The present disclosure relates to a refrigerator including a sliding door.
When a refrigeration compartment is cooled in a cooling storage for storing an object under a low temperature environment, the inner surface of the door for opening and closing the refrigeration compartment is also cooled. The outer surface of the door is also cooled depending on the case. In this case, the moisture in the outside air, i.e., the air surrounding the outer surface of the door may condense, and cause condensation on the outer surface of the door.
PTL 1 discloses a cooling storage that supplies, to the outer surface of the glass door, the relatively warm air in a machine compartment located on the lower side of the storage compartment for the purpose of preventing the condensation at the outer surface of the glass door.
However, in a refrigerator including a plurality of sliding doors, only supplying the air of the cooling storage compartment to the sliding door cannot sufficiently suppress the generation of condensation at the sliding door.
An object of the present disclosure is to provide a refrigerator in which the generation of condensation at a sliding door is suppressed.
A refrigerator according to the present disclosure includes: a first sliding door configured to open and close a refrigeration compartment; a second sliding door configured to open and close the refrigeration compartment, the second sliding door being located between the refrigeration compartment and the first sliding door when the refrigeration compartment is in a fully opened state; a compressor disposed at a position closer to a closing end of the second sliding door than a closing end of the first sliding door when the refrigeration compartment is in the fully closed state; a fan configured to generate an airflow that passes through a periphery of the compressor; a housing in which an air blow port is formed, the housing being configured to house the compressor, the air blow port being configured to blow out the airflow toward the first sliding door and the second sliding door; and a recorder attaching part disposed inside the housing at a position closer to the closing end of the first sliding door than the closing end of the second sliding door. The first sliding door and the second sliding door are located on a front surface side of the housing. The housing includes a front surface panel configured to cover the inside from the front surface side. The recorder attaching part is located at a surface of the front surface panel on the inside, and on a lower side of the air blow port.
The present disclosure can provide a refrigerator in which the generation of condensation at a sliding door is suppressed.
An embodiment of the present disclosure is elaborated below with reference to the accompanying drawings. Note that the embodiment described below is merely an example, and the present disclosure is not limited to the embodiment.
First, a configuration of refrigerator 1 is described with reference to
Refrigerator 1 includes housing 2, frame body 3, outer sliding door (first sliding door) 4, and inner sliding door (second sliding door) 5.
Opening H is formed in the front surface of housing 2. Although not illustrated in the drawing, a heat insulation material is provided between the outer peripheral surface and the inner peripheral surface of housing 2. The space surrounded by the inner peripheral surface of housing 2 is refrigeration compartment R, which is a space for housing an object (see
Frame body 3 is provided in housing 2 to surround opening H. In frame body 3, outer lane 31 and inner lane 32 are formed (see
In frame body 3, guiding hole 3a for guiding condensation water generated at outer sliding door 4, inner sliding door 5 or frame body 3 to machine compartment MR is formed (see
As illustrated in
Outer sliding door 4 and inner sliding door 5 are doors including a glass layer. 41 and 51 in
42 and 43 in
Note that 44 and 54 in
As illustrated in
Front surface panel 21 covers the front side of machine compartment MR (see
Note that 4S in
Eaves 23 is a component that covers recorder RC attached to recorder attaching part 22, from above. Eaves 23 is attached to the surface of front surface panel 21 on machine compartment MR side, and is located on the upper side of recorder attaching part 22.
In housing 2, air blow port 2a facing upward is formed in front of frame body 3. Air blow port 2a is a hole that blows out the airflow inside machine compartment MR toward outer sliding door 4 and inner sliding door 5.
Housing 2 houses in its inside compressor CP, condenser CD, fan F, recorder RC, and pipe TB. In other words, compressor CP, condenser CD, fan F, recorder RC, and pipe TB are disposed inside machine compartment MR.
Compressor CP and condenser CD make up a refrigeration circuit for cooling the inside of refrigeration compartment R. Compressor CP and condenser CD emit heat during operation, and therefore the air surrounding compressor CP and condenser CD is heated.
Compressor CP is disposed on the left side in machine compartment MR. Specifically, compressor CP is disposed at a position closer to closing end 51 of inner sliding door 5 in the fully closed state than closing end 41 of outer sliding door 4 in the fully closed state. Condenser CD is disposed at a center portion in the horizontal direction inside housing 2. Condenser CD, as with compressor CP, is disposed at a position closer to closing end 51 of inner sliding door 5 in the fully closed state than closing end 41 of outer sliding door 4 in the fully closed state.
For example, fan F takes in the air outside refrigerator 1 from the intake port (not illustrated in the drawing) formed on the rear side of housing 2, and sends the taken air toward condenser CD to cool condenser CD. Fan F generates not only the airflow that passes through the periphery of condenser CD, but also the airflow that passes through the periphery of compressor CP.
The airflow generated by fan F is output from air blow port 2a toward outer surface 42 of outer sliding door 4 and outer surface 52 of inner sliding door 5.
Recorder RC is an apparatus that records the temperature of refrigeration compartment R. When a measurement result of the temperature sensor (not illustrated in the drawing) that measures the temperature inside refrigeration compartment R is input to recorder RC, recorder RC prints the measurement result on a recording sheet and outputs it to the outside of refrigerator 1. Recorder RC is housed in housing 2, and is attached to recorder attaching part 22. Note that recorder RC is manufactured separately from refrigerator 1, and is housed into housing 2 from the door of front surface panel 21 after refrigerator 1 is manufactured. In addition, recorder RC may be attached in place of the door of front surface panel 21, and the upper side of recorder RC is covered with eaves 23. While eaves 23 is provided on machine compartment MR side of front surface panel 21, it may be provided, on the upper side of recorder RC, integrally with recorder RC to be replaced. Note that eaves 23 has a shape that guides, toward air blow port 2a, the airflow generated by fan F. For example, as illustrated in
Pipe TB is located from the lower portion of the frame body 3 to the front of condenser CD. Pipe TB guides condensation water coming through guiding hole 3a of frame body 3, to the vicinity of condenser CD. The condensation water guided to the vicinity of condenser CD flows to a receiving pan not illustrated in the drawing. The condensation water that flows into the receiving pan is evaporated by the heat generated by condenser CD.
Next, operational effects of the present embodiment are described.
According to the present embodiment, relatively warm air inside machine compartment MR is supplied to outer surface 42 of outer sliding door 4 and outer surface 52 of inner sliding door 5 through air blow port 2a, and thus the generation of condensation at outer surface 42 and outer surface 52 can be suppressed. In addition, in the present embodiment, compressor CP as a heat source is disposed inside machine compartment MR of housing 2 at a position closer to closing end 51 of inner sliding door 5 in the fully closed state than closing end 41 of outer sliding door 4 in the fully closed state. In this manner, air warmer than the air supplied to outer sliding door 4 is easily supplied to inner sliding door 5. Thus, the effect of preventing the condensation at inner sliding door 5 provided at a position farther from air blow port 2a than outer sliding door 4 can be increased.
In addition, recorder RC, which is not a heat source, is disposed inside machine compartment MR of housing 2 at a position closer to closing end 41 of outer sliding door 4 in the fully closed state than closing end 51 of inner sliding door 5 in the fully closed state. In this manner, the air passing through the periphery of compressor CP toward inner sliding door 5 is less blocked. Specifically, the air warmed at the compressor CP is smoothly supplied toward outer surface 52 of inner sliding door 5 through air blow port 2a. Thus, the generation of condensation at outer surface 52 of inner sliding door 5 can be suppressed.
In addition, in the present embodiment, eaves 23 that covers the upper side of recorder attaching part 22 is provided on the upper side of recorder attaching part 22. Thus, even if foreign matters such as condensation water fall into machine compartment MR through air blow port 2a facing upward, recording sheets and recorder RC attached to recorder attaching part 22 can be protected. Note that eaves 23, with the configuration of covering the portion on front surface panel 21 side of recorder RC and recorder attaching part 22, can prevent the foreign matters such as condensation water falling through air blow port 2a from flowing into recorder RC along the first flat plate part by the wall part that protrudes upward from the end part of the first flat plate part on the side opposite to front surface panel 21 and extends from the left end to the right end of the first flat plate part, in addition to the above-described first flat plate part.
Eaves 23 has a shape that guides the airflow generated by fan F, toward air blow port 2a. Thus, the advancement of the air supplied toward outer surface 42 of outer sliding door 4 from the region on the side closer to closing end 41 of outer sliding door 4 in the fully closed state through air blow port 2a inside machine compartment MR of housing 2 is not prevented. Thus, the effect of preventing the generation of condensation at outer surface 42 of outer sliding door 4 can be further increased.
Since guiding hole 3a is formed in frame body 3, the condensation water of frame body 3, outer surface 42 of outer sliding door 4 and outer surface 52 of inner sliding door 5 can be guided into machine compartment MR of housing 2, and can be evaporated.
Next, a modification of the present disclosure is described.
Fan F may be provided at any location inside housing 2 as long as it can generate the airflow that passes through the periphery of compressor CP, and supply the air inside housing 2 to outer surface 42 of outer sliding door 4 and outer surface 52 of inner sliding door 5 through air blow port 2a. In addition, fan F need not necessarily be provided inside machine compartment MR of housing 2, and may be provided in the rear surface of outside housing 2, i.e., the intake port, for example.
Machine compartment MR need not necessarily be located on the lower side of refrigeration compartment R, and may be located on the upper side of refrigeration compartment R, for example. In this case, air blow port 2a is formed to face downward, and the airflow inside machine compartment MR of housing 2 goes out downward from air blow port 2a toward outer sliding door 4 and inner sliding door 5.
In addition, refrigerator 1 may include three or more sliding doors. In this case, compressor CP is disposed such that it is closer to the closing end of the innermost sliding door in the fully closed state than the closing end of the outermost sliding door in the fully closed state, assuming that the sliding door that is located on the most refrigeration compartment R side in the fully opened state is the innermost sliding door and that the sliding door that is remotest from refrigeration compartment R in the fully opened state is the outermost sliding door.
This application is a continuation of International Patent Application No. PCT/JP2020/030917, filed on Aug. 14, 2020, the disclosure of which is incorporated herein by reference in its entirety. International Patent Application No. PCT/JP2020/030917 is entitled to (or claims) the benefit of Japanese Patent Application No. 2019-155915, filed on Aug. 28, 2019, the disclosure of which is incorporated herein by reference in its entirety.
The refrigerator according to the present disclosure is suitable for refrigerators including a plurality of sliding doors. Therefore, its industrial applicability is very wide.
Number | Date | Country | Kind |
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2019-155915 | Aug 2019 | JP | national |
Number | Date | Country | |
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Parent | PCT/JP2020/030917 | Aug 2020 | US |
Child | 17674159 | US |