and attached to the insulating tape-like material and pasted in the ice door box 31. This kind of film heater has a complex processing technology and a high manufacturing cost.

[0140] Moreover, during use, since the resistance value of the heating film 34 is small, the power is small and the heat generation is small under the same current. Although the condensation on the surface of the ice door structure 30 can be removed during use, the working time is long and the power consumption is large.

[0141] Moreover, since the condensation generated at H due to heat exchange can be improved by the heat insulation member 32, the condensation generated at G due to heat conduction can only be removed by the radiation on the surface of the ice door structure 30. The heating film 34 is far from the position of G. Therefore, the heat transfer effect of the heating film on G is poor, the heating time is long, and the energy consumption is large.

[0142] Moreover, refer to Figure 5As shown, since the ice discharging member 50 does not surround the positions near the top and the mounting box G of the ice door structure 30, that is to say, the ice door structure 30 is in a relatively open environment, and part of the heat generated by the heating film 34 in the ice door structure 30 will diffuse outward through the space at the top of the ice discharging member 50 and be transmitted into the mounting box 20. Therefore, the heating film 34 needs to work for a long time, resulting in high energy consumption.

[0143] Figure 7 It is a cross-sectional view of another ice door structure in the related art.

[0144] See Figure 7 As shown, in order to reduce the cost of the heater, the heater is produced with metal wires. The heater is directly coiled repeatedly and fully covered and adhered to the insulating tape-like material, and then pasted in the ice door box 31. This kind of heater is produced by the metal wire drawing process, with a simple processing technology and low manufacturing cost.

[0145] The metal wire can be a nickel-chromium alloy wire. During use, due to its large resistance value, compared with the film heater, it generates more heat under the same current, and the power-on time required to remove the condensation on the ice door surface during use is short.

[0146] However, the disadvantages of this solution are obvious. The wire diameter of the heater made of this nickel-chromium alloy wire (not shown in the figure) is 2.2 mm. Adding the heat-conducting material, the overall thickness of the heater reaches 3 mm. Considering factors such as assembly, the thickness s of the ice door structure 30 is thickened by more than 5 mm compared with the method using the film heater, increasing the volume of the ice door structure 30. At the same time, the condensation generated by heat conduction is removed by radiation on the surface of the ice door structure 30. The distance is relatively far, and the heating time required is long, resulting in high energy consumption. Moreover, the ice door structure is in a relatively open environment, and most of the heat generated by the heater is dissipated to the outside of the refrigerator, causing energy waste.

[0147] To overcome the deficiencies in the related art, the refrigerator provided by the present application includes a box body, a door body, and an ice-making system. Among them, the ice-making system includes an ice-making component and an ice-dispensing component. The ice-dispensing component is arranged on the door body to facilitate users to take ice. The ice-dispensing component includes an ice hopper, a box body, an ice door structure, and a guiding structure. Among them, the side wall of the box body facing the ice hopper is connected to the ice hopper, and the extension plane of the side wall of the box body facing the ice hopper has an angle with the horizontal plane. In this way, the condensed water formed on the side wall of the box body facing the ice hopper can converge downward under the action of gravity. Among them, the ice door structure is located in the first inner cavity, and the ice door structure is rotatably connected to the box body. The ice door structure rotates relative to the box body to connect or disconnect the ice-dispensing cavity from the first inner cavity. When the ice-dispensing cavity is not connected to the first inner cavity, the extension plane of the ice door structure has an angle with the horizontal plane. In this way, the condensed water formed on the ice door structure can converge downward under the action of gravity. Among them, the guiding structure is located in the first inner cavity, and the condensed water on the ice door structure and the inner wall of the first inner cavity flows to the water storage cavity of the box body through the guiding structure. Then, the condensed water in the water storage cavity can evaporate at room temperature, so that there is no need to set up a heater, reducing costs and energy consumption.

[0148] The content of the present application will be described in detail below with reference to the accompanying drawings, so that those skilled in the art can understand the content of the present application more clearly and in detail.

[0149] Figure 8 It is a schematic structural diagram of a refrigerator provided by an embodiment of the present application. Figure 9 It is a schematic structural diagram of another refrigerator provided by an embodiment of the present application. Figure 10 is Figure 9 Another state schematic diagram of the refrigerator in

[0150] See Figures 8 to 10 As shown, the present application provides a refrigerator, which includes a box body 100, and a refrigerating compartment is provided in the box body 100.

[0151] It should be noted that the number of refrigerating compartments can be at least one. The refrigerating compartment can include at least one of a refrigerating chamber and a freezing chamber.

[0152] In some embodiments, the refrigerator includes a door body 200.

[0153] Among them, the door body 200 is rotatably connected to the box body 100 to open or close the refrigerating compartment.

[0154] It should be noted that the number of door bodies 200 can be at least one. The door body 200 can include at least one of a freezing door and a refrigerating door.

[0155] In some embodiments, the refrigerator includes an ice-making system.

[0156] In some embodiments, the ice-making system includes an ice-making assembly 300, which is disposed in the refrigerating compartment or on the door body 200.

[0157] In some embodiments, the ice-making system includes an ice-dispensing assembly 400, which is disposed on the door body 200.

[0158] See Figure 8 As shown, in some embodiments, an ice-making system is provided on the freezer door, and the ice-making assembly 300 and the ice-dispensing assembly 400 are installed on the freezer door. When the user takes ice without opening the door, the ice cubes can enter the user's cup through the ice-dispensing assembly 400 on the door.

[0159] See Figure 9 and Figure 10 As shown, in some embodiments, an ice-making system is provided on the refrigerator door, and the ice-making assembly 300 and the ice-dispensing assembly 400 are installed in an independent compartment on the refrigerator door for ice-making and storage. When the user takes ice without opening the door, the ice cubes can enter the user's cup through the ice-dispensing assembly 400 on the door.

[0160] In some embodiments, the ice-making assembly 300 is installed in an independent enclosed space in the refrigerating compartment, and the ice-dispensing assembly 400 is provided on the door body 200, so that the user can take ice without opening the door body 200.

[0161] Figure 11 FIG. Figure 12 is Figure 11 an exploded view of Figure 13 is Figure 11 a sectional view of

[0162] See Figures 11 to 13 As shown, in some embodiments, the ice-dispensing assembly 400 includes an ice hopper 410. The ice hopper 410 is used to receive the ice cubes from the ice-making assembly 300.

[0163] Among them, the ice hopper 410 is communicated with the ice-making assembly 300, and the ice hopper 410 is provided with an ice-dispensing cavity.

[0164] Among them, a first opening is provided at the tail of the ice hopper 410, and the first opening is communicated with the ice-dispensing cavity.

[0165] In some embodiments, the ice-dispensing assembly 400 includes a box body 420. The box body 420 is used to be embedded on the door body 200 to provide an installation space for other components of the ice-dispensing assembly 400.

[0166] Figure 14 is Figure 11 a schematic structural view of the box body and the second guiding member in Figure 15 is Figure 14Structural schematic diagram from another angle.

[0167] See Figure 14 and Figure 15 As shown, the box body 420 is provided with a first inner cavity.

[0168] Wherein, one side of the box body 420 facing the ice bucket 410 is provided with a second opening, and the second opening is opposite to and communicated with the first opening.

[0169] Wherein, the side wall of the box body 420 on the side facing the ice bucket 410 is connected to the ice bucket 410. Exemplarily, it can be snap-connected or connected by fasteners.

[0170] It can be understood that the cold quantity of the ice bucket 410 can be transmitted to the side wall of the box body 420 on the side facing the ice bucket 410, and condensation is likely to form on this side wall. The extension plane of the side wall of the box body 420 on the side facing the ice bucket 410 has an included angle with the horizontal plane, so that the condensation formed on the inner side of this side wall can converge downward along the inner wall under the action of gravity.

[0171] Wherein, the bottom of the box body 420 is provided with a water receiving cavity 423.

[0172] Wherein, the water receiving cavity 423 can be communicated with the first inner cavity. Or in some other embodiments, the water receiving cavity 423 can be not communicated with the first inner cavity.

[0173] See Figure 14 and Figure 15 As shown, in some embodiments, the box body 420 includes a mounting box 421.

[0174] Wherein, the side wall of the mounting box 421 on the side facing the ice bucket 410 is connected to the ice bucket 410. The mounting box 421 is provided with an inner cavity, and the extension plane of the side wall of the inner cavity of the mounting box 421 on the side facing the ice bucket 410 has an included angle with the horizontal plane.

[0175] In some embodiments, the box body 420 includes a water receiving box 422.

[0176] The water receiving box 422 is arranged at the bottom of the mounting box 421. The water receiving box 422 is provided with an inner cavity, and the inner cavity of the water receiving box 422 is communicated with the inner cavity of the mounting box 421. In some embodiments, the mounting box 421 and the water receiving box 422 can be separately arranged. The mounting box 421 and the water receiving box are detachably connected.

[0177] In some other embodiments, the mounting box 421 and the water receiving box 422 can be integrally arranged.

[0178] See Figure 14 and Figure 15 As shown, in some embodiments, the bottom wall of the water receiving box 422 is provided with a water receiving cavity 423.

[0179] In some other embodiments, the cartridge 420 includes a cleaning cartridge which is disposed at the bottom of the water receiving cartridge 422 and is provided with a water receiving cavity. The cleaning cartridge is detachably connected to the water receiving cartridge 422, facilitating the user to take out the cleaning cartridge from the water receiving cartridge 422 for cleaning.

[0180] See Figure 12 and Figure 13 As shown, in some embodiments, the ice discharging assembly 400 includes an ice door structure 430.

[0181] Among them, the ice door structure 430 is located in the first inner cavity. The ice door structure 430 is rotatably connected to the cartridge 420 and rotates relative to the cartridge 420 to connect or disconnect the ice discharging cavity from the first inner cavity.

[0182] In some embodiments, the ice door structure 430 includes an ice door box 431.

[0183] Among them, the ice door box 431 is rotatably connected to the cartridge 420.

[0184] The ice door box 431 is provided with a first installation cavity.

[0185] In some embodiments, the ice door structure 430 includes a seal 432 which is used to improve the sealing performance of the second outlet.

[0186] Among them, the seal 432 covers the ice door box 431, and when the ice door structure 430 closes the second outlet, the seal 432 abuts against the inner wall of the cartridge 420.

[0187] Exemplarily, the material of the seal 432 can be rubber or silica gel.

[0188] In some embodiments, the ice door structure 430 includes a heat insulation member 433 which is located in the first installation cavity. The heat insulation member 433 is used to reduce the heat exchange between the ice door structure 430 and the internal environment of the ice hopper 410, improve the temperature of the outer surface of the ice door box 431, and thus reduce condensation.

[0189] Figure 16 For Figure 13 the partial enlarged view at W in

[0190] See Figure 16 As shown, when the ice door structure 430 covers the second opening and the ice discharging cavity is not connected to the first inner cavity, the extension plane of the ice door structure 430 has an angle k with the horizontal plane.

[0191] It can be understood that in order to achieve a better sealing effect of the ice door structure 430, the extension plane of the ice door structure 430 is parallel to the extension plane of the side wall of the inner cavity of the mounting box 421 facing the ice hopper 410, so that the ice door structure 430 fits against the side wall of the inner cavity of the mounting box 421 facing the ice hopper 410.

[0192] See Figure 11 As shown, in some embodiments, a switch assembly 500 is further included.

[0193] Among them, the switch assembly 500 is electrically connected to the ice door structure 430, and the switch assembly 500 is configured to control the rotation of the ice door structure 430 relative to the box body 420.

[0194] Among them, the switch assembly 500 is embedded in the box body 420.

[0195] When the user presses the switch assembly 500 with the ice-taking container, the ice door structure 430 opens the second opening, and the ice cubes in the ice-making assembly 300 enter the ice-taking container through the ice hopper 410. When the ice-taking container stops pressing the switch assembly 500, the ice door structure 430 closes the second opening.

[0196] See Figure 13 As shown, in some embodiments, the ice discharging assembly 400 includes a guiding structure 450.

[0197] Among them, the guiding structure 450 is located in the first inner cavity.

[0198] When the ice door structure 430 closes the second opening and the first inner cavity is not communicated with the ice discharging cavity, the condensed water on the ice door structure 430 and the inner wall of the first inner cavity flows into the water receiving cavity 423 through the guiding structure 450.

[0199] It can be understood that the refrigerator includes a cabinet 100, a door body 200, and an ice-making system. Among them, the ice-making system includes an ice-making component 300 and an ice-dispensing component 400. The ice-dispensing component 400 is arranged on the door body 200 for the convenience of users to take ice. The ice-dispensing component 400 includes an ice hopper 410, a box body 420, an ice door structure 430, and a guiding structure 450. Among them, the side wall of the box body 420 facing the ice hopper 410 is connected to the ice hopper 410, and the extending plane of the side wall of the box body 420 facing the ice hopper 410 has an angle with the horizontal plane. In this way, the condensed water formed on the side wall of the box body 420 facing the ice hopper 410 can converge downward under the action of gravity. Among them, the ice door structure 430 is located in the first inner cavity, the ice door structure 430 is rotatably connected to the box body 420, and the ice door structure 430 rotates relative to the box body 420 to connect or disconnect the ice-dispensing cavity from the first inner cavity. When the ice-dispensing cavity is not connected to the first inner cavity, the extending plane of the ice door structure 430 has an angle with the horizontal plane. In this way, the condensed water formed on the ice door structure 430 can converge downward under the action of gravity. Among them, the guiding structure 450 is located in the first inner cavity, and the condensed water on the ice door structure 430 and the inner wall of the first inner cavity flows to the water storage cavity 423 of the box body 420 through the guiding structure 450, and then the condensed water in the water storage cavity 423 can evaporate at room temperature, so that there is no need to set a heater, reducing costs and energy consumption.

[0200] In some embodiments, the guiding structure 450 is provided with an inner cavity, the inner cavity is communicated with the first inner cavity and is also communicated with the water storage cavity 423.

[0201] At least a part of the guiding structure 450 is arranged below the ice door structure 430.

[0202] When the ice door structure 430 closes the second opening and the first inner cavity is not communicated with the ice-dispensing cavity, the condensed water on the ice door structure 430 and the inner wall of the first inner cavity flows to the water storage cavity 423 through the inner wall of the guiding inner cavity.

[0203] It can be understood that by providing a guiding inner cavity in the guiding structure 450, the condensed water flows in the guiding inner cavity, and the guiding structure 450 can block the water stains generated by the evaporation of the condensed water.

[0204] It should be noted that the guiding inner cavity includes at least one of a second inner cavity, a third inner cavity, and a fourth inner cavity.

[0205] See Figure 12 and Figure 13 As shown in, in some embodiments, the guiding structure 450 includes a first guiding member 451. The first guiding member 451 can limit the path of the ice cubes, thus facilitating the ice cubes to enter the ice-taking container.

[0206] Along the height direction of the cabinet 100, from top to bottom, the radial dimension of the first guiding member 451 decreases.

[0207] Among them, the first guiding member 451 is located in the first inner cavity. The first guiding member 451 is provided with a second inner cavity, and the second inner cavity communicates with the first inner cavity.

[0208] When the ice door structure 430 opens the second opening and the first inner cavity communicates with the ice outlet cavity, the ice cubes in the ice making assembly 300 enter the ice taking container through the ice hopper 410 and the first guiding member 451.

[0209] In some embodiments, the ice outlet assembly 400 further includes an ice outlet member 440. The ice outlet member 440 can restrict the path of the ice cubes, thereby facilitating the ice cubes to enter the ice taking container.

[0210] Among them, the ice outlet member 440 is arranged in the first inner cavity. The ice outlet member 440 is located below the first guiding member 451, and the ice outlet member 440 communicates with the first guiding member 451.

[0211] The bottom of the ice outlet member 440 is provided with an ice outlet, and the size of the ice outlet matches the ice taking container.

[0212] Along the height direction of the cabinet 100, from top to bottom, the radial dimension of the ice outlet member 440 decreases.

[0213] When the ice door structure 430 opens the second opening and the first inner cavity communicates with the ice outlet cavity, the ice cubes in the ice making assembly 300 enter the ice taking container through the ice hopper 410, the first guiding member 451 and the ice outlet member 440.

[0214] See Figure 16 As shown, in some embodiments, the guiding structure 450 includes a first guiding member 451.

[0215] Among them, the top of the first guiding member 451 abuts against the inner wall of the first inner cavity on the side facing the ice hopper 410. Part of the first guiding member 451 is located in the lower part of the ice door structure 430, and part of the ice door structure 430 is located in the second inner cavity.

[0216] See Figure 16 As shown, in some embodiments, the guiding structure 450 includes a second guiding member 452.

[0217] Among them, the second guiding member 452 is arranged below the first guiding member 451. The second guiding member 452 is provided with a third inner cavity, and the third inner cavity communicates with the second inner cavity and also communicates with the water storage cavity 423.

[0218] When the ice door structure 430 closes the second opening and the first inner cavity does not communicate with the ice outlet cavity, the condensed water on the ice door structure 430 and the inner wall of the first inner cavity enters the water storage cavity 423 through the first guiding member 451 and the second guiding member 452.

[0219] It can be understood that through the cooperation of the first guiding member 451 and the second guiding member 452, the guiding path of the condensed water is relatively long, which is conducive to ensuring that the condensed water flows along a predetermined path.

[0220] See Figure 16 As shown, it should be noted that the condensed water on the ice door structure 430 and the inner wall of the first inner cavity gathers under the action of gravity, and there are two falling trajectories for the condensed water after convergence: 1. It directly drips downward from the end of the ice door structure 430. 2. It flows along the inner wall of the box body 420. Therefore, the positive projection of the inner wall of the second guiding member 452 towards the horizontal plane is partially located within the positive projection of the inner wall of the first guiding member 451 towards the horizontal plane, and the condensed water on the ice door structure 430 and the inner wall of the first inner cavity enters the water receiving cavity 423 through the first guiding member 451 and the second guiding member 452. In this way, it is beneficial for the condensed water flowing along trajectory 2 to smoothly enter the interior of the second guiding member 452 through the first guiding member 451.

[0221] In some embodiments, the positive projection of the ice door structure 430 towards the horizontal plane is partially located within the positive projection of the second guiding member 452 towards the horizontal plane. In this way, it is beneficial for the condensed water flowing along trajectory 1 to smoothly enter the interior of the second guiding member 452 through the first guiding member 451.

[0222] Figure 17 For Figure 11 the structural schematic diagram of the first guiding member in Figure 18 For Figure 17 the top view of

[0223] See Figures 16 to 18. In some embodiments, the first guiding member 451 includes a water guiding portion 4511. The water guiding portion 4511 is used to accelerate the guiding of the condensed water into the second guiding member 452.

[0224] Among them, the water guiding portion 4511 is located below the ice door structure 430 and above the second guiding member 452. In this way, it is beneficial for the condensed water to gather at the bottom of the ice door structure 430 and then flow into the water guiding portion 4511.

[0225] Among them, the positive projection of the water guiding portion 4511 towards the horizontal plane is located within the positive projection of the second guiding member 452 towards the horizontal plane. In this way, it is beneficial to accurately introduce the water in the water guiding portion 4511 into the second guiding member 452.

[0226] In some embodiments, the first guiding member 451 includes an ice guiding portion 4512. The ice guiding portion 4512 is used to guide the ice cubes into the ice taking container.

[0227] Among them, the ice guiding portion 4512 is located on the opposite sides of the water guiding portion 4511 along the circumferential direction of the first guiding member 451.

[0228] Among them, the angle between the inner wall of the ice guiding part 4512 and the horizontal plane is smaller than the angle between the inner wall of the water guiding part 4511 and the horizontal plane. In this way, it is beneficial to accelerate the flow rate of the condensed water, so that the condensed water can enter the second guiding member 452 as soon as possible.

[0229] See Figure 16 As shown, in some embodiments, the orthographic projection of the ice door structure 430 onto the horizontal plane is partially located within the orthographic projection of the water guiding part 4511 onto the horizontal plane. In this way, it is beneficial for the condensed water flowing along the trajectory 1 to enter the water guiding part 4511, accelerating the flow of the condensed water.

[0230] See Figure 18 As shown, in some embodiments, the dimension m of the water guiding part 4511 along the circumferential direction of the first guiding member 451 is smaller than the dimension of the rated ice cubes of the ice making assembly 300. It should be noted that the specifications of the ice cubes made by the ice making assembly 300 in different refrigerators are different. For example, the specifications are 20 mm or 15 mm, etc. The dimension m of the water guiding part 4511 along the circumferential direction of the first guiding member 451 is set according to the dimension of the rated ice cubes of the ice making assembly 300.

[0231] It can be understood that the dimension of the water guiding part 4511 is smaller than the dimension of the ice cubes, so the ice cubes are not easily entered into the water guiding part 4511 and are not easily guided into the second guiding member 452 along the water guiding part 4511.

[0232] See Figure 18 As shown, in some embodiments, the dimension m of the water guiding part 4511 along the circumferential direction of the first guiding member 451 is 15 - 18 mm.

[0233] In some embodiments, the dimension m of the water guiding part 4511 along the circumferential direction of the first guiding member 451 is greater than 15 mm and less than 18 mm.

[0234] In some embodiments, the dimension m of the water guiding part 4511 along the circumferential direction of the first guiding member 451 is greater than 15.

[0235] In some embodiments, the dimension m of the water guiding part 4511 along the circumferential direction of the first guiding member 451 is less than 18 mm.

[0236] When the dimension m of the water guiding part 4511 along the circumferential direction of the first guiding member 451 is less than 15 mm, the dimension of the water guiding part 4511 is small, which easily causes some condensed water to enter the second guiding member 452 through the ice guiding part 4512, and the flow rate of the condensed water is slow.

[0237] When the dimension m of the water guiding part 4511 along the circumferential direction of the first guiding member 451 is greater than 18 mm, the dimension of the water guiding part 4511 is large, which easily causes some ice cubes to enter the second guiding member 452 through the ice guiding part 4512 or the ice cubes get stuck at the top of the second guiding member 452.

[0238] In some embodiments, the dimension m of the water guiding part 4511 along the circumferential direction of the first guiding member 451 is 16 mm or 17 mm.

[0239] In some embodiments, the positive projection of the water guiding part 4511 towards the horizontal plane may be semi-circular.

[0240] Figure 19 For Figure 18 the sectional view along the B-B direction in Figure 20 For Figure 19 the partial enlarged view at C in

[0241] See Figure 16 、 Figure 19 and Figure 20 As shown in

[0242] In some embodiments, the water guiding part 4511 includes a first water guiding section 45111.

[0243] Among them, the included angle a between the inner wall of the first water guiding section 45111 and the horizontal plane is greater than the included angle b between the inner wall of the second water guiding section 45112 and the horizontal plane. In this way, when the condensed water moves along the track 2, the speed of the condensed water in the first water guiding section 45111 can be relatively fast, and the speed decreases when it is in the second water guiding section 45112, so that it is beneficial for the condensed water to enter the second guiding member 452 at a relatively low speed, effectively avoiding the condensed water flowing outside the second guiding member 452 due to a relatively fast speed.

[0244] See Figure 20 As shown in

[0245] In some embodiments, the included angle a between the inner wall of the first water guiding section 45111 and the horizontal plane is 75 - 80 degrees.

[0246] In some embodiments, the included angle a between the inner wall of the first water guiding section 45111 and the horizontal plane is greater than 75 degrees.

[0247] In some embodiments, the included angle a between the inner wall of the first water guiding section 45111 and the horizontal plane is less than 80 degrees.

[0248] When the included angle a between the inner wall of the first water guiding section 45111 and the horizontal plane is less than 75 degrees, the flow rate of the condensed water is slow and the efficiency is low. When the included angle a between the inner wall of the first water guiding section 45111 and the horizontal plane is greater than 80 degrees, the flow rate of the condensed water is fast and it is easy to splash outside.

[0249] In some embodiments, the angle α between the inner wall of the first water guiding section 45111 and the horizontal plane can be 76 degrees, 77 degrees, 78 degrees or 79 degrees.

[0250] See Figure 20 As shown, in some embodiments, the angle β between the inner wall of the second water guiding section 45112 and the horizontal plane is 50 - 75 degrees.

[0251] In some embodiments, the angle β between the inner wall of the second water guiding section 45112 and the horizontal plane is greater than 50 degrees and less than 75 degrees.

[0252] In some embodiments, the angle β between the inner wall of the second water guiding section 45112 and the horizontal plane is greater than 50 degrees.

[0253] In some embodiments, the angle β between the inner wall of the second water guiding section 45112 and the horizontal plane is less than 75 degrees.

[0254] When the angle β between the inner wall of the second water guiding section 45112 and the horizontal plane is less than 50 degrees, the flow rate of the condensed water is slow and the efficiency is low. When the angle β between the inner wall of the second water guiding section 45112 and the horizontal plane is greater than 75 degrees, the flow rate of the condensed water is fast and it is easy to splash out.

[0255] In some embodiments, the angle β between the inner wall of the second water guiding section 45112 and the horizontal plane can be 55 degrees, 60 degrees, 65 degrees or 70 degrees.

[0256] When the ice cubes move in the ice bucket 410, some ice cubes will move along the inner wall of the bottom of the ice bucket 410 to the second opening, and the inner wall of the bottom of the ice bucket 410 enters the first guiding member 451 along the extending direction of the ice bucket 410. To effectively avoid the ice cubes from colliding with the second guiding member 452, see Figure 16 As shown, in some embodiments, there is a gap between the extending surface of the inner wall of the bottom of the ice bucket 410 along the extending direction of the ice bucket 410 and the top of the second guiding member 452, and it is located on the side of the second guiding member 452 facing the first guiding member 451. In this way, the ice cubes are not likely to collide with the top of the second guiding member 452.

[0257] Figure 21 For Figure 11 the structural schematic diagram of the second guiding member and the water receiving box in Figure 22 For Figure 21 the front view of

[0258] See Figure 21 and Figure 22As shown, in some embodiments, the second guide member 452 covers the inner wall of the cartridge 420, and the second guide member 452 and the inner wall of the cartridge 420 form a third inner cavity. In this way, the thickness dimension of the second guide member 452 can be smaller, which is beneficial to saving space.

[0259] In other embodiments, a third inner cavity is provided inside the second guide member 452.

[0260] See Figure 21 and Figure 22 As shown, in some embodiments, the second guide member 452 includes a first guide portion 4521.

[0261] Among them, the first guide portion 4521 is located below the first guide member 451.

[0262] In some embodiments, the second guide member 452 includes a second guide portion 4522.

[0263] Among them, the second guide portion 4522 is located at the bottom of the first guide portion 4521 and is communicated with the first guide portion 4521.

[0264] In some embodiments, the second guide member 452 includes a third guide portion 4523.

[0265] Among them, the third guide portion 4523 is located at the bottom of the first guide portion 4521 and is communicated with the first guide portion 4521.

[0266] Among them, there is a spacing between the third guide portion 4523 and the second guide portion 4522. The switch assembly 500 is located between the third guide portion 4523 and the second guide portion 4522.

[0267] It can be understood that by providing the first guide portion 4521, the second guide portion 4522 and the third guide portion 4523 that are interconnected, there is a spacing between the third guide portion 4523 and the second guide portion 4522. The switch assembly 500 is located between the third guide portion 4523 and the second guide portion 4522. In this way, the position of the switch assembly 500 does not need to be changed, which is convenient for the user to press the switch assembly 500 with the ice-taking container to take ice.

[0268] Figure 23 For Figure 22 the sectional view along the D-D direction in Figure 24 For Figure 23 the partial enlarged view at E in Figure 25 For Figure 11 the top view of

[0269] See Figures 23 to 25As shown, in some embodiments, the included angle t between the extending direction of the first guiding portion 4521 and the horizontal plane is less than the included angle b between the inner wall of the second water guiding section 45112 and the horizontal plane.

[0270] It can be understood that the condensed water flows along the second water guiding section 45112 into the first guiding portion 4521. The included angle t between the extending direction of the first guiding portion 4521 and the horizontal plane is less than the included angle b between the inner wall of the second water guiding section 45112 and the horizontal plane. The first guiding portion 4521 is relatively gentle, which is conducive to receiving the condensed water. Moreover, the first guiding portion 4521 is relatively gentle, and in the depth direction of the box body 100, a larger size is beneficial to receiving the condensed water dripping along the track 1.

[0271] Wherein, the depth direction is the direction shown by the Y axis in the figure.

[0272] See Figure 23 As shown, in some embodiments, the included angle t between the extending direction of the first guiding portion 4521 and the horizontal plane is 45 - 60°.

[0273] In some embodiments, the included angle t between the extending direction of the first guiding portion 4521 and the horizontal plane is greater than 45 degrees and less than 60 degrees.

[0274] In some embodiments, the included angle t between the extending direction of the first guiding portion 4521 and the horizontal plane is greater than 45 degrees.

[0275] In some embodiments, the included angle t between the extending direction of the first guiding portion 4521 and the horizontal plane is less than 60 degrees.

[0276] When the included angle t between the extending direction of the first guiding portion 4521 and the horizontal plane is less than 45 degrees, the condensed water is not easy to flow along the first guiding portion 4521. When the included angle t between the extending direction of the first guiding portion 4521 and the horizontal plane is greater than 60 degrees, the first guiding portion 4521 is not easy to receive the condensed water flowing along the second water guiding section 45112, and is not easy to receive the condensed water dripping along the track 1.

[0277] In some embodiments, the included angle t between the extending direction of the first guiding portion 4521 and the horizontal plane is 46 degrees, 48 degrees, 50 degrees, 55 degrees or 58 degrees.

[0278] Figure 26 For Figure 25 the sectional view along the U - U direction in Figure 27 For Figure 26 the partial enlarged view at the F position in

[0279] See Figures 25 to 27 , in some embodiments, along the width direction of the box body 100, the size of the first guiding portion 4521 is not less than the size of the ice door structure 430. The direction shown by the X axis is the width direction of the box body.

[0280] It can be understood that the ice door structure 430 is a movable structure. When the ice door structure 430 opens the second opening, the water droplets gathering on the outer edge of the ice door structure 430 flow down. Therefore, in the width direction of the box body 100, the size of the first guiding portion 4521 is not less than the size of the ice door structure 430, so as to effectively prevent the outflow of condensed water.

[0281] See Figure 16 As shown, in some embodiments, the orthographic projection of the ice door structure 430 onto the horizontal plane is partially located within the orthographic projection of the first guiding portion 4521 onto the horizontal plane. In this way, it is beneficial for the condensed water flowing along the track 1 to smoothly enter the interior of the second guiding member 452 through the first guiding member 451.

[0282] See Figure 16 As shown, in some embodiments, the included angle z between the extension plane of the side wall of the box body 420 facing the ice hopper 410 and the horizontal plane is not less than 45°.

[0283] In some embodiments, the included angle z between the extension plane of the side wall of the box body 420 facing the ice hopper 410 and the horizontal plane is greater than 40°.

[0284] It can be understood that the included angle z between the extension plane of the side wall of the box body 420 facing the ice hopper 410 and the horizontal plane being not less than 40° is beneficial for the convergence of condensed water.

[0285] In some embodiments, the included angle z between the extension plane of the side wall of the box body 420 facing the ice hopper 410 and the horizontal plane is 45°, 46°, 47°, 48°, 49° or 50°.

[0286] See Figure 16 As shown, in some embodiments, when the inner cavity of the first inner cavity is not connected to the inner cavity of the ice hopper 410, the included angle k between the extension plane of the ice door structure 430 and the horizontal plane is greater than 40°.

[0287] In some embodiments, when the inner cavity of the first inner cavity is not connected to the inner cavity of the ice hopper 410, the included angle k between the extension plane of the ice door structure 430 and the horizontal plane is not less than 45°.

[0288] It can be understood that the included angle k between the extension plane of the ice door structure 430 and the horizontal plane being greater than 40° is beneficial for the convergence of condensed water.

[0289] In some embodiments, the included angle k between the extension plane of the ice door structure 430 and the horizontal plane is 42°, 45°, 46°, 47°, 48°, 49° or 50°.

[0290] See Figure 13As shown, in some embodiments, the angle r between the extending direction of the inner bottom wall of the ice bucket 410 and the horizontal plane is greater than 40 degrees, which is conducive to the smooth dropping of ice cubes.

[0291] In some embodiments, the angle r between the extending direction of the inner bottom wall of the ice bucket 410 and the horizontal plane is not less than 45 degrees, which is conducive to the smooth dropping of ice cubes.

[0292] In some embodiments, the angle r between the extending direction of the inner bottom wall of the ice bucket 410 and the horizontal plane is 42 degrees, 45 degrees, 46 degrees, 47 degrees, 48 degrees, 49 degrees or 50 degrees.

[0293] In some embodiments, since the ice bucket 410 and the ice door structure 430 are installed in a sealed fit, on the premise of ensuring vertical sealing and the verticality of the ice channel, the angle r between the extending direction of the inner bottom wall of the ice bucket 410 and the horizontal plane is 45 degrees. The extending plane of the ice door structure 430 and the horizontal plane form an angle of 45 degrees. The extending plane of the side wall of the box body 420 facing the ice bucket 410 and the horizontal plane form an angle of 45 degrees.

[0294] It should be noted that the above-mentioned horizontal plane is the plane where the X-axis and the Y-axis are located. Among them, the direction indicated by the X-axis is the width direction of the box body 100, and the direction indicated by the Y-axis is the depth direction of the box body 100. The direction indicated by the Z-axis is the height direction of the box body 100.

[0295] Figure 28 This is a schematic structural diagram of the second structure of the ice discharging assembly in the refrigerator provided by the embodiment of the present application. Figure 29 is Figure 28 a cross-sectional view of Figure 30 is Figure 29 a partial enlarged view of the L position in Figure 31 is Figure 28 a schematic structural diagram of the first guiding member in

[0296] Referring to Figures 28 to 30 As shown, in some embodiments, the guiding structure 450 includes a first guiding member 451. The first guiding member 451 can limit the path of the ice cubes, which is conducive to the ice cubes entering the ice-taking container. Moreover, the first guiding member 451 can limit the flow path of the condensed water, so that the condensed water enters the water receiving cavity 423.

[0297] Among them, the top of the first guiding member 451 abuts against the inner wall of the first inner cavity facing the ice bucket 410, part of the first guiding member 451 is located at the lower part of the ice door structure 430, and part of the ice door structure 430 is located in the second inner cavity.

[0298] When the first inner cavity is not connected to the ice outlet cavity, the condensed water on the ice door structure 430 and the inner wall of the first inner cavity enters the water storage cavity 423 through the first guiding member 451. In this way, the guiding structure 450 may only include the first guiding member 451, and the structure of the guiding structure 450 is relatively simple.

[0299] See Figure 31 As shown, in some embodiments, the first guiding member 451 includes a water guiding portion 4511. The water guiding portion 4511 is used to guide the condensed water into the water storage cavity 423.

[0300] Among them, the water guiding portion 4511 is located below the ice door structure 430. The orthographic projection of the water guiding portion 4511 onto the horizontal plane partially lies within the orthographic projection of the inner wall of the water storage cavity 423 onto the horizontal plane. In this way, it is beneficial for the condensed water to converge at the bottom of the ice door structure 430 and then drip into the water guiding portion 4511.

[0301] In some embodiments, the dimension of the water guiding portion 4511 along the circumferential direction of the first guiding member 451 is smaller than the size of the ice cube. The ice cube is not easily introduced into the water guiding portion 4511 and is not easily introduced into the water storage cavity 423 along the water guiding portion 4511.

[0302] In some embodiments, the water guiding portion 4511 includes a first water guiding section.

[0303] In some embodiments, the water guiding portion 4511 includes a second water guiding section. The first water guiding section is located at the top of the second water guiding section 45112.

[0304] Among them, the angle between the inner wall of the first water guiding section and the horizontal plane is greater than the angle between the inner wall of the second water guiding section and the horizontal plane. In this way, the speed of the condensed water can be relatively fast when it is in the first water guiding section, and the speed decreases when it is in the second water guiding section. Thus, it is beneficial for the condensed water to enter the water storage cavity 423 at a relatively low speed, effectively preventing the condensed water from flowing outside the water storage cavity 423 due to a relatively fast speed.

[0305] In some embodiments, the first guiding member 451 includes an ice guiding portion 4512. The ice guiding portion 4512 is used to guide the ice cube into the ice taking container.

[0306] Among them, the ice guiding portion 4512 is located on the opposite sides of the water guiding portion 4511 along the circumferential direction of the first guiding member 451, and the angle between the inner wall of the ice guiding portion 4512 and the horizontal plane is smaller than the angle between the inner wall of the water guiding portion 4511 and the horizontal plane.

[0307] In this way, it is beneficial to accelerate the flow rate of the condensed water so that the condensed water can enter the water storage cavity 423 as soon as possible.

[0308] Figure 32 It is a schematic structural diagram of the third structure of the ice outlet assembly in the refrigerator provided by the embodiments of the present application. Figure 33 ForFigure 32 Cross-sectional view of Figure 34 is Figure 33 a partially enlarged view of the N position in Figure 35 is Figure 32 a schematic structural view of the first guiding member in

[0309] Refer to Figures 32 to 35 As shown, in some embodiments, the guiding structure 450 includes a second guiding member 452.

[0310] Among them, the first guiding member 451 is provided with an avoidance portion 4513 for avoiding the second guiding member 452. The second guiding member 452 is located below the ice door structure 430 and below the avoidance portion 4513.

[0311] Among them, the second guiding member 452 is provided with a third inner cavity, and the third inner cavity is communicated with the first inner cavity and is communicated with the water storage cavity 423.

[0312] Among them, when the first inner cavity is not communicated with the ice outlet cavity, the condensed water on the ice door structure 430 and the inner wall of the first inner cavity enters the water storage cavity 423 through the second guiding member 452. In this way, the guiding structure 450 can only use the second guiding member 452 for guiding, and the structure of the guiding structure 450 is relatively simple.

[0313] It should be noted that the structure of the second guiding member 452 can be the same as that of the second guiding member 452 in the above embodiments, and will not be elaborated herein.

[0314] In some embodiments, the guiding structure 450 includes a second guiding member 452.

[0315] Among them, the second guiding member 452 is located below the ice door structure 430. The second guiding member 452 is provided with a third inner cavity, and the third inner cavity is communicated with the first inner cavity and is communicated with the water storage cavity 423. When the first inner cavity is not communicated with the ice outlet cavity, the condensed water on the inner wall of the first inner cavity enters the water storage cavity 423 through the second guiding member 452.

[0316] In some embodiments, the guiding structure 450 includes a third guiding member.

[0317] Among them, the third guiding member is connected to the ice door structure 430.

[0318] Among them, the third guiding member includes a water guiding portion.

[0319] When the first inner cavity is not communicated with the ice outlet cavity, the condensed water on the ice door structure 430 enters the water storage cavity 423 through the third guiding member and the second guiding member 452.

[0320] Specifically, the orthographic projection of the water guiding portion 4511 on the horizontal plane is partially located within the orthographic projection of the second guiding member 452 on the horizontal plane.

[0321] In some other embodiments, the third guide member is connected to the ice door structure 430. When the first inner cavity is not communicated with the ice outlet cavity, the condensed water on the ice door structure 430 enters the water receiving cavity 423 through the third guide member and the second guide member 452.

[0322] Specifically, the orthographic projection of the water guiding portion 4511 towards the horizontal plane is partially located within the orthographic projection of the inner wall of the water receiving cavity 423 towards the horizontal plane.

[0323] It can be understood that by providing the second guide member 452 and the third guide member, the condensed water on the ice door structure 430 and the condensed water on the inner wall of the first inner cavity are respectively guided through the cooperation of the two, with good pertinence, which is beneficial to improving the guiding effect of the condensed water.

[0324] It should be noted that the structure of the water guiding portion may be the same as that of the water guiding portion 4511 in the above embodiments, and the structure of the second guide member 452 may be the same as that of the second guide member 452 in the above embodiments, which will not be elaborated in this embodiment.

[0325] In some embodiments, the third guide member may be integrally formed with the seal 432 of the ice door structure 430, thereby reducing the installation process.

[0326] It should be noted that the phrases such as "one embodiment", "embodiment", "exemplary embodiment", "some embodiments", etc. mentioned in the specification indicate that the described embodiments may include specific features, structures or characteristics, but not necessarily every embodiment includes such specific features, structures or characteristics. In addition, such phrases do not necessarily refer to the same embodiment. Moreover, when combining specific features, structures or characteristics with an embodiment, implementing such features, structures or characteristics in combination with other embodiments, whether explicitly or implicitly described, is within the knowledge scope of those skilled in the art.

[0327] Generally speaking, terms should be understood at least in part by their use in the context. For example, at least in part according to the context, the term "one or more" used in the text can be used to describe any feature, structure or characteristic in the sense of a singular, or can be used to describe a combination of features, structures or characteristics in the sense of a plural. Similarly, at least in part according to the context, terms such as "a" or "the" can also be understood as conveying a singular usage or conveying a plural usage.

[0328] It should be readily understood that the terms "on", "above", and "over" in this application should be construed in the broadest manner so that "on" not only means "directly on something", but also includes the meaning of "on something" with intermediate features or layers therebetween, and "above" or "over" not only includes the meaning of "above" or "over something", but may also include the meaning of "above" or "over something" with no intermediate features or layers therebetween (i.e., directly on something).

[0329] In addition, spatial relative terms such as "below", "beneath", "under", "above", "over", etc. may be used herein for ease of description to describe the relationship of one element or feature to another as shown in the figures. Spatial relative terms are intended to encompass different orientations of the device in use or operation in addition to the orientation shown in the figures. The device may have other orientations (rotated 90° or at other orientations), and the spatial relative descriptors used herein may be interpreted accordingly as well.

[0330] It should be noted that the brief description of the terms in this application is only for the convenience of understanding the embodiments described hereinafter, and is not intended to limit the embodiments of this application. Unless otherwise specified, these terms should be understood in their ordinary and common meanings.

[0331] In addition, the terms "comprising" and "having" and any variations thereof are intended to cover but not exclude inclusion. For example, a product or device comprising a series of components need not be limited to those components clearly listed, but may include other components not clearly listed or inherent to such products or devices.

[0332] In the description of this application, it should be understood that the orientation or positional relationship indicated by the terms "center", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", etc. is based on the orientation or positional relationship shown in the drawings, and is only for the convenience of describing this application and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operate in a specific orientation, and thus should not be construed as a limitation to this application.

[0333] The terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of the indicated technical features. Thus, features defined with "first" and "second" may explicitly or implicitly include one or more of such features. In the description of this application, unless otherwise specified, the meaning of "a plurality of" is two or more.

[0334] In the description of the present application, it should be noted that unless otherwise clearly specified and defined, the terms "installed", "connected", and "coupled" should be understood in a broad sense. For example, it can be a fixed connection, a detachable connection, or an integral connection; it can be a mechanical connection or an electrical connection; it can be directly connected or indirectly connected through an intermediate medium, and it can be the communication inside two components. For those of ordinary skill in the art, the specific meanings of the above terms in the present application can be understood according to specific circumstances.

[0335] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of the present application and are not intended to limit them. Although the present application has been described in detail with reference to the foregoing embodiments, those of ordinary skill in the art should understand that they can still modify the technical solutions described in the foregoing embodiments, or perform equivalent replacements on some or all of the technical features. However, these modifications or replacements do not cause the essence of the corresponding technical solutions to deviate from the scope of the technical solutions of the embodiments of the present application.

Claims

1. A refrigerator, characterized in that, Comprising: A box body (100) provided with a refrigerating compartment; A door body (200) rotatably connected to the box body (100) to open or close the refrigerating compartment; An ice-making system, which includes: An ice-making component (300) disposed in the refrigerating compartment or the door body (200); An ice discharging component (400) disposed in the door body (200), and the ice discharging component (400) includes: An ice bucket (410) communicated with the ice-making component (300), and the ice bucket (410) is provided with an ice discharging cavity; A box body (420) provided with a first inner cavity, a side wall of the box body (420) facing the ice bucket (410) is connected to the ice bucket (410), an extending plane of the side wall of the box body (420) facing the ice bucket (410) forms an angle with the horizontal plane, and a water receiving cavity is provided at the bottom of the box body (420); An ice door structure (430) located in the first inner cavity, rotatably connected to the box body (420), and the ice door structure (430) rotates relative to the box body (420) to enable the ice discharging cavity to be communicated or not communicated with the first inner cavity. When the ice discharging cavity is not communicated with the first inner cavity, an extending plane of the ice door structure (430) forms an angle with the horizontal plane; A guiding structure (450) located in the first inner cavity. When the first inner cavity is not communicated with the ice discharging cavity, condensed water on the ice door structure (430) and the inner wall of the first inner cavity flows to the water receiving cavity through the guiding structure (450).

2. The refrigerator according to claim 1, characterized in that, The guiding structure (450) is provided with a guiding inner cavity, and the guiding inner cavity is communicated with the first inner cavity and is also communicated with the water receiving cavity; At least a part of the guiding structure (450) is disposed below the ice door structure (430). When the first inner cavity is not communicated with the ice discharging cavity, condensed water on the ice door structure (430) and the inner wall of the first inner cavity flows to the water receiving cavity through the inner wall of the guiding inner cavity.

3. The refrigerator according to claim 1, characterized in that, The guiding structure (450) includes: A first guiding member (451) located in the first inner cavity, and the first guiding member (451) is provided with a second inner cavity, and the second inner cavity is communicated with the first inner cavity; When the first inner cavity is communicated with the ice discharging cavity, ice cubes in the ice-making component (300) enter a ice-taking container through the ice bucket (410) and the second inner cavity of the first guiding member (451).

4. The refrigerator according to claim 3, characterized in that, The top of the first guiding member (451) abuts against the inner wall of the first inner cavity facing the ice bucket (410), a part of the first guiding member (451) is located below the ice door structure (430), and a part of the ice door structure (430) is located in the second inner cavity; When the first inner cavity is not in communication with the ice outlet cavity, the condensed water on the ice door structure (430) and the inner wall of the first inner cavity enters the water storage cavity through the second inner cavity of the first guide member (451).

5. The refrigerator according to claim 3, wherein: The guiding structure (450) includes a second guide member (452); The first guide member (451) is provided with an avoidance portion (4513) for avoiding the second guide member (452). The second guide member (452) is located below the ice door structure (430) and below the avoidance portion (4513); The second guide member (452) is provided with a third inner cavity which is in communication with the first inner cavity and the water storage cavity; When the first inner cavity is not in communication with the ice outlet cavity, the condensed water on the ice door structure (430) and the inner wall of the first inner cavity enters the water storage cavity through the third inner cavity of the second guide member (452).

6. The refrigerator according to claim 3, characterized in that, The guiding structure (450) includes a second guide member (452); The top of the first guide member (451) abuts against the inner wall of the first inner cavity on the side facing the ice hopper (410). Part of the first guide member (451) is located below the ice door structure (430), and part of the ice door structure (430) is located in the second inner cavity; The second guide member (452) is arranged below the first guide member (451). The second guide member (452) is provided with a third inner cavity which is in communication with the second inner cavity and the water storage cavity; The positive projection of the inner wall of the second guide member (452) onto the horizontal plane is partially located within the positive projection of the inner wall of the first guide member (451) onto the horizontal plane. The condensed water on the ice door structure (430) and the inner wall of the first inner cavity enters the water storage cavity through the second inner cavity of the first guide member (451) and the third inner cavity of the second guide member (452).

7. The refrigerator according to claim 1, characterized in that, The guiding structure (450) includes: A second guide member (452) which is located below the ice door structure (430). The second guide member (452) is provided with a third inner cavity which is in communication with the first inner cavity and the water storage cavity. When the first inner cavity is not in communication with the ice outlet cavity, the condensed water on the inner wall of the first inner cavity enters the water storage cavity through the third inner cavity of the second guide member (452); A third guide member which is connected to the ice door structure (430). The third guide member is provided with a fourth inner cavity which is in communication with the first inner cavity and the third inner cavity. When the first inner cavity is not in communication with the ice outlet cavity, the condensed water on the ice door structure (430) enters the water storage cavity through the fourth inner cavity of the third guide member and the third inner cavity of the second guide member (452).

8. The refrigerator according to claim 4, characterized in that, The first guide member (451) includes: The water guiding part (4511), the water guiding part (4511) is located below the ice door structure (430), and the orthographic projection of the water guiding part (4511) towards the horizontal plane is partially located within the orthographic projection of the inner wall of the water receiving cavity towards the horizontal plane; The ice guiding part (4512), the ice guiding part (4512) is located on the opposite sides of the water guiding part (4511) along the circumferential direction of the first guiding member (451), and the included angle between the inner wall of the ice guiding part (4512) and the horizontal plane is smaller than the included angle between the inner wall of the water guiding part (4511) and the horizontal plane.

9. The refrigerator according to claim 6, characterized in that, The first guiding member (451) includes: The water guiding part (4511), the water guiding part (4511) is located below the ice door structure (430) and above the second guiding member (452), and the orthographic projection of the water guiding part (4511) towards the horizontal plane is located within the orthographic projection of the second guiding member (452) towards the horizontal plane; The ice guiding part (4512), the ice guiding part (4512) is located on the opposite sides of the water guiding part (4511) along the circumferential direction of the first guiding member (451), and the included angle between the inner wall of the ice guiding part (4512) and the horizontal plane is smaller than the included angle between the inner wall of the water guiding part (4511) and the horizontal plane.

10. The refrigerator according to claim 8 or 9, characterized in that, The orthographic projection of the ice door structure (430) towards the horizontal plane is partially located within the orthographic projection of the water guiding part (4511) towards the horizontal plane.

11. The refrigerator according to claim 8 or 9, characterized in that, The dimension of the water guiding part (4511) along the circumferential direction of the first guiding member (451) is smaller than the dimension of the rated ice cubes of the ice making assembly.

12. The refrigerator according to claim 8 or 9, characterized in that, The dimension of the water guiding part (4511) along the circumferential direction of the first guiding member (451) is greater than 15 mm and smaller than 18 mm.

13. The refrigerator according to claim 9, characterized in that The water guiding part (4511) includes a first water guiding section (45111) and a second water guiding section (45112), the first water guiding section (45111) is located at the top of the second water guiding section (45112), and the included angle between the inner wall of the first water guiding section (45111) and the horizontal plane is greater than the included angle between the inner wall of the second water guiding section (45112) and the horizontal plane.

14. The refrigerator according to claim 13, characterized in that, The included angle between the inner wall of the first water guiding section (45111) and the horizontal plane is greater than 75 degrees and smaller than 80 degrees; The included angle between the inner wall of the second water guiding section (45112) and the horizontal plane is greater than 50 degrees and smaller than 75 degrees.

15. The refrigerator according to claim 6, characterized in that The extension surface of the inner wall of the bottom of the ice bucket (410) along the extending direction of the ice bucket (410) has a spacing from the top of the second guiding member (452) and is located on the side of the second guiding member (452) facing the first guiding member (451).

16. The refrigerator according to claim 6, wherein The second guiding member (452) covers the inner wall of the box body (420), and the second guiding member (452) and the inner wall of the box body (420) form the third inner cavity.

17. The refrigerator according to claim 13, characterized in that, It further includes a switch assembly (500), the switch assembly (500) is electrically connected to the ice door structure (430); The second guiding member (452) includes: The first guiding part (4521), the first guiding part (4521) is located below the first guiding member (451), and the orthographic projection of the ice door structure (430) towards the horizontal plane is partially located within the orthographic projection of the first guiding part (4521) towards the horizontal plane; The second guiding part (4522), the second guiding part (4522) is located at the bottom of the first guiding part (4521) and is communicated with the first guiding part (4521); The third guiding part (4523), the third guiding part (4523) is located at the bottom of the first guiding part (4521) and is communicated with the first guiding part (4521). There is a spacing between the third guiding part (4523) and the second guiding part (4522), and the switch assembly (500) is located between the third guiding part (4523) and the second guiding part (4522); The switch assembly (500) is configured to control the rotation of the ice door structure (430) relative to the box body (420) so that the ice outlet cavity is communicated or not communicated with the first inner cavity.

18. The refrigerator according to claim 17, wherein, The included angle between the extending direction of the first guiding part (4521) and the horizontal plane is smaller than the included angle between the inner wall of the second water guiding section (45112) and the horizontal plane.

19. The refrigerator according to claim 18, characterized in that, The included angle between the extending direction of the first guiding part (4521) and the horizontal plane is greater than 45° and smaller than 60°.

20. The refrigerator according to claim 17, characterized in that, Along the width direction of the box body (100), the size of the first guiding part (4521) is not smaller than the size of the ice door structure (430).

21. The refrigerator according to any one of claims 1 to 9, characterized in that, The included angle between the extending plane of the side wall of the box body (420) on the side facing the ice hopper (410) and the horizontal plane is greater than 40°; When the first inner cavity is not communicated with the inner cavity of the ice hopper (410), the included angle between the extending plane of the ice door structure (430) and the horizontal plane is greater than 40°.