The present invention relates to a refrigerator, and in particular, to a refrigerator with side-by-side doors.
In recent years, a storage capacity of a refrigerator is required to be increased, and a size of the refrigerator is increased accordingly. In a large refrigerator, when one door is provided, the door is heavy and large, and thus, inconvenience is generated in use. Therefore, in the large refrigerator, side-by-side doors (so-called French doors) become a mainstream.
For example, in Japanese publication No. 2019-7728 (patent document 1), a refrigerator is described, in which a middle post is provided in one of side-by-side doors, so as to close a gap between the side-by-side doors.
Patent Document
Patent document 1: Japanese publication No. 2019-7728.
Generally, for convenience, the refrigerator having the middle post as described in patent document 1 is configured such that one door can be opened and closed while the other door is closed. In this case, since the middle post is required to be moved to a specified position when the door having the middle post is closed, a force required to close the door tends to be larger compared with a case where the middle post is not provided.
However, when a force required to move the middle post is reduced, the middle post may move when the door is closed, is not fixed at the specified position when the door is closed, and thus may interfere with a refrigerator body or the other door.
Therefore, an object of the present invention is to provide a refrigerator which can reduce a force required to close a door and can hold a required position when the door is closed.
A refrigerator according to the present invention has side-by-side doors including a first door and a second door, the first door has a rotatably provided middle post, the middle post has a locking mechanism for preventing rotation of the middle post, the locking mechanism has a release mechanism for releasing locking, the middle post is switched between a first position where the middle post is located when the first door is opened and a second position where the middle post is located when the first door is closed by opening and closing the first door, and the locking mechanism is released by the release mechanism during rotation from the first position to the second position, thus performing switching; the locking mechanism has a projecting portion, and the projecting portion reduces an amount of rotation of the middle post when the middle post is in the first position and the release mechanism is not released.
The present invention can provide the refrigerator in which the force required to close the door having the middle post is reduced, a specified position is kept when the door is opened, and interference with other components is avoided when the door is closed.
Furthermore, the locking mechanism may further have a post-side locking portion, the post-side locking portion comes into contact with a door-side locking portion provided on the first door when the middle post rotates, thereby preventing the rotation of the middle post; the projecting portion may be configured to extend to a gap between the post-side locking portion and the door-side locking portion.
According to the present invention, in the locking mechanism, the projecting portion which can be easily provided at the specified position can be formed. Thus, rotation of the first door can be easily and reliably prevented to keep the position of the middle post.
Furthermore, an upper corner of the projecting portion facing the door-side locking portion may have a chamfered shape.
According to the present invention, the upper corner has a shape reducing interference between the projecting portion and the door-side locking portion when the middle post is switched to the first position to return the release mechanism to the specified position (that is, when the release mechanism is returned to an unreleased state), or when the release mechanism is released to switch the middle post to the second position. Thus, the position of the middle post can be smoothly changed when the first door is opened or closed.
The present invention can provide the refrigerator which can reduce the force required to close the door and can hold the required position when the door is closed.
In the present specification, a direction shown in
Upper portions and lower portions of the first door 3 and the second door 4 are connected to the refrigerator body 2 by hinges 6 provided at a right end of the first door 3 and a left end of the second door 4 respectively, and pivoting is performed about axes of the hinges. The first door 3 and the second door 4 are configured not to interfere with each other when the doors are opened and closed. That is, the first door 3 can be opened and closed in a state where the second door 4 is closed, and similarly, the second door 4 can be opened and closed in a state where the first door 3 is closed.
The first door 3 has a middle post 10. The middle post 10 shields, for example, a gap possibly generated between the first door 3 and the second door 4, and thus can suppress a decrease in a cooling function.
As shown in
As described above, the first door 3 can be opened and closed even when the second door 4 is closed. Therefore, the middle post 10 is configured not to be in contact with the second door 4 even when the first door 3 is opened and closed when located at the first position.
As shown in
When the middle post 10 is located at the first position, the torsion spiral spring 11 applies a force in a direction of arrow A shown in
As shown in
When the first door 3 is opened, in contrast to the above situation, the middle post is guided by the guide mechanism 12 to rotate in the direction of arrow A, such that the narrow surface of the middle post 10 faces the first door 3, and the middle post is switched from the second position to the first position while rotating about the rotation axis. The middle post 10 is configured not to interfere with the second door 4 regardless of a position of the second door 4 (that is, no matter whether the second door 4 is opened or closed) when the first door 3 is opened and closed. Therefore, when opening and closing the first door 3 and the second door 4, a user cannot pay attention to an opening and closing order.
In this way, when the first door 3 is closed, the middle post 10 is configured to be at the second position, and thus, leakage of cold air from the gap possibly generated between the first door 3 and the second door 4 can be suppressed to suppress an increase in power consumption.
As described above, the middle post 10 is configured not to be in contact with the second door 4 when the first door 3 is opened and closed when located at the first position. However, in the state where the first door 3 is opened, when the middle post 10 is at the second position, the middle post 10 interferes with the second door 4. To prevent this situation, the middle post 10 has a release mechanism 14. The release mechanism 14 is configured to prevent the middle post 10 from rotating from the first position to the second position when the mechanism is not released. Thus, even when the user touches the middle post 10 when opening the first door 3 to use the refrigerator 1, the middle post 10 can be prevented from easily moving to the second position in the state where the first door 3 is opened.
As for the engagement between the middle post 10 and the guide mechanism 12, specifically, the protruding portion 15 of the release mechanism 14 of the middle post 10 is engaged with the guide groove 13 of the guide mechanism 12. As shown in
The guide portion 16 is mounted to a compression coil spring 19, such that the protruding portion 15 can slide upwards when the aforementioned engagement is released (that is, when the first door 3 is opened). Thus, the protruding portion 15 can return to a specified position.
Furthermore, the guide portion 16 has a locking mechanism 20, and when the middle post 10 is at the first position, the middle post 10 is prevented from rotating to the second position by the locking mechanism 20.
In this way, in the refrigerator 1 according to the present embodiment, even when the user unintentionally touches the middle post 10, the middle post 10 can be prevented from rotating. Therefore, in the refrigerator with the side-by-side doors, even when one of the doors has the middle post 10, the doors can be opened and closed without considering the opening and closing order of the doors.
As one of methods for reducing the force required for opening and closing the first door 3, a decrease in the spring constant is considered. For example, when the spring constant of the torsion spiral spring 11 is changed, such that a force required for reversing the spring is reduced by about 50%, the force required for closing the first door 3 (hereinafter, appropriately referred to as “door closing force”) can be reduced by about 50%. Table 1 shows an example of changes in the door closing force measured at specified positions of a plurality of refrigerators, which are generated by changing the torsion spiral spring 11. When the torsion spiral spring 11 is changed to a spring in which the force required for reversal is reduced by about 50%, the door closing force can be reduced by about 45% on average, as shown in table 1.
In this way, the door closing force can be reduced by reducing the spring constant of the torsion spiral spring 11. However, when the spring constant is decreased, the force for keeping the middle post 10 at the first position is decreased when the first door 3 is opened. When the keeping force is reduced, the position of the protruding portion 15 of the middle post 10 cannot be kept, and the middle post 10 may interfere with the guide mechanism 12 of the storage chamber 5 when the first door 3 is closed. For example, when the first door 3 is closed, the protruding portion 15 of the middle post 10 may not be engaged with the guide groove 13 but come into contact with other portions of the guide mechanism 12 than the guide groove 13, and the first door 3 may not be completely closed.
In order to prevent the above problem, in the present embodiment, as shown in
The projecting portion 23 is formed to extend from the post-side locking portion 21 towards the door-side locking portion 22. Thus, the gap between the post-side locking portion 21 and the door-side locking portion 22 can be reduced.
In this way, by providing the projecting portion 23 in the post-side locking portion 21 serving as a part of the guide portion 16 used as one of the components of the middle post 10, the kept position of the middle post 10 can be adjusted by changing the guide portion 16 when required to be changed. Therefore, a number of components with shapes changed can be reduced. Furthermore, since the guide portion 16 is a relatively small component, the shape can be easily changed, and furthermore, an influence of the change in the shape on assembly can be reduced.
Preferably, the projecting portion 23 is formed of a plurality of protrusions. Thus, when the first door 3 is in the open state and the middle post 10 is at the first position, even when a force for rotating the middle post 10 towards the second position is applied, the projecting portion 23 can be prevented from being easily deformed.
When the middle post 10 is at the second position, the projecting portion 23 is located below the door-side locking portion 22. Then, when the middle post 10 is switched from the second position to the first position, the post-side locking portion 21 rotates while sliding relative to an upper portion of the projecting portion 23 and a lower portion of the door-side locking portion 22. Or, when the protruding portion 15 is engaged with the guide groove 13 and pushed downwards to rotate the middle post 10, the projecting portion 23 does not slide along with the door-side locking portion 22, and when the engagement between the protruding portion 15 and the guide groove 13 is released, the protruding portion 15 is released from downward pushing and slides upwards by the compression coil spring 19.
At this point, in the presence of interference, even when the middle post 10 is switched to the first position, the release mechanism 14 is kept released, and the protruding portion 15 may not smoothly return to the specified position; the interference is friction caused by contact between the door-side locking portion 22 and the projecting portion 23 slightly before the switching to the first position, or contact between the door-side locking portion 22 and the projecting portion 23 during sliding. In this case, the middle post 10 can be easily switched to the second position in the state where the first door 3 is opened. Furthermore, in the case of a shape in which the interference occurs, interference occurs also during switching from the first position to the second position, and when the first door 3 is closed, the release mechanism 14 is not normally released, and the first door 3 may not be closed. Therefore, the projecting portion 23 is preferably shaped to allow the release mechanism 14 to operate smoothly (that is, the release mechanism 14 is released smoothly, or the release of the release mechanism 14 is canceled smoothly). For example, as shown in
The present invention is not limited to the illustrated embodiments, and various improvements and design changes can be made without departing from the scope of the present invention.
As described above, the present invention can provide the refrigerator which can reduce the force required to close the door and can hold the required position when the door is closed, and therefore, the solution can be preferably applied to the industrial field of the refrigerator.
Number | Date | Country | Kind |
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2020-146170 | Aug 2020 | JP | national |
Filing Document | Filing Date | Country | Kind |
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PCT/CN2021/115376 | 8/30/2021 | WO |