Ice moving device and refrigeration equipment

By incorporating an ice-filtering zone and a main rotating component into the ice-moving device, the problem of poor user experience caused by excessive ice fragments was solved. This enabled efficient filtering of ice fragments and water, improved ice quality and ice-removing efficiency, and enhanced the user experience.

CN118856693BActive Publication Date: 2025-10-17HEFEI HUALING CO LTD +2
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Patent Information

Application Number
CN202310491436.4
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-04-28
Publication Date
2025-10-17
Estimated Expiration
2043-04-28

AI Technical Summary

Technical Problem

Existing ice removal technologies often result in poor user experience due to excessive ice fragments, as existing technologies struggle to effectively filter out these fragments, thus impacting the user experience.

Method used

Design an ice-moving device, including an ice-moving section, an ice-filtering zone, and a main rotating component. The ice-filtering zone is located at the bottom of the ice-moving section and is used to filter ice fragments and water. The main rotating component can rotate to drive the ice blocks to move. The ice fragments are filtered out in the ice-filtering zone, and the whole ice is thrown out through the ice-filtering zone.

Benefits of technology

It improves ice quality, enhances user experience, prevents water condensation from freezing the main rotating component, enables rapid and continuous ice extraction, reduces the impact of broken ice accumulation, and improves ice extraction efficiency and user satisfaction.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The application provides a ice moving device and a refrigeration equipment. The ice moving device is arranged in the refrigeration equipment. The ice moving device comprises an ice moving part. The ice moving part is formed with an ice moving inlet, an ice moving cavity, an ice filtering area and an ice moving outlet which are communicated with each other. The ice filtering area is located at the bottom of the ice moving part and extends along the direction from the ice moving inlet to the ice moving outlet. The ice filtering area is used for filtering the broken ice and / or water in the ice moving cavity. A main rotating member is rotatably arranged in the ice moving cavity. The main rotating member can rotate in a first direction. The main rotating member is used for driving the ice blocks entering the ice moving cavity from the ice moving inlet to move towards the ice filtering area and to be thrown from the ice filtering area to the ice moving outlet. Under the action of gravity, the broken ice is filtered out when passing through the ice filtering area. The ice filtering rate is high. The quality of the ice blocks obtained by the user is high. The user experience is improved.
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Description

TECHNICAL FIELD

[0001] The present application relates to the technical field of refrigeration devices, in particular to an ice moving device and a refrigeration equipment. BACKGROUND

[0002] The ice making assembly and the ice taking assembly of the existing ice taking technology are usually connected through an ice conveying channel. A moving component for driving the movement of ice blocks is usually arranged in the ice conveying channel. Friction and collision inevitably exist between the moving component and the ice blocks. Therefore, broken ice may be generated. The broken ice continues to move forward and is finally taken out by a user. If the user takes too much broken ice, the user experience will be poor. Therefore, how to filter out the broken ice to improve the user experience is a technical problem to be solved in the field. SUMMARY

[0003] In view of the above problems, the present application provides an ice moving device and a refrigeration equipment to solve the technical problem of poor user experience caused by too much broken ice in the prior art.

[0004] To solve the above technical problems, the technical solution adopted by the present application is as follows: an ice moving device for being arranged in a refrigeration equipment, the ice moving device comprising: an ice moving part, the ice moving part being formed with an ice moving ice inlet, an ice moving cavity, a filter ice area and an ice moving ice outlet which are connected to each other, the filter ice area being located at the bottom of the ice moving part, the filter ice area extending along a direction from the ice moving ice inlet to the ice moving ice outlet, the filter ice area being used for filtering broken ice and / or water in the ice moving cavity; and a main rotating piece, the main rotating piece being rotatably arranged in the ice moving cavity, the main rotating piece being rotatable in a first direction, the main rotating piece being used for driving ice blocks entering the ice moving cavity from the ice moving ice inlet to move towards the filter ice area and being thrown from the filter ice area to the ice moving ice outlet.

[0005] The filter ice area has filter ice holes and ribs, the filter ice holes and the ribs both extend along the direction from the ice moving ice inlet to the ice moving ice outlet, and adjacent filter ice holes are separated by the ribs.

[0006] The filter ice area also has a plurality of first connecting pieces and a plurality of second connecting pieces, the plurality of first connecting pieces are connected between adjacent ribs, and the plurality of second connecting pieces are connected between the ribs and the outer wall of the ice moving part.

[0007] The ice moving device also comprises a broken ice box, the broken ice box is arranged below the ice moving part, and the broken ice box is connected to the ice moving cavity through the filter ice holes.

[0008] The ice-removing part comprises a first side plate and a second side plate arranged oppositely, a top cover connected between the first side plate and the second side plate and located at the top of the ice-removing part, and a bottom shell surrounding the first side plate and the second plate on three sides, wherein the first side plate, the second side plate, the top cover and the bottom shell form the ice-removing cavity, and the ice filtering area is located in the bottom shell.

[0009] The surface of the bottom shell facing the ice-removing cavity is a curved surface, which is convex in a direction away from the ice-removing cavity.

[0010] The bottom shell comprises an ice-feeding section, an ice-filtering section and an ice-throwing section, the ice-filtering section is located at the bottom of the ice-removing part and connected between the ice-feeding section and the ice-throwing section, the ice-filtering area is located in the ice-filtering section, the ice-feeding section extends from the ice-filtering section towards the ice-feeding inlet of the ice-removing part, and the ice-throwing section extends from the ice-filtering section towards the ice-throwing outlet of the ice-removing part.

[0011] The ice-filtering section is in an arc shape, which is curved towards a side away from the ice-removing cavity.

[0012] The main rotating member comprises a main shaft and a flexible member arranged on the outer periphery of the main shaft, the flexible member is used to drive the ice blocks entering the ice-removing cavity through the ice-feeding inlet to move towards the ice-filtering area and be thrown out from the ice-filtering area towards the ice-throwing outlet.

[0013] The ice-removing device further comprises a conveying channel, the conveying channel is connected to the ice-removing cavity through the ice-feeding inlet and is used to connect to the ice-feeding end of the ice-making assembly to convey the ice blocks of the ice-making assembly to the ice-removing cavity.

[0014] The application also provides a refrigeration equipment comprising the ice-removing device as described above.

[0015] Compared with the prior art, the ice-removing device and the refrigeration equipment provided by the application have the following advantages: the ice-removing device is arranged in the refrigeration equipment, the ice-removing device comprises an ice-removing part and a main rotating member, the ice-removing part forms an ice-removing cavity, an ice-filtering area and an ice-throwing outlet which are connected to each other, the ice-filtering area is located at the bottom of the ice-removing part and extends along a direction from the ice-feeding inlet to the ice-throwing outlet, the ice-filtering area is used to filter the broken ice and / or water in the ice-removing cavity, the main rotating member is rotatably arranged in the ice-removing cavity and can rotate in a first direction to drive the ice blocks entering the ice-removing cavity through the ice-feeding inlet to move towards the ice-filtering area and be thrown out from the ice-filtering area towards the ice-throwing outlet, under the action of gravity, the broken ice is filtered out when passing through the ice-filtering area, the ice filtering rate is high, the quality of the ice blocks obtained by the user is high, and the user experience is improved, under the action of gravity, the water in the ice-removing cavity will drip or slide to the ice-filtering area and be filtered out, thereby preventing the main rotating member from being frozen due to water condensation. BRIEF DESCRIPTION OF THE DRAWINGS

[0016] In order to more clearly illustrate the technical solutions in the embodiments of the present application, the following briefly introduces the drawings required for describing the embodiments. Obviously, the drawings described below are only some embodiments of the present application. Those skilled in the art can also derive other drawings based on these drawings without inventive work, among which:

[0017] Figure 1 This is a partial structural diagram of an embodiment of the ice moving device provided by the present application;

[0018] Figure 2 This is a structural diagram of the ice moving device provided by the present application after the ice crushing box is hidden from one perspective;

[0019] Figure 3 This is a structural diagram of the ice moving device provided by the present application after the ice crushing box is hidden from another perspective;

[0020] Figure 4 This is a partial structural diagram of another embodiment of the ice moving device provided by the present application;

[0021] Figure 5 This is a partial structural diagram of another embodiment of the ice moving device provided by the present application;

[0022] Figure 6 This is a partial structural diagram of another embodiment of the ice moving device provided by the present application;

[0023] Figure 7 This is a partial structural diagram of another embodiment of the ice moving device provided by the present application;

[0024] Figure 8 This is a partial structural diagram of another embodiment of the ice moving device provided by the present application;

[0025] Figure 9 This is a partial structural diagram of an embodiment of the refrigeration equipment provided by the present application;

[0026] Figure 10 This is a partial structural diagram of an embodiment of the refrigeration equipment provided by the present application;

[0027] Figure 11 This is a partial structural diagram of an embodiment of the refrigeration equipment provided by the present application;

[0028] Figure 12 It is a partial structural diagram of an embodiment of the refrigeration equipment provided by the present application. DETAILED DESCRIPTION

[0029] The technical solutions in the embodiments of the present application will be clearly and completely described in the description of the present application in combination with the accompanying drawings in the embodiments of the present application. It can be understood that the specific embodiments described herein are only used to explain the present application, rather than limit the present application. In addition, it should be noted that, for the convenience of description, only parts related to the present application are shown in the drawings, rather than all structures. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without creative work fall within the scope of the present application.

[0030] In the description of the present application, it should be understood that the orientation or positional relationship indicated by the terms "center", "longitudinal", "lateral", "length", "width", "thickness", "upper", "lower", "front", "back", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", "clockwise", "counterclockwise" and the like are based on the orientation or positional relationship shown in the drawings, and are only for the convenience of describing the present application and simplifying the description, and are not intended to indicate or imply that the device or element referred to must have a particular orientation, be constructed and operated in a particular orientation, and therefore cannot be understood as a limitation on the present application. In addition, the terms "first", "second" are only for the purpose of description, and cannot be understood as indicating or implying relative importance or implicitly indicating the number of the technical features indicated. Therefore, the features limited by "first", "second" can explicitly or implicitly include one or more of the features. In the description of the present application, the meaning of "multiple" is two or more, unless otherwise explicitly specified and limited.

[0031] In the description of the present application, it should be noted that, unless otherwise explicitly specified and limited, the terms "mounting", "connecting", "connection" should be understood broadly, for example, it can be fixed connection, or detachable connection, or integrally connected; it can be mechanical connection, or electrical connection or can communicate with each other; it can be directly connected, or indirectly connected through an intermediate medium, or the internal communication of two elements or the interaction relationship between two elements. For those skilled in the art, the specific meaning of the above terms in the present application can be understood according to the specific circumstances.

[0032] In the present application, unless otherwise explicitly specified and limited, the "upper" or "lower" of the first feature to the second feature can include that the first and second features are in direct contact, or that the first and second features are not in direct contact but are in contact through another feature between them. Moreover, the "upper", "above" and "on" of the first feature to the second feature includes that the first feature is directly above and obliquely above the second feature, or only indicates that the horizontal height of the first feature is higher than that of the second feature. The "below", "under" and "under" of the first feature to the second feature includes that the first feature is directly below and obliquely below the second feature, or only indicates that the horizontal height of the first feature is less than that of the second feature.

[0033] Reference herein to "an embodiment" means that a particular feature, structure, or characteristic described in connection with the embodiment can be included in at least one embodiment of the application. The appearances of the phrase "in an embodiment" in various places in the specification are not necessarily all referring to the same embodiment, nor are they necessarily all directed to the same embodiment, or to a single alternative embodiment. One of ordinary skill in the art will readily recognize from the disclosure herein a wide number of variations, alternatives, and equivalents in the art.

[0034] An embodiment of the application provides an ice moving device 100. Please refer to Figure 1 , Figure 1 is a partial structural schematic view of an embodiment of the ice moving device provided by the application. The ice moving device 100 comprises an ice moving portion 110 and a main rotating member 130. The ice moving portion 110 is formed with an ice moving inlet 111, an ice moving cavity 112, an ice filtering area 114, and an ice moving outlet 113, which are in communication with each other. The ice filtering area 114 is located at the bottom of the ice moving portion 110 and between the ice moving inlet 111 and the ice moving outlet 113. The ice filtering area 114 extends along a direction from the ice moving inlet 111 to the ice moving outlet 113, and is used to filter the broken ice and / or water in the ice moving cavity 112. The ice blocks made by an ice making assembly 200 (see Figure 4 ) will pass through the ice moving inlet 111, the ice filtering area 114, and the ice moving outlet 113 in sequence after reaching the ice moving portion 110.

[0035] The ice moving cavity 112 is in communication with the environment outside the ice moving cavity 112 through the ice filtering area 114, which allows the broken ice to pass through but not the whole ice. The main rotating member 130 is rotatably arranged in the ice moving cavity 112, and the ice moving inlet 111, the ice filtering area 114, and the ice moving outlet 113 are located at the outer periphery of the main rotating member 130. The main rotating member 130 is rotatable in a first direction A. The main rotating member 130 is used to drive the ice blocks entering the ice moving cavity 112 from the ice moving inlet 111 to move towards the ice filtering area 114, and to be thrown from the ice filtering area 114 towards the ice moving outlet 113.

[0036] Since the filter ice area 114 is located at the bottom of the ice moving part 110 and allows the broken ice and water to pass through but not the whole ice, the main rotating part 130 can carry the ice blocks to rotate at a high speed in the first direction X, and the main rotating part 130 can generate a centrifugal force during the rotation to drive the moving path of the ice blocks to pass through the filter ice area 114. When the main rotating part 130 drives the ice blocks to move to the filter ice area 114, the broken ice can be filtered out under the action of gravity when passing through the filter ice area 114. The filter ice area 114 extends along the direction from the ice moving-in ice port 111 to the ice moving-out ice port 113, and has a wide coverage and good filter ice effect. The broken ice entering the ice moving cavity 112 from the ice moving-in ice port 111 and the broken ice generated during the ice moving process of the main rotating part 130 can be filtered out in the filter ice area 114, and the filter ice rate is high, the ice block quality is high, and the user experience is excellent. At the same time, the water in the ice moving cavity 112 can drip or slide to the filter ice area 114 and be filtered out under the action of gravity, preventing the main rotating part 130 from being frozen after the water condenses.

[0037] After the broken ice is filtered out in the filter ice area 114, the whole ice continues to be thrown out of the filter ice area 114 towards the ice moving-out ice port 113 under the driving action of the main rotating part 130, and finally moves to the ice taking assembly 300 (see Figure 9 ).

[0038] Since the broken ice is difficult to be thrown out of the ice moving cavity 112, as the broken ice accumulates more and more, it will hinder the rotation of the main rotating part 130. When the power is cut off or the temperature rises due to other reasons, the accumulated broken ice will melt into water, and the water will condense again when the temperature decreases, which may freeze the main rotating part 130, causing the main rotating part 130 to fail. Therefore, the filter ice area 114 is arranged at the bottom of the ice moving part 110 to filter out the broken ice in the ice moving cavity 112, which can alleviate the influence of the broken ice on the rotation of the main rotating part 130.

[0039] In some descriptions, the broken ice refers to the ice that needs to be filtered out by the ice moving device 100 in the embodiments of the present application, for example, the ice filtered by the filter ice area 114 is called broken ice, and the whole ice refers to the ice without broken ice, for example, the ice moving from the position of the filter ice area 114 to the ice taking assembly 300 is called whole ice. The ice block can represent whole ice, or a mixture of whole ice and broken ice.

[0040] The filter ice area 114 has filter ice holes 114a and ribs 1141. Please refer to Figure 2 , Figure 2is a perspective view of the ice removing device provided by the present application with the ice bin hidden. The ice filtering holes 114a and the ribs 1141 both extend along the direction from the ice removing inlet 111 to the ice removing outlet 113, and the adjacent ice filtering holes 114a are separated by the ribs 1141.

[0041] The ice filtering holes 114a extend along the direction from the ice removing inlet 111 to the ice removing outlet 113, i.e. the ice filtering holes 114a are long holes, which can reduce the movement resistance of the ice blocks and at the same time make the coverage of the ice filtering holes 114a wider, so as to improve the ice filtering efficiency and effect. The length of the ice filtering holes 114a in the direction perpendicular to the extending direction is greater than the size of the general ice pieces and less than the size of the whole ice, so that the ice pieces can pass through the ice filtering holes 114a while the whole ice cannot.

[0042] The extending direction of the ribs 1141 is parallel to the extending direction of the ice filtering holes 114a, i.e. the ribs 1141 extend along the direction from the ice removing inlet 111 to the ice removing outlet 113. The ribs 1141 are arranged between the adjacent ice filtering holes 114a, so as to avoid the length of the ice filtering holes 114a in the direction perpendicular to the extending direction being greater than the size of the whole ice, thereby expanding the coverage of the ice filtering holes 114a under the premise of preventing the whole ice from passing through the ice filtering holes 114a, and improving the ice filtering efficiency and effect.

[0043] Since the shell body of the ice removing part 110 is thin, the ribs 1141 are arranged between the adjacent ice filtering holes 114a. In order to prevent insufficient strength, the thickness of the ribs 1141 should be increased to improve the structural strength of the ribs 1141, so as to avoid the ribs 1141 being deformed or broken after the ice blocks rub against or collide with the ribs 1141.

[0044] In some embodiments, the ice filtering area 114 can have 3-10 ice filtering holes 114a, and correspondingly, the ice filtering area 114 has 2-9 ribs 1141, for example, the ice filtering area 114 has 3, 5, 8 or 10 ice filtering holes 114a, and correspondingly, the ice filtering area 114 has 2, 4, 7 or 9 ribs 1141.

[0045] The ice filtering area 114 further comprises a plurality of first connecting members 1142 and a plurality of second connecting members 1143. The plurality of first connecting members 1142 are connected between adjacent rib strips 1141, and the plurality of second connecting members 1143 are connected between the rib strips 1141 and the outer wall of the ice removal portion 110. The plurality of first connecting members 1142 between adjacent rib strips 1141 are arranged at intervals along the direction from the ice removal inlet 111 to the ice removal outlet 113, and the plurality of second connecting members 1143 between the rib strips 1141 and the outer wall of the ice removal portion 110 are also arranged at intervals along the direction from the ice removal inlet 111 to the ice removal outlet 113. By arranging the first connecting members 1142 and the second connecting members 1143, the structural strength of the rib strips 1141 is further enhanced.

[0046] By increasing the thickness of the rib strips 1141 and arranging the first connecting members 1142 and the second connecting members 1143, the structural strength of the rib strips 1141 is enhanced, and thus the thickness of the ice removal portion 110 shell body does not need to be increased, thereby reducing the structural mass and production cost.

[0047] The ice removal device 100 further comprises an ice crushing box 118. The ice crushing box 118 is arranged below the ice removal portion 110, and at least part of the ice removal portion 110 is accommodated in the ice crushing box 118. The ice crushing box 118 can be fixed to the ice removal portion 110. The ice crushing box 118 is in communication with the ice removal cavity 112 through the ice filtering hole 114a. The ice crushing box 118 is used to receive the crushed ice falling from the ice filtering hole 114a.

[0048] The ice crushing box 118 is arranged outside the ice removal portion 110. In some embodiments, the ice crushing box 118 and the ice removal portion 110 are placed together in the first refrigeration compartment 12 (see Figure 9 ), so that the ice crushing box 118 can be taken out after the first refrigeration compartment 12 is opened, and the crushed ice collected in the ice crushing box 118 can be cleaned. In some embodiments, the ice crushing box 118 can be arranged below the ice removal portion 110 in a detachable manner. When the amount of crushed ice in the ice crushing box 118 reaches a certain amount, the ice crushing box 118 can be taken out. After the crushed ice is cleaned, the ice crushing box 118 is arranged on the ice removal portion 110. The box body of the ice crushing box 118 can be colorless and transparent, so that the collection degree of the crushed ice in the ice crushing box 118 can be observed. When the ice crushing box 118 is full of crushed ice, the crushed ice in the ice removal cavity 112 cannot fall out of the ice filtering hole 114a and accumulate in the ice removal cavity 112, which causes the ice filtering to fail.

[0049] The ice crushing box 118 can be detachably arranged on the ice moving part 110 in any manner, for example, the ice moving part 110 is provided with a sliding groove (not shown in the figure), the ice crushing box 118 is provided with a sliding rail (not shown in the figure) matched with the sliding groove of the ice moving part 110, the sliding rail of the ice crushing box 118 can be inserted into the sliding groove along the length direction of the sliding groove of the ice moving part 110, and can slide in the sliding groove of the ice moving part 110 in the direction opposite to the insertion direction, so as to be disconnected with the ice moving part 110, and the crushed ice in the ice crushing box 118 can be processed in time. Alternatively, the ice moving part 110 is provided with a sliding rail, and the ice crushing box 118 is provided with a sliding groove matched with the sliding rail of the ice moving part 110, and the ice crushing box 118 can slide along the sliding rail of the ice moving part 110.

[0050] Please refer to Figure 3 , Figure 3 is another perspective view of the ice moving device provided by the present application after hiding the ice crushing box. The ice moving part 110 includes a first side plate 181 and a second side plate 182 arranged oppositely, a top cover 183 connected between the first side plate 181 and the second side plate 182 and located at the top of the ice moving part 110, and a bottom shell 184 surrounding the first side plate 181 and the second side plate 182 on three sides. The first side plate 181, the second side plate 182, the top cover 183 and the bottom shell 184 form an ice moving cavity 112, and the ice filtering area 114 is located in the bottom shell 184.

[0051] The top cover 183 is located between the ice moving inlet 111 and the ice moving outlet 113, and is located on the side of the first side plate 181 and the second side plate 182 away from the ice filtering area 114. The bottom shell 184 surrounds the first side plate 181 and the second side plate 182 from the bottom of the ice moving part 110, the side of the first side plate 181 and the second side plate 182 facing the ice moving inlet 111, and the side of the first side plate 181 and the second side plate 182 facing the ice moving outlet 113. The surface of the bottom shell 184 facing the ice moving cavity 112 is a curved surface, and the curved surface protrudes in the direction away from the ice moving cavity 112. The curved surface is a guide surface for ice blocks, and under the guidance of the curved surface, the ice blocks can move more smoothly in the ice moving cavity 112. The curved surface can be smoothly transitioned.

[0052] The ice inlet 111 and the ice outlet 113 are both connected to the ice removal chamber 112. A bottom shell 184 is connected between the ice inlet 111 and the ice outlet 113. Driven by the main rotating member 130, ice cubes entering the ice removal chamber 112 from the ice inlet 111 can move along the bottom shell 184. Because the ice filtration area 114 is located in the bottom shell 184, between the ice inlet 111 and the ice outlet 113, when the main rotating member 130 drives the ice cubes to the ice filtration area 114, crushed ice can fall out of the ice filtration holes 114a in the ice filtration area 114, while whole ice can continue to move along the bottom shell 184 and finally be ejected from the ice removal outlet 113. The bottom shell 184 can change the direction of ice movement. The whole ice is large in size and heavy in weight. Under the driving action of the main rotating member 130 , it is easy to be thrown out from the ice removal outlet 113 . Therefore, the whole ice will not accumulate in the ice removal chamber 112 .

[0053] The bottom shell 184 includes an ice entry section 1841, an ice filtering section 1842, and an ice throwing section 1843. The ice filtering section 1842 is located at the bottom of the ice moving portion 110 and is connected between the ice entry section 1841 and the ice throwing section 1843. The ice filtering area 114 is located in the ice filtering section 1842. The ice entry section 1841 extends from the ice filtering section 1842 toward the ice moving inlet 111. The ice entry section 1841 is used to guide ice cubes to the ice filtering section 114. The ice throwing section 1843 extends from the ice filtering section 1842 toward the ice moving outlet 113 and is used to guide whole ice from the ice filtering section 114 toward the ice moving outlet 113.

[0054] The ice filtering section 1842 is arc-shaped and bends toward the side away from the ice transfer chamber 112. The angle between the ice filtering section 1842 and the ice entry section 1841 is rounded, and the angle between the ice filtering section 1842 and the ice throwing section 1843 is also rounded. This guides the ice, facilitating the removal of crushed ice in the ice filtering area 114, while ensuring that whole ice can pass smoothly through the ice entry section 1841 and the ice filtering section 1842 and be thrown toward the ice transfer outlet 113.

[0055] The main rotating member 130 can carry the ice cubes to rotate at a high speed in the first direction X. During the rotation, the main rotating member 130 generates a centrifugal force, so that the ice cubes can be close to the bottom shell 184 during the movement in the ice moving cavity 112. After the ice cubes enter the ice moving cavity 112 from the ice moving inlet 111, the ice cubes move along the ice entering section 1841 to the ice filtering section 1842. When the ice cubes reach the ice filtering section 1842, the crushed ice falls into the ice filtering box 115 from the ice filtering hole 114a, and the whole ice continues to move along the ice throwing section 1843 under the action of the main rotating member 130, and finally is thrown out from the ice moving outlet 113. The ice entering section 1841 extends from the ice moving inlet 111 to the ice filtering section 1842. The whole ice moves downward in the ice entering section 1841. Therefore, the whole ice can obtain a certain kinetic energy under the action of inertia when moving along the ice entering section 1841 to the ice filtering section 114, so that the whole ice is easily thrown out from the ice moving outlet 113.

[0056] The ice moving device 100 further comprises a conveying channel 150. Please refer to Figure 4 , Figure 4 is a partial structural schematic view of another embodiment of the ice moving device provided in the present application. The conveying channel 150 is connected to the ice moving cavity 112 through the ice moving inlet 111, and is used to connect to the ice outlet end of the ice making assembly 200, so as to convey the ice cubes made by the ice making assembly 200 to the ice moving cavity 112. The ice entering end of the conveying channel 150 is located higher than the ice moving inlet 111, and the ice cubes enter the ice moving cavity 112 along the conveying channel 150 under the action of gravity; or the ice entering end of the conveying channel 150 can be located at the same level or lower than the ice moving inlet 111, and the ice cubes are driven to move along the conveying channel 150 to the ice moving cavity 112 by some power mechanism. Therefore, the ice moving inlet 111 can be located in the upper half, the lower half or other positions of the ice moving cavity 112, and the ice cubes can enter the ice moving cavity 112 and be clamped into the main rotating member 130 under the action of gravity or the assistance of other power mechanisms.

[0057] The ice moving device 100 further comprises an ice moving channel 120. The ice moving channel 120 is connected to the ice moving cavity 112 through the ice moving outlet 113. The ice moving channel 120 is further used to connect to the ice taking assembly 300. The ice moving channel 120 comprises an ice moving section 121 and a guide section 122. The ice moving section 121 is connected to the ice moving cavity 112 through the ice moving outlet 113. The guide section 122 is connected to the ice moving section 121 and is arranged to be curved towards one side, and is used to guide to the ice taking assembly 300. The ice moving section 121 is used to connect to the ice moving cavity 112. When the whole ice moves in the ice moving section 121, the whole ice rises by a sufficient distance along the ice moving section 121. The guide section 122 is used to change the moving direction of the whole ice, so that the whole ice moves to the ice taking assembly 300. The ice moving section 121 and the guide section 122 are smoothly connected.

[0058] Specifically, the ice moving section 121 can be arranged along a vertical direction, so as to shorten the distance of the whole ice rising along the ice moving section 121. Of course, the ice moving section 121 can also be arranged along a direction with a smaller angle with the vertical direction; or, the ice moving channel 120 can be in an arc shape as a whole, and the ice moving channel 120 is used for extending from the ice moving ice outlet 113 to the ice taking assembly 300, so as to ensure that the whole ice can stably rise and communicate with the ice taking assembly 300.

[0059] Specifically, the angle between the extension direction of the joint of the guiding section 122 and the ice moving section 121 is greater than 90° and less than 180°, so as to avoid the whole ice falling back into the ice moving section 121 when the whole ice enters the guiding section 122 from the ice moving section 121, and ensure that the whole ice can smoothly move to the ice taking assembly 300 through the ice moving channel 120.

[0060] The main rotating member 130 includes a main shaft 131 and a flexible member 132 arranged on the outer periphery of the main shaft 131. The flexible member 132 is convenient for the ice block to be clamped and carried to rotate. The flexible member 132 is used for driving the ice block entering the ice moving cavity 112 from the ice moving ice inlet 111 to move towards the ice filtering area 114, so as to filter the broken ice. The whole ice is thrown from the ice filtering area 114 to the ice moving ice outlet 113, and has a certain initial speed, so as to be thrown from the ice moving ice outlet 113 to the ice moving channel 120, and finally move to the ice taking assembly 300 along the ice moving channel 120. The main shaft 131 is in a hard material, and the flexible member 132 is fixed on the main shaft 131 and rotates synchronously with the main shaft 131. Specifically, the main rotating member 130 is a roller brush, and the flexible member 132 is a flexible brush. Or, the main rotating member 130 is an impeller, and the flexible member 132 is a flexible fan blade. Since the broken ice has been filtered at the bottom of the ice moving cavity 112, the problem that the main rotating member 130 and other moving parts are frozen due to the broken ice being condensed again in a low-temperature environment after being melted will not occur.

[0061] The ice moving device 100 further includes a driving member (not shown in the figure), which is arranged outside the ice moving cavity 112. The output end of the driving member is coaxially fixed with the main shaft 131 through the side wall of the ice moving part 110, and the rotation of the main rotating member 130 can be controlled through the driving member. Specifically, the driving member can control the start and stop of the rotation of the main rotating member 130, the rotation direction of the main rotating member 130, and the rotation speed of the main rotating member 130.

[0062] In some embodiments, the ice moving device 100 further includes a first sensing member 171. The first sensing member 171 is arranged at the ice moving ice inlet 111 or the conveying channel 150. The first sensing member 171 is used for sensing the ice block passing through. If the first sensing member 171 senses that the ice block passes through the ice moving ice inlet 111 or the conveying channel 150, it indicates that the ice block enters the ice moving cavity 112 at this time.

[0063] Since the ice cubes entering the ice-removing cavity 112 from the ice-making assembly 200 are in the form of blocks, when the main rotating member 130 rotates at a high speed, the ice cubes are likely to be unable to be brought into the main rotating member 130, and thus the phenomenon of ice blockage occurs at the ice-removing ice-feeding port 111. The present application solves this problem by using several schemes:

[0064] In some embodiments, please refer to Figure 4 , the outer periphery of the flexible member 132 is formed with a plurality of gaps 1322 arranged at intervals. The size of the gap 1322 is 1-3 times the size of the ice cube, for example, 1 times, 1.5 times, 2 times, 2.5 times or 3 times. By forming gaps 1322 arranged at intervals on the outer periphery of the flexible member 132, as the main rotating member 130 rotates, the ice cubes entering the ice-removing cavity 112 through the ice-removing ice-feeding port 111 are easily brought into the gap 1322, improving the ice-removing efficiency of the ice-removing device 100 and avoiding ice blockage at the ice-removing ice-feeding port 111.

[0065] In some embodiments, please refer to Figure 5 , Figure 5 is a partial structure schematic diagram of another embodiment of the ice-removing device provided by the present application. The flexible member 132 includes a first flexible member 1323 and a second flexible member 1324 arranged at intervals along the outer periphery of the main shaft 131. The hardness of the second flexible member 1324 is lower than that of the first flexible member 1323. Since the hardness of the second flexible member 1324 is lower than that of the first flexible member 1323, as the main rotating member 130 rotates, the ice cubes entering the ice-removing cavity 112 through the ice-removing ice-feeding port 111 are easily pressed to deform the second flexible member 1324, thereby being brought into the main rotating member 130. The first flexible member 1323 with higher hardness carries the ice cubes to rotate, improving the ice-removing efficiency of the ice-removing device 100 and avoiding ice blockage at the ice-removing ice-feeding port 111.

[0066] The above scheme optimizes the structure of the flexible member 132, making it easy for the ice cubes to be stuck in the main rotating member 130. In other schemes, an auxiliary structure cooperating with the main rotating member 130 can also be additionally provided to facilitate the ice cubes to be stuck in the main rotating member 130 and avoid ice blockage at the ice-removing ice-feeding port 111:

[0067] In some embodiments, please refer to Figure 6 , Figure 6is a partial structural schematic view of still another embodiment of the ice moving device provided in the present application. The ice moving part 110 further comprises a pressing plate 116. The pressing plate 116 is arranged in the ice moving part 110, and the pressing plate 116 is located between the ice moving in ice port 111 and the ice moving out ice port 113. The shortest distance from the end of the main rotating member 130 to the central axis of the main rotating member 130 is less than the radius of the main rotating member 130. During the rotation of the main rotating member 130, the flexible member 132 deforms when contacting the pressing plate 116, and a gap 1321 is formed at the ice moving in ice port 111. By pressing part of the flexible member 132 with the pressing plate 116, as the main rotating member 130 rotates, the ice block is easily taken into the main rotating member 130 at the gap 1321 when the ice block enters the ice moving cavity 112 through the ice moving in ice port 111, thereby improving the ice moving efficiency of the ice moving device 100 and avoiding the ice block from being blocked at the ice moving in ice port 111.

[0068] In some embodiments, referring to Figure 7 , Figure 7 is a partial structural schematic view of still another embodiment of the ice moving device provided in the present application. The ice moving part 110 further comprises a guide cavity 117 and a secondary rotating member 140. The guide cavity 117 is in communication with the ice moving cavity 112. The ice moving in ice port 111 is located between the guide cavity 117 and the ice moving cavity 112. The secondary rotating member 140 is arranged to rotate in the guide cavity 117. The secondary rotating member 140 rotates in the second direction Y, which is opposite to the first direction X. The shortest distance between the secondary rotating member 140 and the main rotating member 130 is less than the size of the ice block. Since the rotation direction of the secondary rotating member 140 is opposite to that of the main rotating member 130, and the ice moving in ice port 111 is located between the main rotating member 130 and the secondary rotating member 140, under the opposite movement of the two rotating members, the ice block is easily taken into the main rotating member 130, thereby improving the ice moving efficiency of the ice moving device 100 and avoiding the ice block from being blocked at the ice moving in ice port 111. The radius of the secondary rotating member 140 is less than that of the main rotating member 130, which reduces the volume occupied by the ice moving device 100 and makes it easier for the ice block to be stuck in the main rotating member 130. The outer wall of the secondary rotating member 140 is fitted to the guide cavity 117, and the hardness of the secondary rotating member 140 can be higher than that of the flexible member 132, so as to drive the ice block to be stuck in the main rotating member 130. The secondary rotating member 140 can also adopt a rotating structure such as a roller brush or an impeller.

[0069] In some embodiments, referring to Figure 8 , Figure 8is a partial structural schematic view of another embodiment of the ice moving device provided by the present application. The ice moving device 100 further comprises a transmission rotating member 151. The transmission rotating member 151 is rotationally arranged in the conveying channel 150. The transmission rotating member 151 rotates at a speed lower than the main rotating member 130. Since the transmission rotating member 151 rotates at a speed lower than the main rotating member 130, the ice blocks enter the ice moving cavity 112 after obtaining a certain speed in the conveying channel 150 passing the transmission rotating member 151, and the ice blocks obtaining a certain speed are more likely to be clamped into the high-speed rotating main rotating member 130, thereby avoiding the ice blocks from being blocked at the ice moving-in ice port 111.

[0070] It should be noted that, in order to improve the ice moving efficiency of the ice moving device 100 and avoid the ice blocks from being blocked at the ice moving-in ice port 111, only the above-mentioned scheme of optimizing the structure of the flexible member 132, or only the above-mentioned scheme of additionally arranging the auxiliary structure cooperating with the main rotating member 130, or a combination of at least two schemes can be used to avoid the ice blocks from being blocked at the ice moving-in ice port 111.

[0071] Another embodiment of the present application provides a refrigeration equipment 10. Please refer to Figures 9 to 10 , Figure 9 is a partial structural schematic view of an embodiment of the refrigeration equipment provided by the present application, Figure 10 is a partial structural schematic view of an embodiment of the refrigeration equipment provided by the present application. The refrigeration equipment 10 comprises a cabinet 11, an ice making assembly 200, an ice taking assembly 300, an ice moving device 100 and a second sensing member 172. The cabinet 11 is formed with a first refrigeration compartment 12 and a second refrigeration compartment 13. The first refrigeration compartment 12 comprises a first door body 14. The second refrigeration compartment 13 is located above the first refrigeration compartment 12. The second refrigeration compartment 13 comprises a second door body 15 rotationally arranged on the cabinet 11. The ice making assembly 200 is arranged in the first refrigeration compartment 12. The ice taking assembly 300 is arranged on the second door body 15. The ice moving device 100 comprises an ice moving channel 120, an ice moving part 110 and an ice moving assembly 101. The ice moving part 110 is arranged in the first refrigeration compartment 12. The ice moving channel 120 extends from the first refrigeration compartment 12 to the second refrigeration compartment 13. The ice moving part 110 is in communication with the ice making assembly 200, and the ice moving assembly 101 is arranged in the ice moving part 110 to drive the whole ice to move from the ice moving part 110 to the ice taking assembly 300 through the ice moving channel 120. The second sensing member 172 is arranged at an ice outlet end of the ice moving channel 120. The second sensing member 172 is used to sense the ice blocks passing. When the second sensing member 172 senses the ice blocks passing, it indicates that the whole ice successfully moves through the ice moving channel 120 to the ice taking assembly 300 at this time. Among them, the first refrigeration compartment 12 is a freezing compartment, and the second refrigeration compartment 13 is a refrigerating compartment.

[0072] The whole ice in the first refrigeration compartment 12 can be transported to the ice taking assembly 300 in the upper second refrigeration compartment 13 through the ice moving device 100, so as to facilitate the user to take ice and improve the user experience. The ice making assembly 200 is arranged in the first refrigeration compartment 12, and can share the cold source with the first refrigeration compartment 12. Therefore, it is not necessary to separately arrange an evaporator required for ice making due to the arrangement of the ice making assembly 200 in the second refrigeration compartment 13, so that the cost and the space occupied by the second refrigeration compartment 13 are saved, and the volume rate of the second refrigeration compartment 13 is improved. The refrigeration equipment 10 provided by the application not only improves the ice taking efficiency, but also solves the problems of inconvenient ice taking by the user and space occupation of the second refrigeration compartment 13.

[0073] The ice moving device 100 is arranged at the bottom of the ice moving part 110, and the ice moving device 100 is used for filtering out the crushed ice. Therefore, the problem that the ice moving assembly 101 is frozen due to the condensation of the melted crushed ice in the low-temperature environment does not occur. The crushed ice cannot enter the ice moving channel 120 to be melted into water, so that the cleanliness of the ice moving channel 120 is ensured. In addition, the crushed ice cannot reach the ice taking assembly 300, so that the user experience is improved.

[0074] The ice moving device 100 can adopt the ice moving device 100 in any of the above embodiments, and the ice moving assembly 101 includes the main rotating part 130 in any of the above embodiments or other driving parts that can realize ice throwing.

[0075] The ice moving device 100 can adopt the ice moving device 100 in any of the above embodiments, and the ice moving assembly 101 includes the main rotating part 130 in any of the above embodiments or other driving parts that can realize ice throwing.

[0076] Please refer to Figures 11 to 12 , Figure 11 is a partial structure schematic view of an embodiment of the refrigeration equipment provided by the application, Figure 12 is a partial structure schematic view of an embodiment of the refrigeration equipment provided by the application. The ice moving channel 120 includes a first part 125, a second part 126 and a third part 127 which are sequentially communicated. The second part 126 is rotationally connected to the first part 125 and / or the third part 127. The first part 125 is located in the first refrigeration compartment 12 or the first door body 14. The first part 125 is communicated with the ice moving ice outlet 113 of the ice moving part 110. The second part 126 is located between the first door body 14 and the second door body 15. The third part 127 is arranged in the second door body 15. The third part 127 is communicated with the ice taking assembly 300. The rotation axis of the second door body 15 is located in the second part 126. The ice moving assembly 101 can drive the whole ice to move out of the ice moving part 110 to the ice moving channel 120. The whole ice sequentially passes through the first part 125, the second part 126 and the third part 127 and then enters the ice taking assembly 300.

[0077] Since the second part 126 is located between the first door body 14 and the second door body 15, and the rotation axis of the second door body 15 is located in the second part 126, during the rotation of the second door body 15 to open and close, the third part 127 can also always be in butt joint with the second part 126, and the pipe sealing of the third part 127 and the second part 126 is good, avoiding the problem of condensation due to poor butt joint sealing.

[0078] It should be noted that the rotation axis of the second door body 15 can coincide with the central axis of the second part 126, so as to ensure that the third part 127 always maintains good butt joint with the second part 126 during the rotation of the second door body 15. In actual use, due to the cross-sectional shape of the pipe and the manufacturing and installation deviation, the rotation axis of the second door body 15 can be offset from the central axis of the second part 126, but as long as the rotation axis of the second door body 15 is located in the second part 126, the rotation of the second door body 15 does not affect the butt joint of the second part 126 and the third part 127 and the ice block passing effect.

[0079] In some embodiments, please continue to refer to Figure 12 The first refrigeration compartment 12 includes a top wall 19, a bottom wall, a back wall 18, and a first side wall 16 and a second side wall 17 connecting the top wall 19 and the bottom wall. The first side wall 16 is arranged close to the second part 126. The ice removal part 110 is located on the top wall 19 or the first side wall 16 of the first refrigeration compartment 12. Specifically, the top wall 19 and the first side wall 16 of the first refrigeration compartment 12 enclose a containing space, and the ice removal part 110 is located in the containing space and can be fixedly arranged on the top wall 19 or the first side wall 16. Similarly, the ice making assembly 200 can also be arranged in the containing space, and the ice making assembly 200 is fixed to the top wall 19 or the first side wall 16. Arranging the ice removal part 110 and the ice making assembly 200 close to the top wall 19 can be closer to the second refrigeration compartment 13, shorten the height required for the whole ice to rise along the ice removal channel 120, reduce the power required by the ice removal assembly 101, and improve the success rate of ice removal.

[0080] Since the first part 125 needs to extend to communicate with the second part 126, and the second part 126 is located between the first door body 14 and the second door body 15, when the ice removal part 110 is arranged in the first refrigeration compartment 12, the first door body 14 has a matching accommodation slot matched with the first part 125, so that the first part 125 can extend from the first refrigeration compartment 12 to the second part 126. At this time, the ice removal part 110 is fixed to the first refrigeration compartment 12, the first part 125 communicates the ice removal part 110 and the second part 126, the position of the first part 125 remains fixed, the first part 125 is relatively independent of the first door body 14, the first door body 14 can be rotatably arranged in the cabinet 11, or the first refrigeration compartment 12 further includes a first drawer, and the first door body 14 is arranged in the first drawer. The first drawer can be push-pull arranged in the cabinet 11.

[0081] Of course, please continue to refer to Figure 11 When the first door body 14 is rotated to be arranged in the box body 11, the rotation axis of the first door body 14 is located in the second part 126. Since the second part 126 is located between the first door body 14 and the second door body 15, and the rotation axis of the first door body 14 is located in the second part 126, the first part 125 and the second part 126 can always be kept in abutment during the rotation of the first door body 14 to open and close, and the pipeline sealing of the first part 125 and the second part 126 is good, avoiding the problem of condensation due to poor abutment sealing. It should be noted that at this time, the ice removal inlet 111 of the ice removal part 110 is separated from the ice making assembly 200 with the opening of the first door body 14, and after the first door body 14 is closed, the ice removal inlet 111 and the ice outlet of the ice making assembly 200 can be buckled and abutted, without affecting the ice making assembly 200 to smoothly deliver the ice blocks to the ice removal part 110. Among them, the ice outlet of the ice making assembly 200 includes the ice outlet of the ice storage box of the ice making assembly 200 or the ice outlet of the conveying channel 150.

[0082] In order to realize the relative rotation of the second door body 15 and the box body 11 and the abutment of the parts of the ice removal channel 120, in some embodiments, the second refrigeration compartment 13 includes coaxially arranged first and second rotating shaft members (not shown in the figure). The second door body 15 is rotatably connected to the box body 11 through the first rotating shaft member away from the first door body 14. The second rotating shaft member is arranged on the side of the second door body 15 close to the first door body 14. The second rotating shaft member is the second part 126, the first part 125 and the second part 126 are fixedly connected or integrally formed, the second part 126 and the third part 127 are rotatably connected, so that the first part 125 and the second part 126 always keep abutment, and the second door body 15 rotates to drive the third part 127 and the second part 126 to rotate synchronously. Alternatively, the first part 125 and the second part 126 are rotatably connected, and the second part 126 and the third part 127 are fixedly connected or integrally formed, so that the first part 125 and the second part 126 always keep abutment, and the second door body 15 rotates to drive the third part 127 to rotate.

[0083] In some embodiments, the second refrigeration compartment 13 comprises a first rotating shaft and a second rotating shaft arranged coaxially, the second door 15 is rotatably connected to the cabinet 11 through the first rotating shaft away from the first door 14, and the second rotating shaft is arranged on the second door 15 close to the first door 14. The second rotating shaft is a second part 126, and the two ends of the second part 126 are respectively sleeved outside or inserted into the third part 127 and the first part 125. Since the two ends of the second part 126 are rotatable relative to the first part 125 and the third part 127, the stable butt joint of the second part 126 with the first part 125 and the third part 127 can be ensured, and the two ends of the second part 126 are respectively sleeved outside or inserted into the third part 127 and the first part 125, which ensures that the ice cubes can smoothly pass through the first part 125, the second part 126 and the third part 127 to reach the ice taking assembly 300. Specifically, the second part 126 can be relatively fixed with the cabinet 11, or the second part 126 can be rotatably connected with the cabinet 11, which is not limited here.

[0084] Further, the third part 127 comprises an ice moving section 121 and a guide section 122. The ice moving section 121 is connected with the second part 126. The guide section 122 is connected with the ice moving section 121 and is curved towards the ice taking assembly 300. The ice moving section 121 and the guide section 122 are smoothly connected. Specifically, the ice moving section 121 can be arranged in a vertical direction, which shortens the distance of the whole ice rising along the ice moving section 121. Of course, the ice moving section 121 can also be arranged in a direction with a smaller angle with the vertical direction; or the third part 127 as a whole can be arc-shaped, which ensures that the ice cubes can stably rise and be connected with the ice taking assembly 300.

[0085] Specifically, the angle between the guide section 122 and the ice moving section 121 is greater than 90° and less than 180°, which avoids the ice cubes falling back into the ice moving section 121 when the ice cubes enter the guide section 122 from the ice moving section 121 with too large turning angle, and ensures that the ice cubes can smoothly pass through the ice moving channel 120 and move to the ice taking assembly 300.

[0086] The application provides an ice moving device and a refrigeration equipment. The ice moving device is arranged in the refrigeration equipment. The ice moving device comprises an ice moving part. The ice moving part is formed with an ice moving inlet, an ice moving cavity, an ice filtering area and an ice moving outlet which are communicated with each other. The ice filtering area is located at the bottom of the ice moving part and extends along the direction from the ice moving inlet to the ice moving outlet. The ice filtering area is used for filtering the broken ice and / or water in the ice moving cavity. A main rotating member is rotatably arranged in the ice moving cavity. The main rotating member can rotate in a first direction. The main rotating member is used for driving the ice blocks entering the ice moving cavity from the ice moving inlet to move towards the ice filtering area, and the ice blocks are thrown from the ice filtering area to the ice moving outlet. Under the action of gravity, the broken ice is filtered out when passing through the ice filtering area. The ice filtering rate is high, the quality of the ice blocks obtained by the user is high, and the user experience is improved.

[0087] The above description is only the embodiment of the application, and does not limit the patent scope of the application. Any equivalent structure or equivalent process transformation using the content of the specification and drawings, or direct or indirect application in other related technical fields, is also included in the patent protection scope of the application.

Claims

1. An ice moving device for refrigeration equipment, characterized in that: The ice moving device comprises: An ice transfer unit, wherein the ice transfer unit is formed with an ice transfer inlet, an ice transfer cavity, an ice filtering area, and an ice transfer outlet that are interconnected. The ice filtering area is located at the bottom of the ice transfer unit and extends from the ice transfer inlet toward the ice transfer outlet. The ice filtering area is used to filter crushed ice and / or water in the ice transfer cavity. a main rotating member rotatably disposed in the ice moving chamber, the main rotating member being rotatable in a first direction to drive ice cubes entering the ice moving chamber from the ice moving inlet toward the ice filtering area and being ejected from the ice filtering area toward the ice moving outlet; The ice-moving portion includes a first side panel and a second side panel that are relatively arranged, a top cover connected between the first side panel and the second side panel and located at the top of the ice-moving portion, and a bottom shell that surrounds the first side panel and the second side panel on three sides. The first side panel, the second side panel, the top cover and the bottom shell form the ice-moving chamber, and the ice-filtering area is located on the bottom shell.

2. The ice removal device according to claim 1, characterized in that: The ice filtering area has ice filtering holes and ribs. Both the ice filtering holes and the ribs extend in a direction from the ice moving inlet toward the ice moving outlet. Adjacent ice filtering holes are separated by the ribs.

3. The ice removal device according to claim 2, characterized in that: The ice filtering area further has a plurality of first connecting members and a plurality of second connecting members, wherein the plurality of first connecting members are connected between adjacent ribs, and the plurality of second connecting members are connected between the ribs and the outer wall of the ice moving portion.

4. The ice removal device according to claim 2, characterized in that: The ice moving device further includes an ice crushing box, which is arranged below the ice moving portion and is connected to the ice moving cavity through the ice filtering hole.

5. The ice removal device according to claim 1, characterized in that: A surface of the bottom shell facing the ice-moving cavity is a curved surface, and the curved surface bulges in a direction away from the ice-moving cavity.

6. The ice removal device according to claim 1, characterized in that: The bottom shell includes an ice entry section, an ice filtering section and an ice throwing section. The ice filtering section is located at the bottom of the ice moving part and is connected between the ice entry section and the ice throwing section. The ice filtering area is located in the ice filtering section. The ice entry section extends from the ice filtering section toward the ice moving inlet, and the ice throwing section extends from the ice filtering section toward the ice moving outlet.

7. The ice removal device according to claim 6, characterized in that: The ice filtering section is in an arc shape and is bent toward a side away from the ice moving cavity.

8. The ice removal device according to claim 1, characterized in that: The main rotating member includes a main shaft and a flexible member arranged on the outer periphery of the main shaft, and the flexible member is used to drive the ice cubes entering the ice moving cavity from the ice moving inlet to move toward the ice filtering area, and to be thrown from the ice filtering area toward the ice moving outlet.

9. The ice removal device according to claim 1, characterized in that: The ice moving device further includes a conveying channel, which is connected to the ice moving cavity through the ice moving inlet and is used to be connected to the ice outlet end of the ice making assembly to convey the ice cubes of the ice making assembly to the ice moving cavity.

10. A refrigeration device, characterized in that: The invention comprises the ice moving device according to any one of claims 1 to 9.

Citation Information

Patent Citations

  • Automatic ice discharging mechanism

    CN215571431U

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    CN217154619U