JP2006125839A - Operation control device for refrigerator - Google Patents

Operation control device for refrigerator Download PDF

Info

Publication number
JP2006125839A
JP2006125839A JP2005365645A JP2005365645A JP2006125839A JP 2006125839 A JP2006125839 A JP 2006125839A JP 2005365645 A JP2005365645 A JP 2005365645A JP 2005365645 A JP2005365645 A JP 2005365645A JP 2006125839 A JP2006125839 A JP 2006125839A
Authority
JP
Japan
Prior art keywords
cooler
room
refrigerating
refrigerator
freezer
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Pending
Application number
JP2005365645A
Other languages
Japanese (ja)
Inventor
Kyoya Tateno
恭也 舘野
Junichi Furukawa
純一 布留川
Emi Nojima
恵美 野島
Masashi Toyoshima
昌志 豊嶋
Hiroshi Nishi
比呂志 西
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Sanyo Electric Co Ltd
Original Assignee
Sanyo Electric Co Ltd
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Sanyo Electric Co Ltd filed Critical Sanyo Electric Co Ltd
Priority to JP2005365645A priority Critical patent/JP2006125839A/en
Publication of JP2006125839A publication Critical patent/JP2006125839A/en
Pending legal-status Critical Current

Links

Images

Abstract

<P>PROBLEM TO BE SOLVED: To solve the problem in a refrigerator adapted so that a cooling chamber cooler and a freezing chamber cooler are connected serially and refrigerant flows from the cooling chamber cooler to the freezing chamber cooler, that when a cooling chamber cold air circulating blower is operated simultaneously with operation of a compressor, refrigerant of an increased temperature in the cooling chamber cooler flows to the freezing chamber cooler to raise the temperature of the freezing chamber cooler since the temperature of the cooling chamber cooler is raised at the point of time the operation of the compressor is started, and operation of a freezing chamber cold air circulating blower consequently causes a rise of temperature of the freezing chamber. <P>SOLUTION: To suppress the bad effect on the freezing chamber cooler by an increased temperature of the cooling chamber cooler at the time of starting freezing and cooling operation modes, the operation of the cooling chamber cold air circulating blower is started with delay of a predetermined time from the operation start of the compressor. <P>COPYRIGHT: (C)2006,JPO&NCIPI

Description

本発明は、冷蔵室と冷凍室を有し、前記冷蔵室と冷凍室に対してそれぞれ専用の冷蔵室用冷却器及び冷蔵室用冷気循環送風機と、冷凍室用冷却器及び冷凍室用冷気循環送風機を設け、圧縮機で圧縮され凝縮器を経て前記両冷却器へ冷媒が流れる冷媒が冷媒流路切換装置によって切換制御される冷蔵庫に関する。   The present invention has a refrigerating room and a freezing room, the refrigerating room cooler and the refrigerating room cool air circulation blower, and the freezing room cooler and the freezing room cold air circulation respectively for the refrigerating room and the freezing room. The present invention relates to a refrigerator in which a blower is provided, and the refrigerant that is compressed by the compressor and flows through the condenser to the both coolers is switched and controlled by the refrigerant flow switching device.

先行技術として、冷蔵室と冷凍室を有し、前記冷蔵室と冷凍室に対してそれぞれ専用の冷蔵室用冷却器及び冷蔵室用冷気循環送風機と、冷凍室用冷却器及び冷凍室用冷気循環送風機を設け、圧縮機で圧縮され凝縮器を経た冷媒が、前記冷蔵室用冷却器から前記冷凍室用冷却器へ流れ、前記冷蔵室もしくは前記冷蔵室用冷却器が冷却によって所定の温度に低下したとき前記冷蔵室用冷却器への冷媒流路を閉じて前記冷凍室用冷却器へ冷媒が流れるように冷媒流路切換装置によって制御され、前記冷凍室若しくは前記冷凍室用冷却器が所定の下限温度に冷却されたときには前記圧縮機及び前記両送風機を停止する冷蔵庫があり、冷蔵室の温度が所定の下限温度の低下したとき、冷媒流路切換装置によって冷蔵室用冷却器への冷媒の流れをストップして冷凍室用冷却器のみに流し、冷蔵室用冷気循環送風機を数分間運転して冷蔵室用冷却器の霜の融解によって冷蔵室を加湿する手段を採っている。   Prior art has a refrigerator compartment and a freezer compartment, and a refrigerator for the refrigerator compartment and a cold air circulation fan for the refrigerator compartment dedicated to the refrigerator compartment and the freezer compartment, a cooler for the refrigerator compartment, and a cold air circulation for the freezer compartment, respectively. The cooling medium provided with a blower and compressed by the compressor and passed through the condenser flows from the refrigerating room cooler to the freezing room cooler, and the refrigerating room or the refrigerating room cooler decreases to a predetermined temperature by cooling. The refrigerant flow path to the refrigerator compartment cooler is closed and the refrigerant flow switching device is controlled so that the refrigerant flows to the freezer compartment cooler, and the freezer compartment or the freezer compartment cooler is There is a refrigerator that stops the compressor and the blowers when cooled to the lower limit temperature, and when the temperature of the refrigerator compartment decreases to a predetermined lower limit temperature, the refrigerant flow switching device supplies the refrigerant to the refrigerator for the refrigerator compartment. Stop the flow Flowing only to the freezing compartment cooler Te adopts a means for humidifying the refrigerating chamber refrigerator compartment cold air circulating blower in operation for several minutes by melting the frost refrigerating compartment cooler.

この先行技術において、凝縮器を経た冷媒は、前記冷蔵室用冷却器から前記冷凍室用冷却器へ流れ、前記冷凍室若しくは前記冷凍室用冷却器が所定の下限温度に冷却されたときには前記圧縮機及び前記両送風機を停止する。そして、前記冷凍室若しくは前記冷凍室用冷却器が所定の上限温度に上昇すると、前記圧縮機及び前記冷凍室用冷気循環送風機は運転を再開する。この場合、通常は、前記冷蔵室もしくは前記冷蔵室用冷却器も所定の上限温度に上昇しているため、冷媒流路切換装置によって前記冷蔵室用冷却器から前記冷凍室用冷却器へ冷媒が流れるように冷媒通路が形成されると共に冷蔵室用冷気循環送風機も運転される。
特開平11−311467号公報
In this prior art, the refrigerant that has passed through the condenser flows from the refrigerating room cooler to the freezing room cooler, and when the freezing room or the freezing room cooler is cooled to a predetermined lower limit temperature, the compression is performed. Stop the machine and both fans. When the freezer or the cooler for the freezer rises to a predetermined upper limit temperature, the compressor and the cold air circulating blower for the freezer resume operation. In this case, normally, since the refrigerator compartment or the refrigerator refrigerator is also raised to a predetermined upper limit temperature, the refrigerant is switched from the refrigerator refrigerator to the refrigerator refrigerator by the refrigerant flow switching device. The refrigerant passage is formed so as to flow, and the cold air circulation blower for the refrigerator compartment is also operated.
JP 11-311467 A

このように冷凍室と冷蔵室とが所定の上限温度以上に上昇している状態では、圧縮機と送風機を運転して冷凍室と冷蔵室とに冷気循環し、これらの室を所定の下限温度にまで冷却する、所謂、冷凍冷蔵運転モードにする必要がある。この冷凍冷蔵運転モードでは、前記圧縮機の運転が開始する時点では、前記冷蔵室用冷却器の温度は上昇して0℃程度にまで上昇しており、前記圧縮機の運転と同時に冷蔵室用冷気循環送風機を運転すると、冷蔵室用冷却器内の温度の高い冷媒が零下温度に冷却されている冷凍室用冷却器へ流れ込み、冷凍室用冷却器の温度が上昇する。このため、冷凍室用冷気循環送風機の運転によって、冷凍室の温度が上昇するという悪影響が生じる。   Thus, in a state where the freezer compartment and the refrigerator compartment have risen above the predetermined upper limit temperature, the compressor and the blower are operated to circulate cold air between the freezer compartment and the refrigerator compartment, It is necessary to set a so-called freezing / refrigeration operation mode in which the cooling is performed. In this freezing / refrigeration operation mode, when the operation of the compressor starts, the temperature of the refrigerator for the refrigerator compartment rises to about 0 ° C., and at the same time as the operation of the compressor, When the cold air circulation blower is operated, the high-temperature refrigerant in the refrigerator for the refrigerator compartment flows into the refrigerator for the freezer compartment cooled to a temperature below zero, and the temperature of the refrigerator for the refrigerator compartment rises. For this reason, there is an adverse effect that the temperature of the freezer compartment rises due to the operation of the cold air circulation blower for the freezer compartment.

本発明は、このような課題を解決するものである。また本発明は、冷蔵室の温度が所定の下限温度の低下したとき、冷媒流路切換装置によって冷蔵室用冷却器への冷媒の流れをストップして冷凍室用冷却器のみに流し、冷蔵室用冷気循環送風機を運転して冷蔵室用冷却器の霜の融解によって冷蔵室を加湿するタイプに適用可能な制御方式を提供するものである。   The present invention solves such a problem. Further, according to the present invention, when the temperature of the refrigerator compartment decreases to a predetermined lower limit temperature, the refrigerant flow switching device stops the flow of the refrigerant to the refrigerator for the refrigerator compartment and flows only to the refrigerator for the refrigerator compartment, The control system applicable to the type which operates the cold air circulation fan for humidification, and humidifies a refrigerator compartment by melting | fusing the frost of the refrigerator for refrigerator compartments is provided.

本発明の一つの具体的な手段として、冷蔵室と冷凍室を有し、前記冷蔵室と冷凍室に対してそれぞれ専用の冷蔵室用冷却器及び冷蔵室用冷気循環送風機と、冷凍室用冷却器及び冷凍室用冷気循環送風機を設け、圧縮機で圧縮され凝縮器を経た冷媒が前記冷蔵室用冷却器から前記冷凍室用冷却器へ流れて前記冷蔵室及び冷凍室を冷却する冷凍冷蔵運転モードから、前記冷蔵室もしくは前記冷蔵室用冷却器が冷却によって所定の温度に低下したとき前記冷蔵室用冷却器への冷媒流路を閉じて前記冷凍室用冷却器へ冷媒を流す冷凍運転モードへ切換わり、前記冷凍室の温度制御用センサが所定の下限温度を検出したとき前記圧縮機を停止する冷蔵庫において、冷凍冷蔵運転モードの開始時に前記冷蔵室用冷却器温度が高いことによる前記冷凍室用冷却器への悪影響の抑制に有効な所定時間前記圧縮機の運転開始から前記冷蔵室用冷気循環送風機が遅延して起動する技術手段を採用した。   As one specific means of the present invention, a refrigerating room and a freezing room are provided, and a refrigerating room cooler, a refrigerating room cooling air blower, and a freezing room cooling are provided for the refrigerating room and the freezing room, respectively. Refrigeration operation in which a cooling air blower for a refrigerator and a freezer compartment is provided, and the refrigerant compressed by the compressor and passed through the condenser flows from the refrigerator for the refrigerator compartment to the cooler for the freezer compartment to cool the refrigerator compartment and the freezer compartment From the mode, when the refrigerator compartment or the refrigerator refrigerator is cooled to a predetermined temperature by cooling, the refrigerant flow path to the refrigerator refrigerator is closed and the refrigerant flows to the refrigerator cooler In the refrigerator that stops the compressor when the temperature control sensor for the freezer compartment detects a predetermined lower limit temperature, the freezer due to the fact that the refrigerator temperature for the freezer compartment is high at the start of the freezer / refrigerator operation mode. Cold room The start of operation of a valid predetermined time the compressor to suppress the adverse effect on the vessel refrigerator compartment cold air circulating blower adopts the technical means for activating delayed.

また、本発明は、前記課題を解決するための一つの具体的な手段として、冷凍冷蔵運転モードの開始時に前記冷蔵室用冷却器温度が高いことによる前記冷凍室用冷却器への悪影響の抑制に有効な所定時間、前記圧縮機の運転開始から前記冷蔵室用冷気循環送風機が遅延して起動し、且つ冷媒流路切換装置によって切換制御されたとき所定時間運転されて前記冷蔵室用冷却器へ付着した霜の融解にて前記冷蔵室を加湿状態にする加湿運転モードとなる技術手段を採用した。   In addition, as one specific means for solving the above problems, the present invention suppresses adverse effects on the freezer cooler due to the high temperature of the refrigerator freezer at the start of the freezer refrigerating operation mode. The cooler cooler is operated for a predetermined time when the cold-air circulation blower for the refrigerating chamber starts with a delay from the start of operation of the compressor and is controlled to be switched by the refrigerant flow switching device. The technical means which becomes a humidification operation mode which makes the said refrigerator compartment into a humidified state by melting | dissolving the frost adhering to was adopted.

また、本発明は、前記課題を解決するための一つの具体的な手段として、冷凍冷蔵運転モードの開始時に前記冷蔵室用冷却器温度が高いことによる前記冷凍室用冷却器への悪影響の抑制に有効な所定時間、前記圧縮機の運転開始から前記冷蔵室用冷気循環送風機が遅延して起動し、前記冷媒流路切換装置によって切換制御されたとき前記冷蔵室用冷気循環送風機を所定時間運転して前記冷蔵室用冷却器へ付着した霜の融解にて前記冷蔵室を加湿状態にする加湿運転モードとし、前記冷凍室用冷気循環送風機の運転を前記冷凍冷蔵運転モードの期間よりも前記冷凍運転モードの期間を高速回転とする技術手段を採用した。   In addition, as one specific means for solving the above problems, the present invention suppresses adverse effects on the freezer cooler due to the high temperature of the refrigerator freezer at the start of the freezer refrigerating operation mode. The refrigeration chamber cool air circulation blower is activated after a delay from the start of operation of the compressor, and the refrigeration chamber cool air circulation blower is operated for a predetermined time when controlled by the refrigerant flow switching device. Then, the humidifying operation mode is set in which the refrigerating chamber is humidified by thawing of frost adhering to the refrigerating room cooler, and the operation of the refrigerating chamber cool air circulation blower is performed more than the freezing refrigerating operation mode period Adopted the technical means to rotate the operation mode period at high speed.

また、本発明は、前記課題を解決するための一つの具体的な手段として、前記冷凍室用冷気循環送風機は前記冷蔵室用冷気循環送風機の遅延時間よりも短い時間前記圧縮機の運転開始時から遅延して起動する技術手段を採用した。   Further, according to the present invention, as one specific means for solving the above-mentioned problem, the cold air circulation blower for the freezer compartment is shorter than the delay time of the cold air circulation blower for the refrigerator compartment when the compressor starts operating. Adopted a technical means to start after a delay.

また、本発明は、前記課題を解決するための一つの具体的な手段として、前記圧縮機の運転開始時から前記冷凍室用冷気循環送風機が遅延して起動し、前記冷蔵室用冷気循環送風機はそれよりも長い所定時間遅延して起動し、前記冷媒流路切換装置によって切換制御されたとき前記冷蔵室用冷気循環送風機を所定時間運転して前記冷蔵室用冷却器へ付着した霜の融解にて前記冷蔵室を加湿状態にする加湿運転モードとし、前記冷凍室用冷気循環送風機の運転を前記冷凍冷蔵運転モードの期間よりも前記冷凍運転モードの期間を高速回転とし、前記圧縮機のOFF後前記冷凍室用冷却器に溜まった冷媒にて前記冷凍室を冷却する所定時間前記冷凍室用冷気循環送風機の運転を継続する技術手段を採用した。   Further, according to the present invention, as one specific means for solving the above-mentioned problem, the cold air circulation blower for the freezer compartment is started with a delay from the start of operation of the compressor, and the cold air circulation blower for the refrigerator compartment is started. Is activated with a delay of a predetermined time longer than that, and when controlled by the refrigerant flow switching device, the cold air circulation blower for the refrigerator compartment is operated for a predetermined time to melt the frost attached to the refrigerator for the refrigerator compartment In the humidifying operation mode for bringing the refrigerator compartment into a humidified state, the operation of the cold air circulating blower for the freezer compartment is rotated at a higher speed than the period of the refrigerator-freezer operation mode, and the compressor is turned off. After that, a technical means for continuing the operation of the cold air circulation blower for the freezer for a predetermined time for cooling the freezer with the refrigerant accumulated in the cooler for the freezer.

また、本発明は、前記冷凍室用冷気循環送風機の回転数を前記冷凍冷蔵運転モード時に比べ前記冷凍運転モード時に上げる技術手段を採用した。   Further, the present invention employs technical means for increasing the number of rotations of the cold air circulating blower for the freezer compartment in the freezing operation mode as compared with that in the freezing / refrigeration operation mode.

第1の発明によれば、冷凍冷蔵運転モードの開始時に前記冷蔵室用冷却器温度が高いことによる前記冷凍室用冷却器への悪影響を抑制することができ、冷凍室への悪影響を抑制できる。   According to the first invention, it is possible to suppress an adverse effect on the cooler for the freezer compartment due to a high temperature of the refrigerator for the freezer compartment at the start of the freezer / refrigeration operation mode, and it is possible to suppress an adverse effect on the freezer compartment. .

また第2の発明によると、冷凍冷蔵運転モードの開始時に前記冷蔵室用冷却器温度が高いことによる前記冷凍室用冷却器への悪影響を抑制することができると共に、冷蔵室用冷却器の霜の融解によって冷蔵室を加湿するタイプに適用して効果あるものである。   According to the second aspect of the present invention, it is possible to suppress an adverse effect on the freezer cooler due to the high temperature of the refrigerating room cooler at the start of the freezer refrigerating operation mode, and the frost of the refrigerating room cooler can be reduced. It is effective when applied to a type in which the refrigerator is humidified by melting.

また第3の発明によると、第1の発明の効果に加え、冷凍冷蔵運転モード期間と冷凍運転モード期間における冷凍室用送風機の回転速度を変化させることによって、冷凍室用冷却器が冷凍室へ有効に効果づけられる。   Further, according to the third invention, in addition to the effect of the first invention, the freezer cooler is changed to the freezer by changing the rotation speed of the blower for the freezer in the freezing / refrigeration operation mode period and the freezing operation mode period. Effectively effective.

また第4の発明によると、第1の発明の効果に加えて、冷凍冷蔵運転モードの開始時に生じる冷凍室用冷却器の温度上昇に起因する冷凍室の温度上昇を抑制できる。   Further, according to the fourth invention, in addition to the effect of the first invention, it is possible to suppress an increase in the temperature of the freezer compartment caused by the increase in the temperature of the cooler for the freezer compartment that occurs at the start of the freezing / refrigeration operation mode.

また第5の発明によると、冷凍室用冷却器の状態変化を考慮して、3段階に冷凍室用送風機の回転速度を変化させることによって、冷凍室用冷却器による冷凍室の冷却が有効に効果づけられる。   According to the fifth aspect of the invention, in consideration of the state change of the freezer cooler, the freezer cooling by the freezer cooler is effectively performed by changing the rotation speed of the freezer blower in three stages. Effective.

また第6の発明によると、冷凍冷蔵運転モードから冷凍運転モードへ切換えた後、冷凍室側冷却器の温度が低下してから送風機の回転速度を上げることが冷却効果から好ましく、これに適合した効果が得られる。   Further, according to the sixth invention, after switching from the refrigeration operation mode to the refrigeration operation mode, it is preferable from the cooling effect to increase the rotation speed of the blower after the temperature of the freezer compartment cooler is lowered, and this is adapted. An effect is obtained.



次に、本発明の冷蔵庫の実施の形態について説明する。


Next, an embodiment of the refrigerator of the present invention will be described.

図1乃至図5は本発明の一つの実施の形態を示しており、図1は冷蔵庫の正面図、図2は図1の冷蔵庫の縦断側面図、図3は冷蔵庫の冷媒回路図、図4は冷蔵庫の制御構成図、図5はタイムチャートである。   1 to 5 show one embodiment of the present invention, FIG. 1 is a front view of the refrigerator, FIG. 2 is a longitudinal side view of the refrigerator of FIG. 1, FIG. 3 is a refrigerant circuit diagram of the refrigerator, FIG. Is a control configuration diagram of the refrigerator, and FIG. 5 is a time chart.

図1乃至図4において、1は冷蔵庫本体であり、外箱(外壁板)3と内箱(内壁板)2との間に発泡断熱材4を充填した断熱構造である。   1 to 4, reference numeral 1 denotes a refrigerator body, which has a heat insulating structure in which a foam heat insulating material 4 is filled between an outer box (outer wall plate) 3 and an inner box (inner wall plate) 2.

冷蔵庫本体1内には、上から冷蔵室5、野菜室6、冷凍室7が区画されて設けられ、冷蔵室5内の底部にはその上方の冷蔵室5と区画板(区画壁)8にて区画された特定低温室9が設けられ、また冷凍室7は上冷凍室10と下冷凍室11と更に製氷室20に区分されている。   In the refrigerator main body 1, a refrigerator compartment 5, a vegetable compartment 6, and a freezer compartment 7 are partitioned from above, and a refrigerator compartment 5 and a partition plate (partition wall) 8 are provided at the bottom of the refrigerator compartment 5. The freezing room 7 is divided into an upper freezing room 10, a lower freezing room 11, and an ice making room 20.

冷蔵室5の前面開口は、冷蔵庫本体1の一側部にヒンジ装置にて横方向に回動して開閉される回動式扉12にて閉塞される。   The front opening of the refrigerator compartment 5 is closed at one side of the refrigerator body 1 by a pivotable door 12 that is pivoted laterally by a hinge device and opened and closed.

野菜室6の前面開口は、野菜室6内に設けた左右のレール又はローラ装置によって前後方向へ引き出し可能に支持した野菜容器13と共に前方へ引き出される引き出し式扉14にて閉塞されている。   The front opening of the vegetable compartment 6 is closed by a drawer-type door 14 that is drawn forward together with the vegetable container 13 supported so as to be drawn in the front-rear direction by left and right rails or roller devices provided in the vegetable compartment 6.

上冷凍室10と下冷凍室11はそれぞれ野菜室6と同様に、冷凍室内に設けた左右のレールに対してそれぞれ前後方向へ引き出し可能に支持した容器15、16と共に前方へ引き出される引き出し式扉17、18にて閉塞されている。   Like the vegetable compartment 6, the upper freezer compartment 10 and the lower freezer compartment 11 are each a drawer-type door that is drawn forward together with containers 15 and 16 supported so as to be able to be drawn in the front-rear direction with respect to the left and right rails provided in the freezer compartment. Closed at 17 and 18.

上冷凍室10の左側には製氷室20が形成され、製氷室20内には、上部に自動製氷機21を設けその下部に貯氷容器22を配置している。   An ice making room 20 is formed on the left side of the upper freezing room 10. An automatic ice making machine 21 is provided in the upper part of the ice making room 20, and an ice storage container 22 is arranged in the lower part.

貯氷容器22は、野菜室6と同様に、製氷室20内の左右壁に設けた左右のレールに対してそれぞれ前後方向へ引き出し可能に支持されており、製氷室20の前面開口を開閉する引き出し式扉23と共に前方へ引き出される仕組みである。   Similarly to the vegetable compartment 6, the ice storage container 22 is supported so that it can be pulled out in the front-rear direction with respect to the left and right rails provided on the left and right walls in the ice making chamber 20, and is a drawer that opens and closes the front opening of the ice making chamber 20. This is a mechanism that is pulled forward together with the expression door 23.

自動製氷機20へ供給する製氷用水を貯める給水タンクは冷蔵室5内に設けられ、製氷用水はこの給水タンクからポンプによって給水パイプを介して自動製氷機20の製氷皿24へ供給される。   A water supply tank for storing ice making water to be supplied to the automatic ice making machine 20 is provided in the refrigerator compartment 5, and the ice making water is supplied from the water supply tank to the ice making tray 24 of the automatic ice making machine 20 through a water supply pipe by a pump.

25は冷凍システムの冷媒の圧縮機、26は冷凍システムの冷媒の凝縮器、27は凝縮器26の熱にて後述の冷却器の除霜水を蒸発させる蒸発皿である。   25 is a refrigerant compressor of the refrigeration system, 26 is a condenser of the refrigerant of the refrigeration system, and 27 is an evaporating dish for evaporating defrost water of a cooler described later by the heat of the condenser 26.

28と29は冷凍システムの冷媒の冷却器(蒸発器)であり、28は冷凍室7用冷却器
であり、29は冷蔵室5用冷却器である。
Reference numerals 28 and 29 are refrigerant coolers (evaporators) of the refrigeration system, 28 is a cooler for the freezer compartment 7, and 29 is a cooler for the refrigerator compartment 5.

30は冷凍室7用冷気循環送風機、31は冷蔵室5用冷気循環送風機である。   30 is a cold air circulation blower for the freezer compartment 7, and 31 is a cold air circulation blower for the refrigerator compartment 5.

冷凍室7用冷却器28で冷却した冷気は送風機30によって、製氷室20、上冷凍室10及び下冷凍室11を経て冷却器28へ帰還する循環をする。   The cold air cooled by the cooler 28 for the freezer compartment 7 is circulated back to the cooler 28 via the ice making chamber 20, the upper freezer compartment 10, and the lower freezer compartment 11 by the blower 30.

また冷蔵室5用冷却器29で冷却した冷気は送風機31によって、冷蔵室5、特定低温室9及び野菜室6を経て冷却器28へ帰還する循環をする。   The cold air cooled by the cooler 29 for the refrigerator compartment 5 is circulated back to the cooler 28 via the refrigerator compartment 5, the specific low temperature compartment 9 and the vegetable compartment 6 by the blower 31.

特定低温室9は、特定低温室9内に設けた左右のレールに対してそれぞれ前後方向へ引き出し可能に支持した容器50が設けられている。   The specific low temperature chamber 9 is provided with a container 50 supported so that it can be pulled out in the front-rear direction with respect to the left and right rails provided in the specific low temperature chamber 9.

32は冷凍室7用冷却器28へ流入する冷媒の減圧装置としてのキャピラリチューブ、33は冷蔵室5用冷却器29へ流入する冷媒の減圧装置としてのキャピラリチューブである。   32 is a capillary tube as a pressure reducing device for the refrigerant flowing into the cooler 28 for the freezer compartment 7, and 33 is a capillary tube as a pressure reducing device for the refrigerant flowing into the cooler 29 for the refrigerator compartment 5.

34は冷媒の流れを冷凍室7用冷却器28側と冷蔵室5用冷却器29側とに切り換える冷媒流路切換装置であり、図示のものは電磁ソレノイド35への通電毎に冷凍室7側バルブ36と冷蔵室5側バルブ37の開閉が制御される、所謂、三方電磁弁である。   A refrigerant flow switching device 34 switches the refrigerant flow between the freezer compartment 7 cooler 28 side and the refrigerator compartment 5 cooler 29 side, and the illustrated one is the freezer compartment 7 side every time the electromagnetic solenoid 35 is energized. This is a so-called three-way electromagnetic valve in which the opening and closing of the valve 36 and the refrigerator compartment 5 side valve 37 are controlled.

この三方電磁弁に代わって、冷凍室7用冷却器28への冷媒通路38を開閉する電磁弁と、冷蔵室5用冷却器29への冷媒通路39を開閉する電磁弁をそれぞれ設けて同様の制御を行うことができる。   Instead of this three-way solenoid valve, an electromagnetic valve that opens and closes the refrigerant passage 38 to the cooler 28 for the freezer compartment 7 and an electromagnetic valve that opens and closes the refrigerant passage 39 to the cooler 29 for the refrigerator compartment 5 are provided. Control can be performed.

40は冷凍室7の温度制御用として設けた冷凍室センサであり、実質的に冷凍室7の温度を感知すればよく、冷凍室7の温度又は冷却器28の温度を感知するように設けられている。   Reference numeral 40 denotes a freezer compartment sensor provided for controlling the temperature of the freezer compartment 7. The freezer compartment sensor 40 may substantially sense the temperature of the freezer compartment 7 and is provided so as to sense the temperature of the freezer compartment 7 or the temperature of the cooler 28. ing.

41は冷蔵室5の温度制御用として設けた冷蔵室センサであり、実質的に冷蔵室5の温度を感知する。   A refrigerating room sensor 41 is provided for temperature control of the refrigerating room 5 and substantially detects the temperature of the refrigerating room 5.

42は冷却器28の除霜終了温度を感知する除霜終了センサ、43は冷却器29の除霜終了温度を感知する除霜終了センサである。   Reference numeral 42 denotes a defrosting end sensor for detecting the defrosting end temperature of the cooler 28, and 43 is a defrosting end sensor for detecting the defrosting end temperature of the cooler 29.

44は冷却器28の除霜用電気ヒータ、45は冷却器29の除霜用電気ヒータである。   44 is an electric heater for defrosting of the cooler 28, 45 is an electric heater for defrosting of the cooler 29.

46はマイクロコンピュータ方式の制御装置であり、冷凍室センサ40、冷蔵室センサ41、除霜終了センサ42、43等からの信号によって圧縮機25、送風機30と31、除霜用電気ヒータ44と45、及び冷気調節装置31、冷媒流路切換装置34等の動作を制御する。   Reference numeral 46 denotes a microcomputer-type control device, which includes a compressor 25, blowers 30 and 31, and defrosting electric heaters 44 and 45 in response to signals from the freezer compartment sensor 40, the refrigerator compartment sensor 41, the defrosting end sensors 42 and 43, and the like. , And the operation of the cool air adjusting device 31, the refrigerant flow switching device 34, and the like.

本発明は、冷蔵室の乾燥抑制のために冷却器29の霜の融解水による加湿効果を得るものであり、湿気を多量に供給するものではなく、乾燥しきった空気ではなくて湿気を含んだ潤いある空気の循環を行うものであるため、むしろ潤い効果を得る冷蔵庫の提供といえる。   The present invention obtains a humidifying effect by the frost melting water of the cooler 29 in order to suppress the drying of the refrigerator compartment, and does not supply a large amount of moisture, and includes moisture rather than dry air. Since it circulates moisture, it can be said that it is a refrigerator that provides a moisturizing effect.

その制御の一つの実施形態として以下に述べる。   One embodiment of the control will be described below.

先ず、通常の冷却運転について記載する。   First, a normal cooling operation will be described.

圧縮機25の運転と停止を制御する方式としてはいろいろあるが、本発明の実施形態としては、冷凍室センサ40によって圧縮機25の運転と停止が制御される一般的な方式について説明する。   There are various methods for controlling the operation and stop of the compressor 25. As an embodiment of the present invention, a general method in which the operation and stop of the compressor 25 are controlled by the freezer compartment sensor 40 will be described.

冷凍室7と冷蔵室5は所定の下限温度まで冷却されていない状態、即ち、圧縮機25と送風機30、31を運転して冷凍室7と冷蔵室5とに冷気循環し、これらの室を所定の下限温度にまで冷却する必要がある。これが所謂、冷凍冷蔵運転モードである。   The freezer compartment 7 and the refrigerator compartment 5 are not cooled to a predetermined lower limit temperature, that is, the compressor 25 and the blowers 30 and 31 are operated to circulate cold air between the freezer compartment 7 and the refrigerator compartment 5. It is necessary to cool to a predetermined lower limit temperature. This is a so-called freezing / refrigeration operation mode.

この冷凍冷蔵運転モードでは、圧縮機25、送風機30及び送風機31が運転(ON)され、電磁弁34によって冷媒通路38が閉じ冷媒通路39が開いて冷媒は冷却器29から冷却器28に流れて圧縮機25へ帰還する。   In this refrigeration operation mode, the compressor 25, the blower 30 and the blower 31 are operated (ON), the refrigerant passage 38 is closed by the electromagnetic valve 34, the refrigerant passage 39 is opened, and the refrigerant flows from the cooler 29 to the cooler 28. Return to the compressor 25.

この運転によって冷蔵室5が所定の下限温度に低下すると、冷蔵室センサ41の温度感
知に基づいて電磁弁34が動作して冷媒通路39を閉じ、冷却器29の冷媒の供給は停止し冷媒は冷媒通路38から冷却器28へながれて圧縮機25へ帰還する循環となる。
When the refrigerator compartment 5 is lowered to a predetermined lower limit temperature by this operation, the electromagnetic valve 34 is operated based on the temperature sensing of the refrigerator compartment sensor 41 to close the refrigerant passage 39, the supply of the refrigerant in the cooler 29 is stopped, and the refrigerant is Circulation from the refrigerant passage 38 to the cooler 28 returns to the compressor 25.

そして、冷凍室7又は冷却器28が所定の下限温度になると、冷凍室センサ40の温度感知に基づいて電磁弁34が動作して冷媒通路38を閉じて圧縮機25を停止(OFF)する。   When the freezer compartment 7 or the cooler 28 reaches a predetermined lower limit temperature, the electromagnetic valve 34 operates based on the temperature sensing of the freezer compartment sensor 40 to close the refrigerant passage 38 and stop (OFF) the compressor 25.

圧縮機25が再び運転(ON)するのは、冷凍室センサ40が所定の上限温度を感知したときである。   The compressor 25 is operated (ON) again when the freezer sensor 40 senses a predetermined upper limit temperature.

冷凍室センサ40が所定の上限温度を感知すると、圧縮機25が運転(ON)し、電磁弁34が動作して冷媒通路38を開いて冷却器28へ冷媒を流し、送風機30が運転(ON)して冷凍室7の冷却が促進される。   When the freezer sensor 40 senses a predetermined upper limit temperature, the compressor 25 is operated (ON), the electromagnetic valve 34 is operated to open the refrigerant passage 38 and flow the refrigerant to the cooler 28, and the blower 30 is operated (ON). And cooling of the freezer compartment 7 is promoted.

また冷蔵室センサ41が所定の上限温度を感知していると、電磁弁34が動作して冷媒通路39を開いて冷却器29からと28へ冷媒を流し、送風機31が再び運転(ON)し、冷凍室7と冷蔵室5の冷却が促進される。   When the refrigerating room sensor 41 senses a predetermined upper limit temperature, the solenoid valve 34 operates to open the refrigerant passage 39 to flow the refrigerant from the coolers 29 and 28, and the blower 31 operates again (ON). Cooling of the freezer compartment 7 and the refrigerator compartment 5 is promoted.

このような冷凍冷蔵運転モードでの制御では、冷凍室7の温度範囲は、例えば―18℃〜―20℃の範囲に制御され、冷蔵室5は例えば、平均温度が3℃になるように下限温度1.8℃〜上限温度4.2℃に制御される。   In the control in such a freezing / refrigeration operation mode, the temperature range of the freezer compartment 7 is controlled to, for example, a range of −18 ° C. to −20 ° C., and the refrigerator compartment 5 has a lower limit such that the average temperature becomes 3 ° C., for example. The temperature is controlled to 1.8 ° C. to the upper limit temperature 4.2 ° C.

ここで図5について説明する。   Here, FIG. 5 will be described.

冷凍室7又は冷却器28が所定の下限温度になると、冷凍室センサ40の温度感知に基づいて電磁弁34が動作して冷媒通路38を閉じ、圧縮機25、送風機30、31は停止(OFF)状態である。   When the freezer compartment 7 or the cooler 28 reaches a predetermined lower limit temperature, the electromagnetic valve 34 is operated based on the temperature sensing of the freezer compartment sensor 40 to close the refrigerant passage 38, and the compressor 25 and the blowers 30, 31 are stopped (OFF). ) State.

この状態において、冷凍室センサ40と冷蔵室センサ41が所定の上限温度を感知すると、圧縮機25が運転(ON)し、電磁弁34が動作して冷媒通路39を開いて冷却器29から冷却器28へと冷媒が流れ送風機30、31を再び運転(ON)して、冷凍室7と冷蔵室5を冷却するモードとなる。   In this state, when the freezer compartment sensor 40 and the refrigerator compartment sensor 41 sense a predetermined upper limit temperature, the compressor 25 is operated (ON), the electromagnetic valve 34 is operated to open the refrigerant passage 39 and cool from the cooler 29. The refrigerant flows into the chamber 28, and the fans 30 and 31 are again operated (ON) to cool the freezer compartment 7 and the refrigerator compartment 5.

この場合、冷蔵室5用冷気循環送風機31は圧縮機25の運転(ON)開始時からT1時間遅延して起動する。   In this case, the cold air circulation blower 31 for the refrigerator compartment 5 is activated with a delay of T1 time from the start of the operation (ON) of the compressor 25.

冷却器29と冷却器28へ冷媒が流れて冷凍室7と冷蔵室5を冷却するモードが冷凍冷蔵運転モードである。   The mode in which the refrigerant flows to the cooler 29 and the cooler 28 to cool the freezer compartment 7 and the refrigerator compartment 5 is the refrigerator-freezer operation mode.

この冷凍冷蔵運転モードの開始時には、冷蔵室5用冷却器29の温度が0℃程度にまで上昇した状態にあるため、送風機31が圧縮機25の運転(ON)開始と同時に起動すると、冷却器29内の温度の高い冷媒が冷凍室7用冷却器28へ流入して零下にある冷却器28の温度が上昇し、結果として冷凍室7の温度上昇を来す。   At the start of this freezing / refrigeration operation mode, the temperature of the cooler 29 for the refrigerating chamber 5 is in a state of rising to about 0 ° C. Therefore, when the blower 31 is started simultaneously with the start of the operation (ON) of the compressor 25, the cooler The refrigerant having a high temperature in 29 flows into the cooler 28 for the freezer compartment 7 and the temperature of the cooler 28 below zero rises. As a result, the temperature of the freezer compartment 7 rises.

そこで本発明では、送風機31は圧縮機25の運転(ON)開始時からT1時間遅延して起動する。   Therefore, in the present invention, the blower 31 is activated with a delay of T1 time from the start of operation (ON) of the compressor 25.

このT1時間は、上記のような冷凍室7の温度上昇が実質的に抑制される所期の効果が期待できる時間である。   This T1 time is a time during which the expected effect of substantially suppressing the temperature rise in the freezer compartment 7 can be expected.

一つに実施例として約3分で効果がある。   One example is effective in about 3 minutes.

この時間は冷蔵庫の機種によって異なる設定となる。   This time is set differently depending on the model of the refrigerator.

冷凍室7用冷気循環送風機30も遅延起動するようにしている。   The cold air circulation blower 30 for the freezer compartment 7 is also activated with delay.

即ち、冷凍冷蔵運転モードの開始時には、冷凍室7用冷却器28の温度も上昇しているため、このとき冷凍室7用冷気循環送風機30を起動する冷凍室7の温度が上昇する。   That is, since the temperature of the cooler 28 for the freezer compartment 7 also rises at the start of the freezing / refrigeration operation mode, the temperature of the freezer compartment 7 that activates the cold air circulation blower 30 for the freezer compartment 7 rises at this time.

このため圧縮機25の運転(ON)開始によって冷却器28の温度低下が生じ、このような悪影響が抑制できる状態で冷凍室7用冷気循環送風機30を起動するように遅延時間T2を設定している。   For this reason, when the compressor 25 is started (ON), the temperature of the cooler 28 is lowered, and the delay time T2 is set so that the cold air circulation blower 30 for the freezer compartment 7 is activated in a state where such an adverse effect can be suppressed. Yes.

遅延時間T2は、冷蔵庫の機種によって異なる設定となる。   The delay time T2 is set differently depending on the refrigerator model.

冷凍冷蔵運転モードの継続によって冷蔵室センサ41が所定の下限温度を検知するA時点において、電磁弁34が動作して冷媒通路39を閉じ、冷却器29の冷媒の供給は停止し冷媒は冷媒通路38から冷却器28へ流れて圧縮機25へ帰還する循環となる。   At time A when the refrigerator compartment sensor 41 detects a predetermined lower limit temperature by continuing the freezing and refrigeration operation mode, the electromagnetic valve 34 operates to close the refrigerant passage 39, the supply of the refrigerant to the cooler 29 is stopped, and the refrigerant passes through the refrigerant passage. The circulation flows from 38 to the cooler 28 and returns to the compressor 25.

この冷媒通路の切換わりによって加湿運転(又は潤い運転)モードとなる。   The humidifying operation (or moistening operation) mode is set by switching the refrigerant passage.

即ち、冷蔵室用冷気循環送風機31は運転して冷蔵室5の空気を冷蔵室用冷却器29へ循環して、冷蔵室用冷却器29へ付着した霜の融解にて冷蔵室5を加湿状態(又は潤い状態)にする加湿運転(又は潤い運転)モードとなる。   In other words, the cold air circulation blower 31 for the refrigerator compartment is operated to circulate the air in the refrigerator compartment 5 to the refrigerator 29 for the refrigerator compartment, and the refrigerator compartment 5 is humidified by melting of the frost adhering to the refrigerator 29 for the refrigerator compartment. It becomes the humidification operation (or moist operation) mode to make (or moist state).

加湿運転(又は潤い運転)モードにおいて、冷凍室センサ40が所定の下限温度を感知していない状態では、圧縮機25、送風機30が運転(ON)して冷凍室7の冷却促進がなされる。   In the humidifying operation (or humid operation) mode, in a state where the freezer compartment sensor 40 does not sense the predetermined lower limit temperature, the compressor 25 and the blower 30 are operated (ON), and cooling of the freezer compartment 7 is promoted.

この加湿運転(又は潤い運転)モードは、予め設定した所定のT7時間、送風機31を運転するものであり、一つの実施例として約3乃至20分間に設定している。   This humidifying operation (or moist operation) mode is to operate the blower 31 for a predetermined T7 time set in advance, and is set to about 3 to 20 minutes as one embodiment.

冷蔵庫の機種によってこの時間は異なる設定となる。   This time is set differently depending on the refrigerator model.

そして、冷凍室7又は冷却器28が所定の下限温度になると、冷凍室センサ40の温度感知に基づいて電磁弁34が動作して冷媒通路38を閉じ、圧縮機25を停止(OFF)する。   When the freezer compartment 7 or the cooler 28 reaches a predetermined lower limit temperature, the electromagnetic valve 34 operates based on the temperature sensing of the freezer compartment sensor 40 to close the refrigerant passage 38 and stop the compressor 25 (OFF).

送風機30は圧縮機25の停止(OFF)からT3時間遅延して停止(OFF)する。   The blower 30 stops (OFF) after a delay of T3 from the stop (OFF) of the compressor 25.

このT3時間は、冷却器28に溜まった冷媒の蒸発によって冷却器28の冷却が有効に継続する時間に設定しており、冷蔵庫の機種によってこの時間は異なる設定となる。   This T3 time is set to a time during which cooling of the cooler 28 is effectively continued by evaporation of the refrigerant accumulated in the cooler 28, and this time is set differently depending on the refrigerator model.

上記の動作状態において、圧縮機25が運転(ON)して冷却器29と冷却器28へ冷媒が流れて冷凍室7と冷蔵室5を冷却するモードが、冷凍冷蔵運転モードである。   In the above operating state, the mode in which the compressor 25 is operated (ON) and the refrigerant flows to the cooler 29 and the cooler 28 to cool the freezer compartment 7 and the refrigerator compartment 5 is the refrigerator-freezer operation mode.

そして、冷蔵室センサ41が所定の下限温度を検知するA時点において、電磁弁34が動作して冷媒通路39を閉じ、冷却器29の冷媒の供給は停止し冷媒は冷媒通路38から冷却器28へ流れる。   At time A when the refrigerator compartment sensor 41 detects a predetermined lower limit temperature, the solenoid valve 34 operates to close the refrigerant passage 39, supply of the refrigerant to the cooler 29 is stopped, and the refrigerant passes from the refrigerant passage 38 to the cooler 28. To flow.

これは、実質的に冷蔵室5の冷却運転を停止して冷凍室7の冷却運転状態であり、これを冷凍運転モードと称する。   This is a cooling operation state of the freezer compartment 7 with the cooling operation of the refrigerator compartment 5 substantially stopped, and this is referred to as a freezing operation mode.

加湿運転(又は潤い運転)モードは、冷凍運転モードの期間に行われる。   The humidification operation (or moist operation) mode is performed during the period of the refrigeration operation mode.

上記の動作状態において、送風機30の回転速度は、相対的に見れば、冷凍冷蔵運転モードの期間よりも冷凍運転モードの期間を高速回転としている。   In the above operation state, the rotation speed of the blower 30 is set to be higher in the refrigeration operation mode period than in the refrigeration operation mode period.

また、冷凍冷蔵運転モードから冷凍運転モードへの切り換え時点から遅延して送風機30の回転速度を上げている。   In addition, the rotational speed of the blower 30 is increased with a delay from the point of switching from the refrigeration operation mode to the refrigeration operation mode.

これは冷凍冷蔵運転モードから冷凍運転モードへ切り換えた後、冷凍室側冷却器28の温度が低下してから送風機30の回転速度を上げることが冷却効果から好ましく、また送風機30の回転速度が上がることによる騒音をなるだけ少なくするためである。   It is preferable from the cooling effect that the rotation speed of the blower 30 is increased after the temperature of the freezer compartment cooler 28 is lowered after switching from the refrigeration operation mode to the refrigeration operation mode, and the rotation speed of the blower 30 is increased. This is to reduce the noise caused by this as much as possible.

加湿運転(又は潤い運転)モードに入ったときから高速回転にする方法があるが、この実施形態では、加湿運転(又は潤い運転)モードT7の終了までの期間T4よりも加湿運転モードT7終了後の期間T5を高速回転としており、一つの実施例では、期間T4では毎分の回転速度(回転数)が1300、期間T5では毎分1500である。   Although there is a method of rotating at a high speed after entering the humidifying operation (or humid operation) mode, in this embodiment, after the humidifying operation mode T7 ends than the period T4 until the end of the humidifying operation (or humid operation) mode T7. In this embodiment, the rotation speed (number of rotations) per minute is 1300 in the period T4 and 1500 per minute in the period T5.

これは、加湿運転(又は潤い運転)モードT7の終了までの期間T4は冷却器28での冷媒蒸発温度が高いが、加湿運転モードT7終了後では冷媒は冷却器28のみへ流れている状態でもあり、冷却器28での蒸発温度の低下によって冷却器28による冷凍室7の冷却効果が向上するためである。   This is because the refrigerant evaporating temperature in the cooler 28 is high during the period T4 until the end of the humidifying operation (or moistening operation) mode T7, but after the humidifying operation mode T7, the refrigerant is flowing only to the cooler 28. This is because the cooling effect of the freezer compartment 7 by the cooler 28 is improved by the decrease of the evaporation temperature in the cooler 28.

また、圧縮機25のOFF後、冷凍室用冷却器28に溜まった冷媒の蒸発によって冷凍室7を冷却できるため、圧縮機25のOFF後、所定のT3時間、冷凍室用冷気循環送風
機30の運転を継続する技術手段を採用している。
In addition, since the freezer compartment 7 can be cooled by evaporation of the refrigerant accumulated in the freezer cooler 28 after the compressor 25 is turned off, the freezer compartment cold air circulating blower 30 is turned off for a predetermined time T3 after the compressor 25 is turned off. Adopting technical means to continue operation.

このT3時間では、一つの好ましい実施例では、送風機30の回転は毎分1300である。   In this T3 time, in one preferred embodiment, the rotation of the blower 30 is 1300 per minute.

本発明の加湿運転(又は潤い運転)について付加説明する。   The humidification operation (or moist operation) of the present invention will be additionally described.

通常の冷凍冷蔵運転モードにおいて、冷蔵室5もしくは冷蔵室用冷却器29が冷却によって温度が低下して所定の温度(上記の1.8℃)に到達すると、冷媒流路切換装置34によって冷蔵室用冷却器29への冷媒流路39を閉じる方法があるが、冷蔵室5もしくは冷蔵室用冷却器29が冷却によって所定の温度(上記の1.8℃)に到達する前、即ち、この温度よりも若干高い温度(例えば2.2℃)まで低下したとき、加湿運転(又は潤い運転)を開始する方法とすることもできる。   In the normal freezing / refrigeration operation mode, when the temperature of the refrigerator compartment 5 or the refrigerator for refrigerator compartment 29 is lowered by cooling and reaches a predetermined temperature (1.8 ° C. above), the refrigerant flow switching device 34 causes the refrigerator compartment to change. There is a method of closing the refrigerant flow path 39 to the cooler 29 for cooling, but before the refrigerating room 5 or the cooler 29 for refrigerating room reaches a predetermined temperature (1.8 ° C. above) by cooling, that is, this temperature. When the temperature drops to a slightly higher temperature (for example, 2.2 ° C.), a humidifying operation (or moistening operation) may be started.

この方法によって、従来の3分よりも長い時間(例えば5分乃至20分)の加湿運転(又は潤い運転)を行うことができるようになる。   This method makes it possible to perform a humidifying operation (or a moist operation) for a time longer than the conventional 3 minutes (for example, 5 to 20 minutes).

この時間は加湿運転(又は潤い運転)の開始温度の設定によって変化する。   This time varies depending on the setting of the start temperature of the humidifying operation (or moistening operation).

冷蔵室センサ41が加湿運転(又は潤い運転)の開始温度(上記の場合には2.2℃)を感知して冷媒流路切換装置34が動作し、冷蔵室用冷却器29への冷媒流路39を閉じるが、冷蔵室用冷却器29は熱慣性によってその温度は低下する。   The refrigerating room sensor 41 senses the start temperature (2.2 ° C. in the above case) of the humidifying operation (or moistening operation), and the refrigerant flow switching device 34 operates to supply the refrigerant flow to the refrigerating room cooler 29. Although the passage 39 is closed, the temperature of the refrigerator 29 for the refrigerator compartment decreases due to thermal inertia.

この場合、その熱慣性によって低下する温度は、所期の1.8℃にまで低下することが好ましく、冷蔵庫の種類に応じて、このような動作が達成できるように加湿運転(又は潤い運転)の開始温度を設定するのがよい。   In this case, the temperature lowered by the thermal inertia is preferably lowered to the desired 1.8 ° C., and depending on the type of the refrigerator, humidification operation (or moist operation) so that such an operation can be achieved. It is better to set the starting temperature.

本発明は、上記の構成によって、冷凍冷蔵運転モードの開始時に冷蔵室用冷却器温度が高いことによる冷凍室用冷却器への悪影響を抑制することができる。   According to the above configuration, the present invention can suppress adverse effects on the freezer cooler due to the high temperature of the refrigerator freezer at the start of the freezer refrigerating operation mode.

また、冷蔵室の温度が所定の下限温度の低下したとき、冷媒流路切換装置によって冷蔵室用冷却器への冷媒の流れをストップして冷凍室用冷却器のみに流し、冷蔵室用冷気循環送風機を運転して冷蔵室用冷却器の霜の融解によって冷蔵室を加湿するタイプに適用して効果あるものである。   Further, when the temperature of the refrigerating room decreases to a predetermined lower limit temperature, the refrigerant flow switching device stops the flow of the refrigerant to the refrigerating room cooler and flows only to the refrigerating room cooler. The present invention is effective when applied to a type in which a fan is operated to humidify the refrigerator compartment by melting frost of the refrigerator for the refrigerator compartment.

更に、冷凍室用送風機の回転速度を変化させて、冷凍室用冷却器が冷凍室へ有効に効果づけられるようにしている。   Furthermore, the rotation speed of the freezer blower is changed so that the freezer cooler is effectively applied to the freezer.

本発明は、上記実施形態に限定されず、本発明の技術的範囲を逸脱しない限り種種の変更が考えられ、それに係る種種の実施形態を包含するものである。   The present invention is not limited to the above-described embodiments, and various modifications can be considered without departing from the technical scope of the present invention, and the various embodiments according to the modifications are included.

本発明の実施形態に係る冷蔵庫の正面図である。It is a front view of the refrigerator which concerns on embodiment of this invention. 本発明の実施形態に係る図1の冷蔵庫の縦断側面である。It is a vertical side surface of the refrigerator of FIG. 1 which concerns on embodiment of this invention. 本発明の実施形態に係る冷蔵庫の冷蔵庫の冷媒回路図である。It is a refrigerant circuit figure of the refrigerator of the refrigerator which concerns on embodiment of this invention. 本発明の実施形態に係る冷蔵庫の制御構成図である。It is a control block diagram of the refrigerator which concerns on embodiment of this invention. 本発明の実施形態に係る冷蔵庫の制御タイムチャートである。It is a control time chart of the refrigerator which concerns on embodiment of this invention.

符号の説明Explanation of symbols

1……冷蔵庫本体
2……内箱
3……外箱
4……断熱材
5……冷蔵室
6……野菜室
7……冷凍室
8……区画壁
9……特定低温室
10…上冷凍室
11…下冷凍室
12…冷蔵室扉
13…野菜容器
14…野菜室扉
15…冷凍室容器
16…冷凍室容器
17…上冷凍室扉
18…下冷凍室扉
25…圧縮機
26…凝縮器
28…冷凍室用冷却器
29…冷蔵室用冷却器
30…冷凍室用冷気循環送風機
31…冷蔵室用冷気循環送風機
34…冷媒流路切換装置
38…冷凍室側冷媒通路
39…冷蔵室側冷媒通路
40…冷凍室センサ
41…冷蔵室センサ
44…除霜用電気ヒータ
45…除霜用電気ヒータ
46…制御装置
1 ... Refrigerator body 2 ... Inner box 3 ... Outer box 4 ... Insulation 5 ... Refrigerator room 6 ... Vegetable room 7 ... Freezer room 8 ... Division wall 9 ... Specific cold room 10 ... Upper freezer Chamber 11 ... Lower freezer compartment 12 ... Refrigerated compartment door 13 ... Vegetable container 14 ... Vegetable compartment door 15 ... Freezer compartment container 16 ... Freezer compartment container 17 ... Upper freezer compartment door 18 ... Lower freezer compartment door 25 ... Compressor 26 ... Condenser DESCRIPTION OF SYMBOLS 28 ... Refrigerating room cooler 29 ... Refrigerating room cooler 30 ... Refrigerating room cold air circulation blower 31 ... Refrigerating room cold air circulation blower 34 ... Refrigerant flow path switching device 38 ... Freezer room side refrigerant passage 39 ... Refrigerating room side refrigerant Passage 40 ... Freezer sensor 41 ... Refrigerator sensor 44 ... Defrosting electric heater 45 ... Defrosting electric heater 46 ... Control device

Claims (6)

冷蔵室と冷凍室を有し、前記冷蔵室と冷凍室に対してそれぞれ専用の冷蔵室用冷却器及び冷蔵室用冷気循環送風機と、冷凍室用冷却器及び冷凍室用冷気循環送風機を設け、圧縮機で圧縮され凝縮器を経た冷媒が前記冷蔵室用冷却器から前記冷凍室用冷却器へ流れて前記冷蔵室及び冷凍室を冷却する冷凍冷蔵運転モードから、前記冷蔵室もしくは前記冷蔵室用冷却器が冷却によって所定の温度に低下したとき前記冷蔵室用冷却器への冷媒流路を閉じて前記冷凍室用冷却器へ冷媒を流す冷凍運転モードへ切換わり、前記冷凍室の温度制御用センサが所定の下限温度を検出したとき前記圧縮機を停止する冷蔵庫において、
冷凍冷蔵運転モードの開始時に前記冷蔵室用冷却器温度が高いことによる前記冷凍室用冷却器への悪影響の抑制に有効な所定時間、前記圧縮機の運転開始から前記冷蔵室用冷気循環送風機が遅延して起動することを特徴とする冷蔵庫の運転制御装置。
A refrigerating room and a freezing room, each of which is provided with a dedicated refrigerating room cooler and a refrigerating room cold air circulation blower, a freezing room cooler and a freezing room cold air circulation blower, respectively. From the refrigerating / refrigeration operation mode in which the refrigerant compressed by the compressor and passed through the condenser flows from the refrigerating room cooler to the refrigerating room cooler to cool the refrigerating room and the freezing room, the refrigerating room or the refrigerating room When the cooler drops to a predetermined temperature due to cooling, the refrigerant flow path to the refrigerating room cooler is closed to switch to a freezing operation mode in which the refrigerant flows to the freezing room cooler, and the temperature of the freezing room is controlled. In the refrigerator that stops the compressor when the sensor detects a predetermined lower limit temperature,
The refrigeration room cool air circulation blower from the start of operation of the compressor for a predetermined time effective for suppressing adverse effects on the freezer cooler due to a high temperature of the refrigerator cooler at the start of the freezer operation mode. An operation control device for a refrigerator, which is activated with a delay.
冷蔵室と冷凍室を有し、前記冷蔵室と冷凍室に対してそれぞれ専用の冷蔵室用冷却器及び冷蔵室用冷気循環送風機と、冷凍室用冷却器及び冷凍室用冷気循環送風機を設け、圧縮機で圧縮され凝縮器を経た冷媒が前記冷蔵室用冷却器から前記冷凍室用冷却器へ流れて前記冷蔵室及び冷凍室を冷却する冷凍冷蔵運転モードから、前記冷蔵室もしくは前記冷蔵室用冷却器が冷却によって所定の温度に低下したとき冷媒流路切換装置によって前記冷蔵室用冷却器への冷媒流路を閉じて前記冷凍室用冷却器へ冷媒を流す冷凍運転モードへ切換わり、前記冷凍室の温度制御用センサが所定の下限温度を検出したとき前記圧縮機を停止する冷蔵庫において、
冷凍冷蔵運転モードの開始時に前記冷蔵室用冷却器温度が高いことによる前記冷凍室用冷却器への悪影響の抑制に有効な所定時間、前記圧縮機の運転開始から前記冷蔵室用冷気循環送風機が遅延して起動し、且つ前記冷媒流路切換装置によって切換制御されたとき所定時間運転されて前記冷蔵室用冷却器へ付着した霜の融解にて前記冷蔵室を加湿状態にする加湿運転モードとなることを特徴とする冷蔵庫の運転制御装置。
A refrigerating room and a freezing room, each of which is provided with a dedicated refrigerating room cooler and a refrigerating room cold air circulation blower, a freezing room cooler and a freezing room cold air circulation blower, respectively. From the refrigerating / refrigeration operation mode in which the refrigerant compressed by the compressor and passed through the condenser flows from the refrigerating room cooler to the refrigerating room cooler to cool the refrigerating room and the freezing room, the refrigerating room or the refrigerating room When the cooler is lowered to a predetermined temperature by cooling, the refrigerant flow switching device closes the refrigerant flow path to the refrigerator for the refrigerator compartment and switches to the refrigerating operation mode for flowing the refrigerant to the freezer cooler, In the refrigerator that stops the compressor when the temperature control sensor of the freezer detects a predetermined lower limit temperature,
The refrigeration room cool air circulation blower from the start of operation of the compressor for a predetermined time effective for suppressing adverse effects on the freezer cooler due to a high temperature of the refrigerator cooler at the start of the freezer operation mode. A humidifying operation mode in which the refrigeration chamber is activated by delaying and the refrigeration chamber is humidified by thawing of frost that has been operated for a predetermined time when switched by the refrigerant flow switching device and adhered to the refrigerator for the refrigeration chamber; An operation control device for a refrigerator.
冷蔵室と冷凍室を有し、前記冷蔵室と冷凍室に対してそれぞれ専用の冷蔵室用冷却器及び冷蔵室用冷気循環送風機と、冷凍室用冷却器及び冷凍室用冷気循環送風機を設け、圧縮機で圧縮され凝縮器を経た冷媒が前記冷蔵室用冷却器から前記冷凍室用冷却器へ流れて前記冷蔵室及び冷凍室を冷却する冷凍冷蔵運転モードから、前記冷蔵室もしくは前記冷蔵室用冷却器が冷却によって所定の温度に低下したとき冷媒流路切換装置によって前記冷蔵室用冷却器への冷媒流路を閉じて前記冷凍室用冷却器へ冷媒を流す冷凍運転モードへ切換わり、前記冷凍室の温度制御用センサが所定の下限温度を検出したとき前記圧縮機を停止する冷蔵庫において、
冷凍冷蔵運転モードの開始時に前記冷蔵室用冷却器温度が高いことによる前記冷凍室用冷却器への悪影響の抑制に有効な所定時間、前記圧縮機の運転開始から前記冷蔵室用冷気循環送風機が遅延して起動し、前記冷媒流路切換装置によって切換制御されたとき前記冷蔵室用冷気循環送風機を所定時間運転して前記冷蔵室用冷却器へ付着した霜の融解にて前記冷蔵室を加湿状態にする加湿運転モードとし、前記冷凍室用冷気循環送風機の運転を前記冷凍冷蔵運転モードの期間よりも前記冷凍運転モードの期間を高速回転とすることを特徴とする冷蔵庫の運転制御装置。
A refrigerating room and a freezing room, each of which is provided with a dedicated refrigerating room cooler and a refrigerating room cold air circulation blower, a freezing room cooler and a freezing room cold air circulation blower, respectively. From the refrigerating / refrigeration operation mode in which the refrigerant compressed by the compressor and passed through the condenser flows from the refrigerating room cooler to the refrigerating room cooler to cool the refrigerating room and the freezing room, the refrigerating room or the refrigerating room When the cooler is lowered to a predetermined temperature by cooling, the refrigerant flow switching device closes the refrigerant flow path to the refrigerator for the refrigerator compartment and switches to the refrigerating operation mode for flowing the refrigerant to the freezer cooler, In the refrigerator that stops the compressor when the temperature control sensor of the freezer detects a predetermined lower limit temperature,
The refrigeration room cool air circulation blower from the start of operation of the compressor for a predetermined time effective for suppressing adverse effects on the freezer cooler due to a high temperature of the refrigerator cooler at the start of the freezer operation mode. It starts with a delay, and when the switching control is performed by the refrigerant flow switching device, the cold air circulation blower for the cold room is operated for a predetermined time, and the cold room is humidified by melting frost adhering to the cold room cooler. An operation control device for a refrigerator, wherein the humidifying operation mode is set to a state, and the operation of the cold air circulation blower for the freezer is rotated at a higher speed in the period of the refrigerating operation mode than in the period of the refrigerating and refrigerating operation mode.
請求項1において、前記冷凍室用冷気循環送風機は前記冷蔵室用冷気循環送風機の遅延時間よりも短い時間前記圧縮機の運転開始時から遅延して起動することを特徴とする冷蔵庫の運転制御装置。 2. The operation control device for a refrigerator according to claim 1, wherein the cold air circulation blower for the freezer compartment is started with a delay from the start of operation of the compressor for a time shorter than a delay time of the cold air circulation blower for the refrigerator compartment. . 冷蔵室と冷凍室を有し、前記冷蔵室と冷凍室に対してそれぞれ専用の冷蔵室用冷却器及び冷蔵室用冷気循環送風機と、冷凍室用冷却器及び冷凍室用冷気循環送風機を設け、圧縮機で圧縮され凝縮器を経た冷媒が前記冷蔵室用冷却器から前記冷凍室用冷却器へ流れて前記冷蔵室及び冷凍室を冷却する冷凍冷蔵運転モードから、前記冷蔵室もしくは前記冷蔵室用冷却器が冷却によって所定の温度に低下したとき冷媒流路切換装置によって前記冷蔵室用冷却器への冷媒流路を閉じて前記冷凍室用冷却器へ冷媒を流す冷凍運転モードへ切換わり、前記冷凍室の温度制御用センサが所定の下限温度を検出したとき前記圧
縮機を停止する冷蔵庫において、
前記圧縮機の運転開始時から前記冷凍室用冷気循環送風機が遅延して起動し、前記冷蔵室用冷気循環送風機はそれよりも長い所定時間遅延して起動し、前記冷媒流路切換装置によって切換制御されたとき前記冷蔵室用冷気循環送風機を所定時間運転して前記冷蔵室用冷却器へ付着した霜の融解にて前記冷蔵室を加湿状態にする加湿運転モードとし、前記冷凍室用冷気循環送風機の運転を前記冷凍冷蔵運転モードの期間よりも前記冷凍運転モードの期間を高速回転とし前記圧縮機のOFF後前記冷凍室用冷却器に溜まった冷媒にて前記冷凍室を冷却する所定時間前記冷凍室用冷気循環送風機の運転を継続することを特徴とする冷蔵庫の運転制御装置。
A refrigerating room and a freezing room, each of which is provided with a dedicated refrigerating room cooler and a refrigerating room cold air circulation blower, a freezing room cooler and a freezing room cold air circulation blower, respectively. From the refrigerating / refrigeration operation mode in which the refrigerant compressed by the compressor and passed through the condenser flows from the refrigerating room cooler to the refrigerating room cooler to cool the refrigerating room and the freezing room, the refrigerating room or the refrigerating room When the cooler is lowered to a predetermined temperature by cooling, the refrigerant flow switching device closes the refrigerant flow path to the refrigerator for the refrigerator compartment and switches to the refrigerating operation mode for flowing the refrigerant to the freezer cooler, In the refrigerator that stops the compressor when the temperature control sensor of the freezer detects a predetermined lower limit temperature,
The cold air circulation blower for the freezer compartment starts with a delay from the start of operation of the compressor, and the cold air circulation blower for the freezer compartment starts with a delay longer than that, and is switched by the refrigerant flow switching device. When controlled, the refrigeration room cold air circulation blower is operated for a predetermined time to enter a humidification operation mode in which the refrigeration room is humidified by melting frost adhering to the cold room cooler, and the cold air circulation for the freezer room The period of the refrigerating operation mode is rotated at a higher speed than the period of the freezing / refrigerating operation mode, and the freezer compartment is cooled by the refrigerant accumulated in the freezer cooler after the compressor is turned off. An operation control device for a refrigerator, characterized in that the operation of the cold air circulation blower for the freezer is continued.
冷蔵室と冷凍室を有し、前記冷蔵室と冷凍室に対してそれぞれ専用の冷蔵室用冷却器及び冷蔵室用冷気循環送風機と、冷凍室用冷却器及び冷凍室用冷気循環送風機を設け、圧縮機で圧縮され凝縮器を経た冷媒が前記冷蔵室用冷却器から前記冷凍室用冷却器へ流れて前記冷蔵室及び冷凍室を冷却する冷凍冷蔵運転モードから、前記冷蔵室もしくは前記冷蔵室用冷却器が冷却によって所定の温度に低下したとき冷媒流路切換装置によって前記冷蔵室用冷却器への冷媒流路を閉じて前記冷凍室用冷却器へ冷媒を流す冷凍運転モードへ切換わり、前記冷凍室の温度制御用センサが所定の下限温度を検出したとき前記圧縮機を停止する冷蔵庫において、
前記冷凍室用冷気循環送風機の回転数を前記冷凍冷蔵運転モード時に比べ前記冷凍運転モード時に上げることを特徴する冷蔵庫の運転制御装置。
A refrigerating room and a freezing room, each of which is provided with a dedicated refrigerating room cooler and a refrigerating room cold air circulation blower, a freezing room cooler and a freezing room cold air circulation blower, respectively. From the refrigerating / refrigeration operation mode in which the refrigerant compressed by the compressor and passed through the condenser flows from the refrigerating room cooler to the refrigerating room cooler to cool the refrigerating room and the freezing room, the refrigerating room or the refrigerating room When the cooler is lowered to a predetermined temperature by cooling, the refrigerant flow switching device closes the refrigerant flow path to the refrigerator for the refrigerator compartment and switches to the refrigerating operation mode for flowing the refrigerant to the freezer cooler, In the refrigerator that stops the compressor when the temperature control sensor of the freezer detects a predetermined lower limit temperature,
An operation control device for a refrigerator, wherein the number of rotations of the cold air circulation blower for the freezer compartment is increased during the freezing operation mode as compared with the freezing / refrigeration operation mode.
JP2005365645A 2005-12-19 2005-12-19 Operation control device for refrigerator Pending JP2006125839A (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
JP2005365645A JP2006125839A (en) 2005-12-19 2005-12-19 Operation control device for refrigerator

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
JP2005365645A JP2006125839A (en) 2005-12-19 2005-12-19 Operation control device for refrigerator

Related Parent Applications (1)

Application Number Title Priority Date Filing Date
JP2000299543A Division JP3819693B2 (en) 2000-09-29 2000-09-29 Refrigerator operation control device

Publications (1)

Publication Number Publication Date
JP2006125839A true JP2006125839A (en) 2006-05-18

Family

ID=36720745

Family Applications (1)

Application Number Title Priority Date Filing Date
JP2005365645A Pending JP2006125839A (en) 2005-12-19 2005-12-19 Operation control device for refrigerator

Country Status (1)

Country Link
JP (1) JP2006125839A (en)

Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2009061121A2 (en) 2007-11-05 2009-05-14 Lg Electronics, Inc. Control method of refrigerator

Cited By (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2009061121A2 (en) 2007-11-05 2009-05-14 Lg Electronics, Inc. Control method of refrigerator
WO2009061121A3 (en) * 2007-11-05 2010-07-15 Lg Electronics, Inc. Control method of refrigerator
EP2217872A2 (en) * 2007-11-05 2010-08-18 LG Electronics Inc. Control method of refrigerator
EP2217872A4 (en) * 2007-11-05 2012-04-25 Lg Electronics Inc Control method of refrigerator
US8640470B2 (en) 2007-11-05 2014-02-04 Lg Electronics Inc. Control method of refrigerator

Similar Documents

Publication Publication Date Title
JP3738169B2 (en) Humidity control refrigerator
EP2578973B1 (en) Refrigerator and control method thereof
KR100681983B1 (en) Refrigerator
TWI529359B (en) refrigerator
JP2006266585A (en) Refrigerator
WO2018076583A1 (en) Refrigerator
CN105452785A (en) Refrigerator
WO2018076584A1 (en) Refrigerator
JP4076804B2 (en) refrigerator
JPH11311473A (en) Method for controlling refrigerator
JP2014044025A (en) Refrigerator
JP5417397B2 (en) refrigerator
JP2000258028A (en) Refrigerator
JP2007132571A (en) Refrigerator
JP6143458B2 (en) refrigerator
JP3819693B2 (en) Refrigerator operation control device
JP2006125839A (en) Operation control device for refrigerator
JP5931606B2 (en) refrigerator
JPH10288441A (en) Refrigerator
JP3711005B2 (en) Humidity control refrigerator
JP2003287331A (en) Refrigerator
JP2010281491A (en) Refrigerator
JP2003287330A (en) Refrigerator
JP2005076980A (en) Refrigerator
JP2007315662A (en) Refrigerator

Legal Events

Date Code Title Description
A621 Written request for application examination

Effective date: 20060808

Free format text: JAPANESE INTERMEDIATE CODE: A621

A131 Notification of reasons for refusal

Free format text: JAPANESE INTERMEDIATE CODE: A131

Effective date: 20071204

A02 Decision of refusal

Free format text: JAPANESE INTERMEDIATE CODE: A02

Effective date: 20080401