Ice making device and refrigeration equipment
By designing a detachable output shaft to connect to the side wall of the connecting groove, the ice making device that drives the connecting sleeve to rotate, the problem of the ice making machine failing to reset is solved, and the effective reset of the ice making container and the improvement of user experience is achieved.
Patent Information
- Application Number
- CN202420504492.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-03-15
- Publication Date
- 2025-05-09
- Estimated Expiration
- 2034-03-15
AI Technical Summary
The ice maker fails to reset to the initial position after turning off the ice, resulting in the ice maker being unable to reset, affecting the addition of water to make ice again, and interference may occur when the user takes off the container to clean, reducing the user experience.
An ice-making device is designed, in which the output shaft of the ice-making motor is detachably arranged in the connecting groove, and the output shaft is connected to the side wall of the connecting groove, which can drive the connecting sleeve to rotate and realize the reset of the ice-making container. If the motor fails to rotate at the set angle, the user can separate the connecting sleeve from the output shaft, remove the container, and install it in the initial horizontal position to ensure that the output shaft is still in the connecting groove.
The effective reset of the ice-making container is achieved, avoiding the user's mistakenly thinking that the ice-making machine is faulty, improving the user's user experience, and ensuring that the ice-making container can store water and make ice smoothly.
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Figure CN222849533U_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the technical field of refrigeration equipment, for example, to an ice-making device and a refrigeration equipment. Background Art
[0002] As people's living standards improve, the need to use ice cubes in daily life has also increased, such as adding ice to red wine, adding ice to beverages, using ice to preserve seafood, etc. The general method of making ice in daily life is to use a refrigerator with an ice maker to make ice, and the ice maker can automatically flip over to remove ice, reset ice, and increase the ice making capacity of the ice maker.
[0003] In the prior art, in order to facilitate the cleaning and maintenance of the ice maker and to facilitate the installation of the ice maker, the ice making container and the ice maker body are generally arranged to be detachably connected.
[0004] In the process of implementing the embodiments of the present disclosure, it is found that there are at least the following problems in the related art:
[0005] During the ice-making process, the ice maker flips over to remove the ice and then resets. At this time, the ice-making motor may not be able to rotate according to the set rotation angle, and cannot drive the ice-making container to reset to the initial position to keep it horizontal, affecting the ice-making container from adding water to make ice again. If the user removes the ice-making container to clean it at this time, the ice-making motor is not reset to the initial position, and there is interference between the ice-making container and the ice-making motor. The user cannot install the ice-making container on the ice maker according to the initial position. The user thinks that the ice maker has a malfunction, which reduces the user experience.
[0006] It should be noted that the information disclosed in the above background technology section is only used to enhance the understanding of the background of the present application, and therefore may include information that does not constitute the prior art known to ordinary technicians in the field. Utility Model Content
[0007] In order to provide a basic understanding of some aspects of the disclosed embodiments, a brief summary is given below. The summary is not an extensive review, nor is it intended to identify key / critical components or delineate the scope of protection of these embodiments, but rather serves as a prelude to the detailed description that follows.
[0008] The embodiments of the present disclosure provide an ice-making device and a refrigeration equipment to solve the problem that after the ice-making machine is turned over and ice is removed, the ice-making container cannot be reset to the initial position, thereby reducing the user experience.
[0009] According to the first embodiment provided by the present application, an ice-making device is provided, which includes: an ice-making rack; an ice-making motor, which is arranged on the ice-making rack and includes an output shaft; an ice-making container, which is arranged on the ice-making rack and includes a connecting sleeve, wherein the connecting sleeve is configured with a connecting groove, and the output shaft is detachably arranged in the connecting groove, and the output shaft can rotate in the connecting groove so that the output shaft is connected to the side wall of the connecting groove. When the output shaft is connected to the side wall of the connecting groove, the output shaft can drive the connecting sleeve to rotate.
[0010] In some optional embodiments, the side walls of the connecting groove include a first side wall, a second side wall, a third side wall, a fourth side wall, a fifth side wall and a sixth side wall connected end to end, the second side wall and the fifth side wall are arranged opposite to each other, and the second side wall and the fifth side wall are arc-shaped side walls, the first side wall and the fourth side wall are arranged symmetrically with respect to the center, and the third side wall and the sixth side wall are arranged symmetrically with respect to the center.
[0011] In some optional embodiments, the first side wall, the second side wall, the fourth side wall and the fifth side wall enclose a first rotation space, and the second side wall, the third side wall, the fifth side wall and the sixth side wall enclose a second rotation space; the output shaft can rotate between the first rotation space and the second rotation space;
[0012] When the output shaft is in the first rotation space, the output shaft can drive the connecting sleeve to rotate along the first direction;
[0013] When the output shaft is in the second rotation space, the output shaft can drive the connecting sleeve to rotate along the second direction; wherein the first direction is opposite to the second direction.
[0014] In some optional embodiments, the output shaft includes a flat shaft portion, and the flat shaft portion includes a first transmission side wall and a second transmission side wall that are oppositely disposed;
[0015] When the output shaft is in the first rotation space, the first transmission side wall is connected to the first side wall, and the second transmission side wall is connected to the fourth side wall;
[0016] When the output shaft is in the second rotation space, the first transmission side wall is connected to the sixth side wall, and the second transmission side wall is connected to the third side wall.
[0017] In some optional embodiments, a first fold angle is provided between the extension direction of the first side wall and the extension direction of the sixth side wall, and an opening of the first fold angle faces the side away from the connecting groove; and / or,
[0018] A second folded angle is provided between the extension direction of the third side wall and the extension direction of the fourth side wall, and an opening of the second folded angle faces the side away from the connecting groove.
[0019] In some optional embodiments, the first angle ranges from 160 degrees to 170 degrees; and / or,
[0020] The second fold angle ranges from 160 degrees to 170 degrees.
[0021] In some optional embodiments, the first connection position and the second connection position are arranged relative to each other, wherein the first connection position is the connection position between the first side wall and the sixth side wall, and the second connection position is the connection position between the third side wall and the fourth side wall; the distance between the first connection position and the second connection position is greater than the distance between the first transmission side wall and the second transmission side wall.
[0022] In some optional embodiments, the radius of the second side wall and / or the fifth side wall is greater than or equal to the radius of the output shaft, and when the output shaft is arranged in the connecting groove, the second side wall, the fifth side wall and the output shaft are coaxially arranged.
[0023] In some optional embodiments, the ice-making rack includes: a first frame body, which is used to be connected to a refrigeration device, and the ice-making motor is arranged on the first frame body; a second frame body, which is detachably connected to the first frame body, and the ice-making container is arranged on the second frame body.
[0024] According to a second embodiment provided by the present application, a refrigeration device is provided, comprising an ice-making device as described in any one of the above items.
[0025] The ice-making device and refrigeration equipment provided by the embodiments of the present disclosure can achieve the following technical effects:
[0026] With this optional embodiment, the ice-making motor is arranged in the ice-making machine, and the ice-making motor includes an output shaft, and the output shaft is detachably arranged in the connecting groove, that is, the output shaft is detachably connected to the connecting sleeve of the ice-making container. When the output shaft is connected to the connecting sleeve, and the output shaft is connected to the side wall of the connecting groove, the output shaft can drive the connecting sleeve to rotate, and the rotation of the connecting sleeve drives the ice-making container to rotate and twist, so as to realize the overturning and deicing of the ice-making container. After the ice-making container is deiced, the output shaft of the ice-making motor rotates in the opposite direction until it is connected to the side wall of the connecting groove again, so as to drive the connecting sleeve to rotate in the opposite direction, so that the ice-making container is reset to the initial position and remains horizontal, so as to make ice by adding water next time. If the ice-making motor does not rotate according to the set angle when resetting in the reverse rotation, for example, the ice-making motor loses steps, the output shaft cannot drive the ice-making container to reset to the initial horizontal position. In this embodiment, the output shaft is detachably arranged in the connecting groove. When the ice-making container has not returned to the horizontal position, the user can separate the connecting sleeve from the output shaft, that is, remove the ice-making container, and then install the ice-making container on the ice-making rack in the horizontal initial position. At this time, the output shaft can still be located in the connecting groove. In this way, the connecting sleeve can be connected to the output shaft, and the ice-making container can be in the initial position, and the ice-making container can store water and make ice, thereby improving the user experience.
[0027] The above general description and the following description are exemplary and explanatory only and are not intended to limit the present application. BRIEF DESCRIPTION OF THE DRAWINGS
[0028] One or more embodiments are exemplarily described by corresponding drawings, which do not limit the embodiments. Elements with the same reference numerals in the drawings are shown as similar elements, and the drawings do not constitute a scale limitation, and wherein:
[0029] Figure 1 is a structural schematic diagram of an ice-making device provided by an embodiment of the present disclosure from one perspective;
[0030] Figure 2 is a schematic diagram of an exploded structure of an ice-making device provided by an embodiment of the present disclosure;
[0031] Figure 3 is a structural schematic diagram of an ice-making device provided by an embodiment of the present disclosure from another perspective;
[0032] Figure 4 yes Figure 3 Schematic diagram of the cross-sectional structure along the AA direction;
[0033] Figure 5 is a structural schematic diagram of an ice-making container provided by an embodiment of the present disclosure from a perspective;
[0034] Figure 6 is a structural schematic diagram of an ice-making container provided by an embodiment of the present disclosure from another perspective;
[0035] Figure 7 It is a structural schematic diagram of an ice-making motor provided in an embodiment of the present disclosure.
[0036] Reference numerals:
[0037] 100, ice-making rack; 110, first frame; 120, second frame; 200, ice-making motor; 210, output shaft; 211, first transmission side wall; 212, second transmission side wall; 300, ice-making container; 310, connecting sleeve; 320, connecting groove; 321, first side wall; 322, second side wall; 323, third side wall; 324, fourth side wall; 325, fifth side wall; 326, sixth side wall; 330, container body; 340, connecting part. DETAILED DESCRIPTION
[0038] In order to be able to understand the features and technical contents of the embodiments of the present disclosure in more detail, the implementation of the embodiments of the present disclosure is described in detail below in conjunction with the accompanying drawings. The attached drawings are for reference only and are not used to limit the embodiments of the present disclosure. In the following technical description, for the convenience of explanation, a full understanding of the disclosed embodiments is provided through multiple details. However, one or more embodiments can still be implemented without these details. In other cases, to simplify the drawings, well-known structures and devices can be simplified for display.
[0039] The terms "first", "second", etc. in the specification and claims of the embodiments of the present disclosure and the above-mentioned drawings are used to distinguish similar objects, and are not necessarily used to describe a specific order or sequence. It should be understood that the terms used in this way can be interchanged where appropriate, so that the embodiments of the embodiments of the present disclosure described herein. In addition, the terms "including" and "having" and any variations thereof are intended to cover non-exclusive inclusions.
[0040] In the embodiments of the present disclosure, the terms "upper", "lower", "inside", "middle", "outside", "front", "back" and the like indicate directions or positional relationships based on the directions or positional relationships shown in the accompanying drawings. These terms are mainly intended to better describe the embodiments of the present disclosure and their embodiments, and are not intended to limit the indicated devices, elements or components to have a specific direction, or to be constructed and operated in a specific direction. Moreover, in addition to being used to indicate directions or positional relationships, some of the above terms may also be used to indicate other meanings. For example, the term "upper" may also be used to indicate a certain dependency or connection relationship in certain circumstances. For those of ordinary skill in the art, the specific meanings of these terms in the embodiments of the present disclosure can be understood according to specific circumstances.
[0041] In addition, the terms "disposed", "connected", and "fixed" should be understood in a broad sense. For example, "connected" can be a fixed connection, a detachable connection, or an integral structure; it can be a mechanical connection, or an electrical connection; it can be a direct connection, or an indirect connection through an intermediate medium, or it can be an internal connection between two devices, elements, or components. For those of ordinary skill in the art, the specific meanings of the above terms in the embodiments of the present disclosure can be understood according to specific circumstances.
[0042] The term "and / or" is a description of the association relationship between objects, indicating that three relationships can exist. For example, A and / or B means: A or B, or, A and B.
[0043] It should be noted that, in the absence of conflict, the embodiments and features in the embodiments of the present disclosure may be combined with each other.
[0044] The present disclosure provides an ice making device, such as Figures 1 to 7As shown, the ice-making device includes an ice-making rack 100, an ice-making motor 200 and an ice-making container 300. The ice-making motor 200 is disposed on the ice-making rack 100, and the ice-making motor 200 includes an output shaft 210. The ice-making container 300 is disposed on the ice-making rack 100, and the ice-making container 300 includes a connecting sleeve 310. The connecting sleeve 310 is configured with a connecting groove 320, and the output shaft 210 can rotate in the connecting groove 320 so that the output shaft 210 is connected to the side wall of the connecting groove 320. When the output shaft 210 is connected to the side wall of the connecting groove 320, the output shaft 210 can drive the connecting sleeve 310 to rotate.
[0045] In this optional embodiment, the ice-making motor 200 is disposed on the ice-making rack 100, and the ice-making motor 200 includes an output shaft 210, and the output shaft 210 is detachably disposed in the connecting groove 320, that is, the output shaft 210 is detachably connected to the connecting sleeve 310 of the ice-making container 300. When the output shaft 210 is connected to the connecting sleeve 310, and the output shaft 210 is connected to the side wall of the connecting groove 320, the output shaft 210 can drive the connecting sleeve 310 to rotate, and the connecting sleeve 310 rotates and twists the ice-making container 300 to achieve the flipping and deicing of the ice-making container 300. After the ice-making container 300 is deiced, the output shaft 210 of the ice-making motor 200 rotates in the reverse direction until it is connected to the side wall of the connecting groove 320 again, so as to drive the connecting sleeve 310 to rotate in the reverse direction, so that the ice-making container 300 is reset to the initial position and kept horizontal, so as to make ice by adding water next time.
[0046] If the ice-making motor 200 does not rotate according to the set angle when resetting in reverse rotation, for example, the ice-making motor 200 loses steps, the output shaft 210 cannot drive the ice-making container 300 to reset to the initial horizontal position. In this embodiment, the output shaft 210 is detachably arranged in the connecting groove 320. When the ice-making container 300 is not restored to the horizontal position, the user can separate the connecting sleeve 310 from the output shaft 210, that is, remove the ice-making container 300. Then connect the ice-making container 300 to the ice-making motor 200 in the state of being in the horizontal initial position. At this time, the output shaft 210 can still be located in the connecting groove 320. In this way, the connecting sleeve 310 can be connected to the output shaft 210, and the ice-making container 300 can be in the initial position, and the ice-making container 300 can store water and make ice, thereby improving the user's experience.
[0047] Further, when the output shaft 210 drives the connecting groove 320 to rotate again, the output shaft 210 can first rotate in the connecting groove 320. When the output shaft 210 rotates to connect with the side wall of the connecting groove 320, the output shaft 210 can again drive the connecting sleeve 310 to rotate, thereby driving the ice-making container 300 to rotate.
[0048] In this embodiment, the user can also separate the connecting sleeve 310 from the output shaft 210 to disassemble the ice-making container 300, clean and maintain the ice-making container 300, etc., thereby improving the safety of ice making and improving the user experience.
[0049] The embodiment of the present disclosure provides a refrigeration device, in which an ice-making device is arranged inside the refrigeration device. In this way, the refrigeration device can freeze the liquid in the ice-making container 300 to make ice.
[0050] In some optional embodiments, such as Figures 1 to 4 As shown, the ice making rack 100 includes a first frame 110 and a second frame 120. The first frame 110 is used to connect with the refrigeration equipment, and the ice making motor 200 is disposed on the first frame 110. The second frame 120 is detachably connected to the first frame 110, and the ice making container 300 is disposed on the second frame 120.
[0051] In this embodiment, the second frame 120 is detachably connected to the first frame 110, the first frame 110 is connected to the refrigeration device, and the ice-making container 300 is disposed on the second frame 120. Thus, when the second frame 120 is disassembled, the refrigeration container can be disassembled simultaneously, so that the connecting sleeve 310 is separated from the output shaft 210.
[0052] Alternatively, if Figure 5 and Figure 6 As shown, the ice-making container 300 further includes a container body 330 and a connecting portion 340, one end of the container body 330 is connected to the connecting sleeve 310, and the other end of the container body 330 is connected to the connecting portion 340. The second frame 120 is configured with an installation space, an avoidance hole, and a connecting matching portion, and the installation space passes through the second frame 120 in the up-down direction. The container body 330 is arranged in the installation space, the connecting sleeve 310 passes through the avoidance hole and is connected to the output shaft 210, and the connecting matching portion cooperates with the connecting portion 340, so that the ice-making container 300 is connected to the second frame 120.
[0053] Furthermore, the second frame 120 is detachably connected to the ice-making container 300 .
[0054] In some optional embodiments, such as Figures 4 to 6 As shown, the side walls of the connecting groove 320 include a first side wall 321, a second side wall 322, a third side wall 323, a fourth side wall 324, a fifth side wall 325 and a sixth side wall 326 connected end to end, the second side wall 322 and the fifth side wall 325 are arranged opposite to each other, and the second side wall 322 and the fifth side wall 325 are arc-shaped side walls, the first side wall 321 and the fourth side wall 324 are arranged symmetrically with respect to the center, and the third side wall 323 and the sixth side wall 326 are arranged symmetrically with respect to the center.
[0055] In this embodiment, the side walls of the connecting groove 320 include a first side wall 321, a second side wall 322, a third side wall 323, a fourth side wall 324, a fifth side wall 325 and a sixth side wall 326 connected end to end, that is, the first end of the first side wall 321 is connected to the second end of the sixth side wall 326, the second end of the first side wall 321 is connected to the first end of the second side wall 322, the second end of the second side wall 322 is connected to the first end of the third side wall 323, the second end of the third side wall 323 is connected to the first end of the fourth side wall 324, the second end of the fourth side wall 324 is connected to the first end of the fifth side wall 325, and the second end of the fifth side wall 325 is connected to the first end of the sixth side wall 326.
[0056] For example, Figure 4 As shown, the first side wall 321, the second side wall 322, the fourth side wall 324 and the fifth side wall 325 enclose a first rotation space, and the second side wall 322, the third side wall 323, the fifth side wall 325 and the sixth side wall 326 enclose a second rotation space. The output shaft 210 can rotate between the first rotation space and the second rotation space. When the output shaft 210 is in the first rotation space, the output shaft 210 can drive the connecting sleeve 310 to rotate in one direction. When the output shaft 210 is in the second rotation space, the output shaft 210 can drive the connecting sleeve 310 to rotate in the second direction. The first direction is opposite to the second direction.
[0057] In this embodiment, when the output shaft 210 is disposed in the connection groove 320, the output shaft 210 can be in the first rotation space or the second rotation space, and the output shaft 210 can drive the connection sleeve 310 to rotate when it is in the first rotation space or the second rotation space. When the ice-making container 300 is installed on the first frame 110 in a horizontal initial position, when the output shaft 210 is in any position between the first rotation space and the second rotation space, the output shaft 210 can be disposed in the connection groove 320. In this way, when the output shaft 210 rotates to different angles, the probability that the output shaft 210 can be disposed in the connection groove 320 is increased, and the fault tolerance rate of the connection groove 320 is improved.
[0058] Further, when the output shaft 210 is in the first rotation space, the output shaft 210 can rotate in the second direction and rotate into the second rotation space. At this time, when the output shaft 210 continues to rotate in the second direction, the connecting sleeve 310 can be driven to rotate in the second direction.
[0059] When the output shaft 210 is in the second rotation space, the output shaft 210 can rotate along the first direction and rotate into the first rotation space. At this time, when the output shaft 210 continues to rotate along the first direction, the connecting sleeve 310 can be driven to rotate along the first direction.
[0060] Alternatively, if Figure 2 and Figure 7 As shown, the output shaft 210 includes a flat shaft portion, and the flat shaft portion includes a first transmission side wall 211 and a second transmission side wall 212 that are oppositely arranged. Further, the first transmission side wall 211 and the second transmission side wall 212 are arranged in a central symmetric manner.
[0061] When the output shaft 210 is in the first rotation space, the first transmission side wall 211 is connected to the first side wall 321 , and the second transmission side wall 212 is connected to the fourth side wall 324 .
[0062] In this embodiment, when the output shaft 210 is in the first rotation space, that is, the output shaft 210 can drive the connecting sleeve 310 to rotate along the first direction. At this time, the first transmission side wall 211 is connected to the first side wall 321, the second transmission side wall 212 is connected to the fourth side wall 324, and the first side wall 321 and the fourth side wall 324 are centrally symmetrically arranged. In this way, the first transmission side wall 211 drives the first side wall 321 to rotate along the first direction, and the second rotating side wall drives the fourth side wall 324 to rotate along the first direction, thereby driving the connecting sleeve 310 to rotate along the first direction, and the ice-making container 300 can be turned over to remove ice or reset to a horizontal initial position.
[0063] When the output shaft 210 is in the second rotation space, the first transmission side wall 211 is connected to the sixth side wall 326 , and the second transmission side wall 212 is connected to the third side wall 323 .
[0064] In this embodiment, when the output shaft 210 is in the second rotation space, that is, the output shaft 210 can drive the connecting sleeve 310 to rotate along the second direction. At this time, the first transmission side wall 211 is connected to the sixth side wall 326, the second transmission side wall 212 is connected to the third side wall 323, and the third side wall 323 is centrally symmetrically arranged with the sixth side wall 326. In this way, the first transmission side wall 211 drives the sixth side wall 326 to rotate along the second direction, and the second transmission side wall 212 drives the third side wall 323 to rotate along the second direction, thereby driving the connecting sleeve 310 to rotate along the second direction, which is opposite to the first direction, so that the ice-making container 300 can be reset to the horizontal initial position or flipped to remove ice.
[0065] In this embodiment, the first side wall 321, the second side wall 322, the fourth side wall 324 and the fifth side wall 325 enclose a first rotation space, and the second side wall 322, the third side wall 323, the fifth side wall 325 and the sixth side wall 326 enclose a second rotation space. The first rotation space and the second rotation space share the second side wall 322 and the fifth side wall 325. In other words, part of the first rotation space and part of the second rotation space are overlapped. In this way, the axis position of the output shaft remains unchanged when the output shaft is in the first rotation space or the second rotation space. That is, the middle part of the first rotation space is overlapped with the middle part of the second rotation space, so that the output shaft 210 rotates along the axis of the output shaft 210 in the connecting groove 320, thereby improving the stability of the ice-making motor driving the ice-making container to work.
[0066] In some optional embodiments, such as Figures 4 to 6 As shown, a first fold angle is provided between the extension direction of the first side wall 321 and the extension direction of the sixth side wall 326 , and the opening of the first fold angle faces the side away from the connecting groove 320 .
[0067] In this embodiment, a first angle is provided between the extension direction of the first side wall 321 and the extension direction of the sixth side wall 326, and the opening of the first angle faces the side away from the connection groove 320. In this way, when the output shaft 210 rotates in the connection groove 320, the first transmission side wall 211 can be respectively connected to the first side wall 321 and the sixth side wall 326. The first side wall 321 and the sixth side wall 326 can limit and transmit the first transmission side wall 211 respectively.
[0068] Furthermore, the angle range of the first fold angle is 160 degrees to 170 degrees.
[0069] In this embodiment, the opening of the first angle faces the side away from the connection groove 320, that is, the angle between the first side wall 321 and the sixth side wall 326 in the connection groove 320 is the difference between 360 degrees and the angle of the first angle, and the angle between the first side wall 321 and the sixth side wall 326 in the connection groove 320 ranges from 190 degrees to 200 degrees. The rotation angle of the output shaft 210 in the connection groove 320 is the difference between the angle between the first side wall 321 and the sixth side wall 326 in the connection groove 320 and 180 degrees.
[0070] When the angle range of the first folding angle is 160 degrees, the angle of the first side wall 321 and the sixth side wall 326 in the connecting groove 320 is 200 degrees, and the rotation angle of the output shaft 210 in the connecting groove 320 is 20 degrees. In this way, when the output shaft 210 rotates and resets, when the difference between the actual rotation angle of the output shaft 210 and the set angle is less than or equal to 20 degrees, the ice-making container 300 can be disassembled and horizontally installed to make the ice-making container 300 in the horizontal initial position, and the output shaft 210 is set in the connecting groove 320.
[0071] When the angle range of the first folding angle is 170 degrees, the angle between the first side wall 321 and the sixth side wall 326 in the connecting groove 320 is 190 degrees, and the rotation angle of the output shaft 210 in the connecting groove 320 is 10 degrees. In this way, when the output shaft 210 rotates and resets, when the difference between the actual rotation angle of the output shaft 210 and the set angle is less than or equal to 10 degrees, the ice-making container 300 can be disassembled and horizontally installed to make the ice-making container 300 in the horizontal initial position, and the output shaft 210 is set in the connecting groove 320.
[0072] Exemplarily, the angle of the first fold angle may be 160 degrees, 161 degrees, 162 degrees, 163 degrees, 164 degrees, 165 degrees, 166 degrees, 167 degrees, 168 degrees, 169 degrees or 170 degrees.
[0073] In this embodiment, the specific setting angle of the first fold angle can be set according to the experience of technical personnel in this field, or obtained through a limited number of experiments. As long as it is within the range of 160 degrees to 170 degrees, the output shaft 210 can rotate in the connecting groove 320, and no specific limitation is made here.
[0074] In some optional embodiments, a second fold angle is provided between the extension direction of the third side wall 323 and the extension direction of the fourth side wall 324 , and the opening of the second fold angle faces the side away from the connecting groove 320 .
[0075] In this embodiment, a second angle is provided between the extension direction of the third side wall 323 and the extension direction of the fourth side wall 324, and the opening of the second angle faces the side away from the connecting groove 320. The opening of the second angle is away from the opening of the first angle. In this way, when the output shaft 210 rotates in the connecting groove 320, the second transmission side wall 212 can be connected to the connected third side wall 323 and the fourth side wall 324 respectively. The third side wall 323 and the fourth side wall 324 can limit and transmit the second transmission side wall 212 respectively.
[0076] Furthermore, the angle range of the second fold angle is 160 degrees to 170 degrees.
[0077] In this embodiment, the opening of the second angle faces the side away from the connection groove 320, that is, the angle of the third side wall 323 and the fourth side wall 324 in the connection groove 320 is the difference between 360 degrees and the angle of the second angle, and the angle range of the third side wall 323 and the fourth side wall 324 in the connection groove 320 is 190 degrees to 200 degrees. The rotation angle of the output shaft 210 in the connection groove 320 is the difference between the angle of the third side wall 323 and the fourth side wall 324 in the connection groove 320 and 180 degrees.
[0078] When the angle range of the second folding angle is 160 degrees, the angle of the third side wall 323 and the fourth side wall 324 in the connecting groove 320 is 200 degrees, and the rotation angle of the output shaft 210 in the connecting groove 320 is 20 degrees. In this way, when the output shaft 210 rotates and resets, when the difference between the actual rotation angle of the output shaft 210 and the set angle is less than or equal to 20 degrees, the ice-making container 300 can be disassembled and horizontally installed to make the ice-making container 300 in the horizontal initial position, and the output shaft 210 is set in the connecting groove 320.
[0079] When the angle range of the second folding angle is 170 degrees, the angle of the third side wall 323 and the fourth side wall 324 in the connecting groove 320 is 190 degrees, and the rotation angle of the output shaft 210 in the connecting groove 320 is 10 degrees. In this way, when the output shaft 210 rotates and resets, when the difference between the actual rotation angle of the output shaft 210 and the set angle is less than or equal to 10 degrees, the ice-making container 300 can be disassembled and horizontally installed to make the ice-making container 300 in the horizontal initial position, and the output shaft 210 is set in the connecting groove 320.
[0080] Exemplarily, the angle of the second fold angle may be 160 degrees, 161 degrees, 162 degrees, 163 degrees, 164 degrees, 165 degrees, 166 degrees, 167 degrees, 168 degrees, 169 degrees or 170 degrees.
[0081] In this embodiment, the specific setting angle of the second fold angle can be set according to the experience of technical personnel in this field, or obtained through a limited number of experiments. As long as it is within the range of 160 degrees to 170 degrees, the output shaft 210 can rotate in the connecting groove 320, and no specific limitation is made here.
[0082] In some optional embodiments, the first connection position and the second connection position are arranged opposite to each other, wherein the first connection position is the connection position between the first side wall 321 and the sixth side wall 326 , and the second connection position is the connection position between the third side wall 323 and the fourth side wall 324 .
[0083] The distance between the first connection position and the second connection position is greater than the distance between the first transmission side wall 211 and the second transmission side wall 212 .
[0084] In this embodiment, the first connection position is the connection position between the first end of the first side wall 321 and the second end of the sixth side wall 326, and the second connection position is the connection position between the second end of the third side wall 323 and the first end of the fourth side wall 324. A first angle is provided between the extension direction of the first side wall 321 and the extension direction of the sixth side wall 326, and a second angle is provided between the extension direction of the third side wall 323 and the extension direction of the fourth side wall 324, and the opening of the first angle is opposite to the opening of the second angle. In other words, the distance between the first connection position and the second connection position is the minimum distance between the first side wall 321 and the third side wall 323, and the sixth side wall 326 and the fourth side wall 324. The distance between the first connection position and the second connection position is greater than the distance between the first transmission side wall 211 and the second transmission side wall 212, that is, greater than the width of the output shaft 210. In this way, the output shaft 210 can rotate in the connection slot 320, reducing the occurrence of the first connection position or the second connection position interfering with the rotation of the connection slot 320.
[0085] Alternatively, if Figure 5 and Figure 6 As shown, the first connection position is provided with a first chamfer, and the second connection position is provided with a second chamfer. This facilitates the output shaft 210 to rotate in the connection groove 320, reduces the wear of the first connection position and the second connection position, and increases the service life of the ice making container 300.
[0086] Furthermore, the radius of the second side wall 322 and / or the fifth side wall 325 is greater than or equal to the radius of the output shaft 210 , and when the output shaft 210 is disposed in the connecting groove 320 , the second side wall 322 , the fifth side wall 325 and the output shaft 210 are coaxially disposed.
[0087] In this embodiment, the second side wall 322 is arranged opposite to the fifth side wall 325, the second side wall 322 and the fifth side wall 325 are arc-shaped side walls, and the second side wall 322, the fifth side wall 325 and the output shaft 210 are arranged coaxially. In this way, when the output shaft 210 rotates in the connecting groove 320, the arc-shaped side wall of the output shaft 210 can rotate along the second side wall 322 and the fifth side wall 325. The radius of the second side wall 322 and / or the fifth side wall 325 is greater than or equal to the radius of the output shaft 210, so as to reduce the occurrence of the second side wall 322 or the fifth side wall 325 hindering the output shaft 210 from being installed in the connecting groove 320, and improve the fault tolerance rate of the connecting groove 320.
[0088] A refrigeration device provided in an embodiment of the present disclosure includes any of the ice-making devices described above.
[0089] The refrigeration device provided in the embodiment of the present disclosure includes the ice-making device described in any one of the above embodiments, and thus has all the beneficial effects of the ice-making device described in any one of the above embodiments, which will not be described in detail here.
[0090] Optionally, the refrigeration equipment includes refrigerators, freezers, freezers and other equipment that can freeze items or foods.
[0091] The above description and the accompanying drawings sufficiently illustrate the embodiments of the present disclosure to enable those skilled in the art to practice them. Other embodiments may include structural and other changes. The embodiments represent only possible variations. Unless explicitly required, individual components and functions are optional, and the order of operations may vary. Portions and features of some embodiments may be included in or replace portions and features of other embodiments. The embodiments of the present disclosure are not limited to the structures described above and shown in the accompanying drawings, and various modifications and changes may be made without departing from the scope thereof. The scope of the present disclosure is limited only by the appended claims.
Claims
1. An ice-making device, characterized in that: include: ice rack; An ice-making motor is arranged on the ice-making rack and comprises an output shaft; The ice-making container is arranged on the ice-making rack, and comprises a connecting sleeve, wherein the connecting sleeve is configured with a connecting groove, and an output shaft is detachably arranged in the connecting groove, and the output shaft can rotate in the connecting groove so that the output shaft is connected to the side wall of the connecting groove. When the output shaft is connected to the side wall of the connecting groove, the output shaft can drive the connecting sleeve to rotate.
2. The ice-making device according to claim 1, characterized in that: The side walls of the connecting groove include a first side wall, a second side wall, a third side wall, a fourth side wall, a fifth side wall and a sixth side wall connected end to end, the second side wall and the fifth side wall are arranged opposite to each other, and the second side wall and the fifth side wall are arc-shaped side walls, the first side wall and the fourth side wall are arranged symmetrically with respect to the center, and the third side wall and the sixth side wall are arranged symmetrically with respect to the center.
3. The ice-making device according to claim 2, characterized in that: The first side wall, the second side wall, the fourth side wall and the fifth side wall enclose a first rotation space, and the second side wall, the third side wall, the fifth side wall and the sixth side wall enclose a second rotation space; The output shaft can rotate between the first rotation space and the second rotation space; When the output shaft is in the first rotation space, the output shaft can drive the connecting sleeve to rotate along the first direction; When the output shaft is in the second rotation space, the output shaft can drive the connecting sleeve to rotate along the second direction; The first direction is opposite to the second direction.
4. The ice-making device according to claim 3, characterized in that: The output shaft comprises a flat shaft portion, and the flat shaft portion comprises a first transmission side wall and a second transmission side wall which are arranged opposite to each other; When the output shaft is in the first rotation space, the first transmission side wall is connected to the first side wall, and the second transmission side wall is connected to the fourth side wall; When the output shaft is in the second rotation space, the first transmission side wall is connected to the sixth side wall, and the second transmission side wall is connected to the third side wall.
5. The ice-making device according to claim 2, characterized in that: A first fold angle is provided between the extension direction of the first side wall and the extension direction of the sixth side wall, and an opening of the first fold angle faces the side away from the connecting groove; and / or, A second folded angle is provided between the extension direction of the third side wall and the extension direction of the fourth side wall, and an opening of the second folded angle faces the side away from the connecting groove.
6. The ice-making device according to claim 5, characterized in that: The first bending angle has an angle range of 160 degrees to 170 degrees; and / or, The second fold angle ranges from 160 degrees to 170 degrees.
7. The ice-making device according to claim 2, characterized in that: The first connection position and the second connection position are arranged opposite to each other, wherein the first connection position is the connection position between the first side wall and the sixth side wall, and the second connection position is the connection position between the third side wall and the fourth side wall; The distance between the first connection position and the second connection position is greater than the distance between the first transmission side wall and the second transmission side wall.
8. The ice-making device according to claim 2, characterized in that: The radius of the second side wall and / or the fifth side wall is greater than or equal to the radius of the output shaft. When the output shaft is arranged in the connecting groove, the second side wall, the fifth side wall and the output shaft are arranged coaxially.
9. The ice-making device according to any one of claims 1 to 8, characterized in that: Ice rack includes: The first frame is used to connect with the refrigeration equipment, and the ice-making motor is arranged on the first frame; The second frame is detachably connected to the first frame, and the ice-making container is arranged on the second frame.
10. A refrigeration device, characterized in that: include: An ice-making device as claimed in any one of claims 1 to 9.