This application is a U.S. national stage application of PCT Patent Application No. PCT/CN2021/119073 filed Sep. 17, 2021, which claims priority to and the benefit of Chinese Application No. 202011116971.4 filed Oct. 19, 2020, which are incorporated herein in their entireties by reference.
The present invention relates to a refrigerating and freezing apparatus, and in particular relates to a refrigerator.
Large capacity refrigerators usually adopt a left-right double-door structure, wherein a vertical beam for sealing is mounted on a door body, to prevent cold air from leaking through a gap between the two door bodies. When the door body is opened, the vertical beam is in a state approximately perpendicular to the door body, that is, a folded state. During the closing of the door body, the vertical beam is rotated along a vertical axis to be approximately parallel with the door body, that is, an unfolded state, so as to seal the gap between the door body and the other door body. Generally, a storage compartment is provided with a guide groove opening downwards on the top wall thereof, a guide member protruding upwards is disposed at the top or bottom of the vertical beam, and during the process of opening or closing a door, the guide member moves along an extending path of the guide groove to guide the vertical beam to rotate correctly.
However, due to the friction between the guide member and the guide groove and other factors, the above solution usually leads to jamming and shaking of the vertical beam during rotation, resulting in poor rotation of the vertical beam, and thus a user has a poor experience when closing the door. Moreover, due to the configuration of the guide member and the guide groove, the sealing performance between the top/bottom of the vertical beam and the top wall/bottom wall of the storage compartment is also poor. In addition, the appearance of the refrigerator is also affected by the configuration of the guide groove and the guide member.
An objective of the present invention is to overcome at least one of the above defects of the prior art, and to provide a refrigerator in which a vertical beam can rotate automatically during a door opening or closing process without configuring a guide member and a guide groove.
An objective of the present invention is to improve the smoothness of rotation of the vertical beam, avoid jamming of the vertical beam during rotation, and improve the sealing performance between the vertical beam and an inner wall of a storage compartment.
In particular, the present invention provides a refrigerator, including a refrigerator body with an open front side, a first door body and a second door body that are rotatably disposed on the front side of the refrigerator body in a side-by-side manner, a vertical beam that is mounted at an open end of the first door body to be rotatable around a first vertical axis, and at least one driving mechanism, wherein the driving mechanism includes:
Optionally, the driving mechanism further includes a connection rod, the connection rod is fixedly connected to the vertical beam and extends in a direction away from the vertical beam, and the sliding column is mounted at the end, away from the vertical beam, of the connection rod.
Optionally, the end, close to the vertical beam, of the connection rod is rotatably mounted on the first door body so that the vertical beam rotates around the first vertical axis.
Optionally, the telescopic member, the rotating member and the connection rod are arranged in the vertical direction in a staggered manner.
Optionally, the second vertical axis, the third vertical axis and a central axis of the sliding column are coplanar, and the second vertical axis is located between the third vertical axis and the sliding channel.
Optionally, the refrigerator is configured such that when the vertical beam is in the folded state, the sliding column abuts against the end, away from the second vertical axis, of the sliding channel in the length direction.
Optionally, a ratio of the distance between the end, away from the second vertical axis, of the sliding channel in the length direction and the second vertical axis to the distance between the third vertical axis and the second vertical axis is greater than 5.
Optionally, the rotating member includes an oblong ring part, and the sliding channel is formed on the inner side of the ring part.
Optionally, the telescopic member is provided with two lugs extending away from each other in the width direction of the first door body; the first door body is provided with two limit grooves to accommodate the two lugs respectively; there are two elastic members and both are compressed springs, each elastic member is connected between the rear surface of one lug and the rear wall of the corresponding limit groove, and when the telescopic member is in an extending state, the lugs abut against the front walls of the limit grooves under the action of the elastic forces of the elastic members.
Optionally, there are two driving mechanisms, and the two driving mechanisms are matched with the top and the bottom of the vertical beam respectively.
The refrigerator provided by the present invention adopts an innovative driving mechanism to realize correct rotation of the vertical beam, and the solution of using a guide member and a guide groove to guide rotation of the vertical beam commonly used in the field of refrigerators is abandoned, thereby avoiding the problems of jamming and shaking of the vertical beam during rotation and poor rotation caused by the friction between the guide member and the guide groove and other factors. During the closing of the first door body, the telescopic member is blocked by the refrigerator body and moves to the retraction position, to drive the rotating member to rotate around the second vertical axis, so that the sliding channel pushes the sliding column to drive the vertical beam to rotate to the unfolded state. During the opening of the first door body, the telescopic member moves towards the extension position under the action of the elastic force of the elastic member, to drive the rotating member to rotate, so that the sliding channel pushes the sliding column to drive the vertical beam to rotate to the folded state. According to the present invention, by means of the simple driving mechanism, the vertical beam can rotate automatically with an opening or closing action of the first door body, which has an extremely ingenious structure. Moreover, the top/bottom of the vertical beam can directly contact the top wall/bottom wall of a storage compartment without the configuration of the guide member and the guide groove, so that better sealing performance is achieved, and less cold is lost.
Furthermore, according to the refrigerator provided by the present invention, the second vertical axis, the third vertical axis and the central axis of the sliding column are coplanar, the second vertical axis is located between the third vertical axis and the sliding channel; and when the vertical beam is in the folded state, the sliding column abuts against the end, away from the second vertical axis, of the sliding channel in the length direction, and the ratio of the distance between the end, away from the second vertical axis, of the sliding channel in the length direction and the second vertical axis to the distance between the third vertical axis and the second vertical axis is greater than 5, which is to reduce the operation resistance of the driving mechanism, make the operation more smooth, and make a user close the door more effortlessly. At the same time, the telescopic member can complete one rotation of the vertical beam by moving a relatively small distance, which prevents the length of the telescopic member from exceeding the thickness of the first door body.
The above and other objectives, advantages, and features of the present invention will be better understood by those skilled in the art according to the following detailed description of specific embodiments of the present invention in conjunction with the accompanying drawings.
In the following part, some specific embodiments of the present invention will be described in detail in an exemplary rather than limited manner with reference to the accompanying drawings. The same reference numerals in the accompanying drawings indicate the same or similar components or parts. Those skilled in the art should understand that these accompanying drawings are not necessarily drawn to scale. In the drawings:
A refrigerator according to an embodiment of the present invention will be described below with reference to
As shown in
The front side of the refrigerator body 30 is open, that is, a storage compartment 301 defined by the refrigerator body 30 is open forward (referring to
The vertical beam 50 is rotatably mounted at the open end of the first door body 10. As shown in
Those skilled in the art should understand that the vertical beam 50 can also be mounted on the second door body 20 instead of the first door body 10. However, for ease of description, the embodiment of the present invention only introduces the solution of mounting the vertical beam 50 on the first door body 10.
As shown in
The refrigerator is configured such that when the first door body 10 is in the open state, the telescopic member 61 is at the extension position, and the vertical beam 50 is in the folded state attached to the inner side of the first door body 10, as shown in
It should be understood that, during rotation and opening of the first door body 10, the telescopic member 61 is not blocked by the refrigerator body 30, and gradually extends out under the action of the elastic force of the elastic member 62, so that the rotating member 63 is driven to rotate around the second vertical axis X2, and thus the sliding channel 631 pushes the sliding column 64 to drive the vertical beam 50 to rotate to the folded state.
According to the embodiment of the present invention, by means of the simple driving mechanism 60, the vertical beam 50 can rotate automatically with an opening or closing action of the first door body 10, which has an extremely ingenious structure. Moreover, the top/bottom of the vertical beam 50 can directly contact the top wall/bottom wall of the storage compartment without the configuration of a guide member and a guide groove, so that better sealing performance is achieved, and less cold is lost. Furthermore, since the guide member and the guide groove are not needed, the problems of jamming and shaking of the vertical beam during rotation and poor rotation caused by the friction between the guide member and the guide groove and other factors can be avoided.
In some embodiments, as shown in
The end, close to the vertical beam 50, of the connection rod 65 is rotatably mounted on the first door body 10 so that the vertical beam 50 rotates around the first vertical axis X1. That is, the vertical beam 50 is mounted on the first door body 10 by means of the connection rod 65, and thus there is no need to additionally provide a rotatable connection structure on the vertical beam 50. The connection rod 65 and the vertical beam 50 may be separate components and are fixedly connected by a fastening structure. The connection 65 and a housing of the vertical beam 50 may also be integrally molded.
In some embodiments, as shown in
In some embodiments, as shown in
In some embodiments, as shown in
As shown in
In some embodiments, as shown in
Hereto, those skilled in the art should realize that although a plurality of exemplary embodiments of the present invention have been shown and described in detail herein, without departing from the spirit and scope of the present invention, many other variations or modifications that conform to the principles of the present invention can still be directly determined or deduced from the contents disclosed in the present invention. Therefore, the scope of the present invention should be understood and recognized as covering all these other variations or modifications.
Number | Date | Country | Kind |
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202011116971.4 | Oct 2020 | CN | national |
Filing Document | Filing Date | Country | Kind |
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PCT/CN2021/119073 | 9/17/2021 | WO |
Publishing Document | Publishing Date | Country | Kind |
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WO2022/083373 | 4/28/2022 | WO | A |
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Entry |
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Chinese Intellectual Property Office (ISR/CN), “International Search Report for PCT/CN2021/119073”, China, Dec. 1, 2021. |
EPO, “Supplementary European Search Report for EP Application No. 21881792.2”, Hague, Germany, Jan. 12, 2024. |
Number | Date | Country | |
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20230375251 A1 | Nov 2023 | US |