The present disclosure relates to the technical field of household appliances, and in particular, to a refrigerator.
As consumers demand more and more functions from refrigerators, refrigerators with an ice making function are becoming increasingly popular.
The main structure in the refrigerator that implements the ice making function is the ice maker, which is generally disposed in a separate ice making compartment Isolated from the refrigerating compartment or freezing compartment. The basic principle of ice making includes: injecting water into the ice tray inside the ice maker, then supplying cold to the ice making compartment to freeze the water in the ice tray into ice cubes, and finally demolding the ice cubes from the ice tray and dropping them into the storage box for users to take.
A refrigerator includes a refrigerator body and an ice maker. An ice making compartment is defined in the refrigerator body. The ice maker is disposed in the ice making compartment. The ice maker includes a mold shell and a driving mechanism. The mold shell has at least one mold cavity and a water inlet communicating with the mold cavity. The mold shell includes a first sub-mold shell and a second sub-mold shell. One of the first sub-mold shell and the second sub-mold shell is fixed, and another of the first sub-mold shell and the second sub-mold shell is movable, such that the first sub-mold shell and the second sub-mold shell is switchable between a separated state and a closed state. The driving mechanism is configured to drive the first sub-mold shell or the second sub-mold shell to switch between the separated state and the dosed state. The second sub-mold shell includes a heating mechanism, a second shell portion, and a second mold portion. The second mold portion is disposed in the second shell portion, and the heating mechanism is disposed on a side of the second shell portion away from the second mold portion.
In order to illustrate the technical solutions of the embodiments of the present disclosure more clearly, accompanying drawings to be used in the description of some embodiments will be introduced briefly below. However, the accompanying drawings to be described below are merely accompanying drawings of some embodiments of the present application, and a person having ordinary skill in the art may obtain other drawings according to these drawings. In addition, the accompanying drawings to be described below may be regarded as schematic diagrams and are not limitations on an actual size of a product, an actual process of a method and an actual timing of a signal involved in the embodiments of the present disclosure.
Some embodiments of the present disclosure will be described clearly and completely with reference to the accompanying drawings; however, the described embodiments are merely some but not all of embodiments of the present disclosure. All other embodiments obtained on a basis of the embodiments of the present disclosure by a person of ordinary skill in the art shall be included in the protection scope of the present disclosure.
Unless the context requires otherwise, throughout the description and the claims, the term “comprise” and other forms thereof such as the third-person singular form “comprises” and the present participle form “comprising” are construed as open and inclusive, i.e., “including, but not limited to.” In the description of the specification, the terms such as “one embodiment,” “some embodiments,” “exemplary embodiments,” “example,” “specific example,” or “some examples” are intended to indicate that specific features, structures, materials, or characteristics related to the embodiment(s) or example(s) are included in at least one embodiment or example of the present disclosure. Schematic representations of the above terms do not necessarily refer to the same embodiment(s) or example(s). In addition, the specific features, structures, materials or characteristics described herein may be included in any one or more embodiments or examples in any suitable manner.
Hereinafter, the terms “first” and “second” are only used for descriptive purposes and cannot be construed as indicating or implying the relative importance or implicitly indicating the number of indicated technical features. Therefore, the features defined with “first” and “second” may explicitly or implicitly include one or more of these features. In the description of the embodiments of the present disclosure, the terms “a plurality of” and “the plurality of” both mean two or more unless otherwise specified.
In describing some embodiments; the expressions “coupled” and “connected” and their derivatives may be used. The term “connected” should be understood in a broad sense; for example, “connected” may refer to a fixed connection, a detachable connection, or a connection into an integral body; it may also refer to a direct connection, or an indirect connection through an intermediate means. The term “coupled” may be used to indicate that two or more components are in direct physical or electrical contact with each other. The term “coupled” or “communicatively coupled” may also mean that two or more components are not in direct contact with each other, but still cooperate or interact with each other. The embodiments disclosed herein are not necessarily limited to the content herein.
The phrase “at least one of A, B, and C” has the same meaning as the phrase “at least one of A, B, or C,” and they both include the following combinations of A, B, and C: only A, only B, only C, a combination of A and B, a combination of A and C, a combination of B and C, and a combination of A, B, and C.
The phrase “A and/or B” includes the following three combinations: only A; only B, and a combination of A and B.
The phrase “applicable to” or “configured to” as used herein indicates an open and inclusive expression, which does not exclude devices that are applicable to or configured to perform additional tasks or steps.
In addition, the phrase “based on” as used herein is meant to be open and inclusive, since a process, step, calculation, or other action that is “based on” one or more of the stated conditions or values may, in practice, be based on additional conditions or values beyond those stated.
The term such as “about,” “substantially,” or “approximately” as used herein includes a stated value and an average value within an acceptable range of deviation of a particular value. The acceptable range of deviation is determined by a person of ordinary skill in the art in consideration of the measurement in question and errors associated with the measurement of a particular quantity (i.e., limitations of the measurement system).
The terms such as “parallel,” “perpendicular,” and “equal” as used herein include a stated situation and a situation similar to the stated situation. The situation similar to the stated situation is within an acceptable range of deviation. The acceptable range of deviation is determined by a person of ordinary skill in the art in consideration of the measurement in question and errors associated with the measurement of a particular quantity (i.e., limitations of the measurement system). For example, the term “parallel” includes absolute parallelism and approximate parallelism, and an acceptable range of deviation of the approximate parallelism may be, for example, a deviation within 5°, the term “perpendicular” includes absolute perpendicularity and approximate perpendicularity, and an acceptable range of deviation of the approximate perpendicularity may also be, for example, a deviation within 5°. The term “equal” includes absolute equality and approximate equality, and an acceptable range of deviation of the approximate equality may be, for example, that a difference between two equals is less than or equal to 5% of either of the two equals.
A side of a refrigerator 1 facing a user during use is defined as a front side, and a side opposite to the front side is defined as a rear side.
In some embodiments, referring to
The cold air supply device 20 cools the storage compartment by exchanging heat with an outside of the refrigerator body 10. As shown in
For example, the evaporator 24 may be arranged to be in contact with an outer wall of the storage compartment, so as to cool the storage compartment. In some embodiments, the cold air supply device 20 may further include a circulation fan, so that air in the storage compartment may be circulated through the evaporator 24 and the circulation fan.
The refrigerator body 10 includes a horizontal partition plate 11 disposed at a middle position of the refrigerator body 10 in a height direction. The height direction refers to the up-down direction in
In addition, referring to
The door body 30 is pivotally connected to the refrigerator body 10, so as to open or close the storage compartment by rotation. For example, the door body 30 is hinged to a front end of the refrigerator body 10. Four door bodies 30 are shown in
Referring to
As shown in
In some embodiments, as shown in
In some embodiments, one of the first sub-mold shell 401 and the second sub-mold shell 402 is fixed, and the other of the first sub-mold shell 401 and the second sub-mold shell 402 is movable, such that the first sub-mold shell 401 and the second sub-mold shell 402 are switchable between the separated state and the closed state. In the separated state, the movable one of the first sub-mold shell 401 and the second sub-mold shell 402 moves away from the other one that is fixed; in the closed state, the movable one of the first sub-mold shell 401 and the second sub-mold shell 402 moves toward the other one that is fixed, until the two parts are closed.
For example, it may be that the first sub-mold shell 401 is fixed, and the second sub-mold shell 402 is movable relative to the first sub-mold shell 401; it may also be that the second sub-mold shell 402 is fixed, and the first sub-mold shell 401 is movable relative to the second sub-mold shell 402. In this case, the ice maker 1001 is easy to control and has good reliability.
In some embodiments, it may also be that both the first sub-mold shell 401 and the second sub-mold shell 402 are movable. In this case, the ice maker 1001 includes two push rods corresponding to the first sub-mold shell 401 and the second sub-mold shell 402, respectively. The two push rods are independent of each other, and there is no need to provide other structures such as connecting rods to demold ice.
The solution in which the mold shell 400 includes more sub-mold shells is similar to the solution in which the mold shell 400 includes the first sub-mold shell 401 and the second sub-mold shell 402 as described above, and details will not be repeated here.
For ease of description, some embodiments are mainly described by considering an example in which the second sub-mold shell 402 is fixed, and the first sub-mold shell 401 is movable relative to the second sub-mold shell 402, however, this cannot be understood as a limitation of the present disclosure.
In some embodiments, as shown in
Referring to
Referring to
In some embodiments, referring to
In some embodiments, one of the first engaging portion and the second engaging portion 322 may also be configured as a protruding portion or a raised portion, and another one of the first engaging portion and the second engaging portion 322 may also be configured as a concave portion or a slot. As long as the first engaging portion and the second engaging portion 322 are capable of matching together, the present disclosure is not limited thereto.
In some embodiments of the present disclosure, at least one of the first mold portion 310 and the second mold portion 320 is configured to be deformable due to an external force. For example, both the first mold portion 310 and the second mold portion 320 are silica gel members.
Referring to
In some embodiments, the mold body 300 includes a plurality of mold cavities,
In some embodiments, referring to
Since the amount of water injected each time is constant during ice making, if water leaks during water injection, the amount of water entering the mold cavities will decrease, and the weight of the produced ice cubes will be less than the preset weight, thereby resulting in decreased integrity of the ice cubes. In some embodiments, referring to
In this way, when water is injected into the mold cavity through the annular water inlet 301 during ice making, water will not leak from the gap where the water inlet 301 is closed, thus preventing leaked water from forming ice outside the mold cavity and affecting the demolding process. In addition, it may also be possible to prevent the ice formed by leaked water from destroying the original shape of the ice cubes. Therefore, the shape of the ice cubes may be complete.
It can be understood that, if half of the water inlet 301 is located in the first mold portion 310 and the other half of the water inlet 301 is located in the second mold portion 320, when water leaks out of the mold cavity from the position where the two halves of the water inlet 301 in the first mold portion 310 and the second mold portion 320 are engaged during water injection, the leaked water will freeze and cause the mold portions to be adhered together. Consequently, it will be difficult to separate the first mold portion 310 from the second mold portion 320 during subsequent demolding, thereby resulting in an unsmooth demolding process.
In some embodiments, the water inlet 301 is formed on the first mold portion 310 or the second mold portion 320.
Referring to
The first sub-mold shell 401 includes a first shell portion 210 and a first mold portion 310. Referring to
It will be noted that, the first predetermined distance is a distance set according to the length of the first push rod 410, the size of the internal space of the ice maker 1001, and other factors.
The first shell portion 210 includes a through hole 212A located on a side of the first shell portion 210 away from the second shell portion 220 (referring to
In some embodiments, referring to
The second sub-mold shell 402 includes a second shell portion 220 and a second mold portion 320. The second shell portion 220 includes a heating mechanism 420, and the heating mechanism 420 is disposed on a side of the second shell portion 220 away from the first shell portion 210. In this way, the ice cubes are conveniently heated by the heating mechanism 420, which facilitates the demolding of the ice cubes from the second mold portion 320. For example, the heating mechanism 420 is disposed on the N side of the second shell portion 220 in
Upon demolding, the heating mechanism 420 is first activated to melt the outer wall of the ice cubes, thereby demolding the ice cubes from the second mold portion 320. The ice cubes are then attached to the first mold portion 310. Then, when the first shell portion 210 is driven by the driving mechanism 500 to move to a predetermined position, the push rod 410 is pushed to the first mold portion 310 through the through hole 212A, so that the first mold portion 310 is deformed by force, and the ice cubes located in the first mold portion 310 are ejected. Finally, the ice cubes are dropped into the ice storage box for the user to take.
The refrigerator 1 provided in some embodiments of the present disclosure includes the ice maker 1001. The ice tray of the ice maker 1001 includes the first sub-mold shell 401 and the second sub-mold shell 402. One of the first sub-mold shell 401 and the second sub-mold shell 402 is fixed, and the other of the first sub-mold shell 401 and the second sub-mold shell 402 is movable, such that the first sub-mold shell 401 and the second sub-mold shell 402 are switchable between the separated state and the closed state. The ice maker 1001 is suitable for making ice cubes of special shapes, such as spherical ice cubes or polyhedral ice cubes, which can only be formed through the cooperation of the first sub-mold shell 401 and the second sub-mold shell 402.
In addition, by adopting a solution in which one of the first sub-mold shell 401 and the second sub-mold shell 402 is fixed and the other of the first sub-mold shell 401 and the second sub-mold shell 402 is movable, the driving components required are relatively simple and the overall space occupied by the ice maker 1001 is small.
In some embodiments, the first sub-mold shell 401 is movable, and the push rod 410 is provided on the side of the first sub-mold shell 401 away from the second sub-mold shell 402. The second sub-mold shell 402 is fixed and includes the heating mechanism 420. Upon demolding, the heating mechanism 420 is activated to cause the ice cubes to adhere to the first sub-mold shell 401. When the first sub-mold shell 401 moves to the predetermined position, the push rod 410 is pushed against the first mold portion 310 through the through hole 212A, so that the first mold portion 310 is deformed by force and ejects the ice cubes. This demolding structure is simple, and the demolding effect is reliable.
It will be noted that, demolding of the second sub-mold shell 402 may adopt at least one of the heating mechanism 420 or deforming the second mold portion 320.
In some embodiments, the demolding of the second sub-mold shell 402 is accomplished mainly by using the heating mechanism 420 to melt the outer walls of the ice cubes. In this case, the second sub-mold shell 402 may not be provided with the second mold portion 320, as long as the second sub-mold shell 402 may form a mold cavity with the first mold portion 310. Additionally or alternatively, the demolding of the second sub-mold shell 402 is achieved by causing the second mold portion 320 to deform. It can be understood that the manner of causing the second mold portion 320 to deform, so as to achieve demolding of the second sub-mold shell 402, is similar to the manner of causing the first mold portion 310 to deform, so as to achieve demolding of the first sub-mold shell 401, and details will not be repeated here.
In some embodiments, the separating and closing movements of the first shell portion 210 and the second shell portion 220 include at least a translational type of movement or a rotary type of movement, for which a matching driving mechanism 500 is provided respectively.
As shown in
Referring to
The driving member is connected to the rotating shaft, so as to drive the rotating shaft to rotate. For example, the motor 510 is connected to the rotating shaft 520, and the rack 540 is connected to the rotating shaft 520 through the gear set 530 in a transmission manner. In this way, the motor 510 is capable of driving the rotating shaft 520 to rotate, the rotating shaft 520 drives the clear set 530 to rotate, and the gear set 530 drives the rack 540 to move, thereby translating the first shell portion 210 along the sliding rod 550.
Referring to
Referring to
The foregoing descriptions are merely specific implementations of the present disclosure, but the protection scope of the present disclosure is not limited thereto. Any changes or substitutions conceived by those skilled in the art within the technical scope disclosed in the present disclosure shall fall within the protection scope of the present disclosure. Therefore, the protection scope of the present disclosure shall be subject to the protection scope of the claims.
It will be appreciated by those skilled in the art that the scope of disclosure involved in the present disclosure is not limited to technical solutions formed by particular combinations of the above technical features, but shall also encompass other technical solutions formed by any combination of the above technical features or equivalents thereof without departing from the concept of the present disclosure, for example, technical solutions formed by replacing the above features with technical features having similar functions disclosed in some embodiments (but not limited thereto).
Number | Date | Country | Kind |
---|---|---|---|
202110599421.0 | May 2021 | CN | national |
This application is a continuation application of International Application No. PCT/CN2021/121030, filed on Sep. 27, 2021, which claims priority to Chinese Patent Application No. 202110599421.0, filed on May 28, 2021; the entire contents of which are incorporated herein by reference in their entireties.
Number | Date | Country | |
---|---|---|---|
Parent | PCT/CN2021/121030 | Sep 2021 | US |
Child | 18348820 | US |