JP2014059100A - Refrigerator - Google Patents

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JP2014059100A
JP2014059100A JP2012204197A JP2012204197A JP2014059100A JP 2014059100 A JP2014059100 A JP 2014059100A JP 2012204197 A JP2012204197 A JP 2012204197A JP 2012204197 A JP2012204197 A JP 2012204197A JP 2014059100 A JP2014059100 A JP 2014059100A
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condenser
cooler
machine room
refrigerator
evaporating dish
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Mizuho Saito
瑞穂 齋藤
Zenichi Inoue
善一 井上
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Sharp Corp
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Sharp Corp
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Abstract

PROBLEM TO BE SOLVED: To provide a refrigerator which improves the cooling capacity and the evaporation capacity of defrosting water.SOLUTION: A refrigerator includes: a heat insulation box 3 which forms storage rooms 4, 5; a machine room 6 which is disposed below the heat insulation box 3; a cooler 35 which is disposed in a low temperature part of a refrigeration cycle and generates cooling air; a condenser 39 which is disposed in a high temperature part of the refrigeration cycle and is installed in the machine room 6; and an evaporation dish 16 which is disposed in the machine room 6 and recovers defrosting water of the cooler 35. The defrosting water of the cooler 35 is guided onto the condenser 39, travels along the condenser 39, and is recovered into the evaporation dish 16.

Description

本発明は機械室内に除霜水を回収する蒸発皿を備えた冷蔵庫に関する。   The present invention relates to a refrigerator provided with an evaporating dish for collecting defrosted water in a machine room.

従来の冷蔵庫は特許文献1に開示されている。この冷蔵庫は断熱材を充填した断熱箱体により複数の貯蔵室を形成した本体部を備えている。各貯蔵室の前面は断熱扉により開閉される。   A conventional refrigerator is disclosed in Patent Document 1. This refrigerator includes a main body part in which a plurality of storage chambers are formed by a heat insulating box filled with a heat insulating material. The front of each storage room is opened and closed by a heat insulating door.

貯蔵室の背後には冷気が流通する冷気通路が設けられ、冷気通路内には冷凍サイクルの低温部を形成する冷却器が配される。冷却器と熱交換により生成された冷気は貯蔵室に送出され、貯蔵室が冷却される。   A cool air passage through which cool air flows is provided behind the storage chamber, and a cooler that forms a low temperature part of the refrigeration cycle is disposed in the cool air passage. The cool air generated by heat exchange with the cooler is sent to the storage room, and the storage room is cooled.

本体部の後方下部には断熱箱体の下方に配される機械室が設けられる。機械室内には圧縮機、凝縮器及び蒸発皿が設けられる。圧縮機は背面から見て左側に配され、冷媒を流通させて冷凍サイクルを運転する。   A machine room disposed below the heat insulating box is provided in the lower rear portion of the main body. A compressor, a condenser, and an evaporating dish are provided in the machine room. The compressor is arranged on the left side when viewed from the back, and operates the refrigeration cycle by circulating the refrigerant.

凝縮器は背面から見て右側に設置され、冷凍サイクルの高温部に配される。蒸発皿は凝縮器の下方に配され、冷却器の除霜水を回収する。蒸発皿内の除霜水は機械室内の圧縮機及び凝縮器の発熱によって昇温され、大気中に回収される。   The condenser is installed on the right side when viewed from the back, and is disposed in the high temperature part of the refrigeration cycle. The evaporating dish is arranged below the condenser and collects defrost water from the cooler. The defrosted water in the evaporating dish is heated by the heat generated by the compressor and the condenser in the machine room and collected in the atmosphere.

特開2009−79778号公報JP 2009-79778 A

近年外形に対する内容積の拡大傾向となる有効内容積の増加と省エネルギーの観点から凝縮器は貯蔵室内への熱侵入の低減を含め、断熱箱体間口からの交代などで小型化されてきている。   In recent years, condensers have been miniaturized by changing from the front of a heat insulating box, including the reduction of heat penetration into the storage chamber, from the viewpoint of increasing the effective internal volume, which tends to increase the internal volume with respect to the outer shape, and saving energy.

また、冷却器により作り出した冷気を送風装置により各貯蔵室へ分配、循環させて各貯蔵室を冷却する関節冷却方式の冷蔵庫において、その利点として冷却器に集中的に霜がつき、その霜を溶かすことにより、自動で霜取りができるため、現在は関節冷却方式が主流となっている。この時、冷却器から溶かされた霜は除霜水となり、冷却器下部に設けられた除霜水受けと排水経路を通り、蒸発皿へと導かれる。   In addition, in the joint cooling type refrigerator that cools each storage chamber by distributing and circulating the cold air created by the cooler to each storage chamber by a blower, the frost is concentrated on the cooler as an advantage. Since the defrosting can be done automatically by melting, the joint cooling method is currently the mainstream. At this time, the frost melted from the cooler becomes defrosted water, and is guided to the evaporating dish through the defrosted water receiver and the drainage path provided at the lower part of the cooler.

この時、冷却器は除霜により昇温されるため、除霜後に負荷が増大して大きな冷却能力を必要とする。しかしながら、上記従来の冷蔵庫によると、除霜後の負荷増大時に凝縮器の放熱量が不十分となり、冷却能力が低下する問題があった。また、限られた空間の機械室内に凝縮器や送風装置などを配置するが故に、蒸発皿の設置空間も限られたものになる。この為、蒸発皿の除霜水の蒸発能力の向上も必要不可欠になってくる。   At this time, since the temperature of the cooler is increased by defrosting, the load increases after defrosting and requires a large cooling capacity. However, according to the above conventional refrigerator, there is a problem that the heat radiation amount of the condenser becomes insufficient when the load increases after defrosting, and the cooling capacity decreases. Moreover, since a condenser, a blower, etc. are arrange | positioned in the machine room of the limited space, the installation space of an evaporating dish will also be limited. For this reason, it is indispensable to improve the evaporation capacity of the defrosting water in the evaporating dish.

本発明は冷却能力及び除霜水の蒸発能力を向上できる冷蔵庫を提供することを目的とする。   An object of this invention is to provide the refrigerator which can improve a cooling capability and the evaporation capability of defrost water.

上記目的を達成するために本発明の冷蔵庫は、貯蔵室を形成する断熱箱体と、前記断熱箱体の下方に配される機械室と、冷凍サイクルの低温部に配して冷気を生成する冷却器と、前記冷凍サイクルの高温部に配して前記機械室内に設置される凝縮器と、前記機械室内に配して前記冷却器の除霜水を回収する蒸発皿と、を備え、前記冷却器の除霜水が前記凝縮器上に導かれ、前記凝縮器を伝って前記蒸発皿に回収されることを特徴とする。   To achieve the above object, the refrigerator of the present invention generates cold air by arranging it in a heat insulation box forming a storage room, a machine room arranged below the heat insulation box, and a low temperature part of a refrigeration cycle. A cooler, a condenser disposed in the high temperature part of the refrigeration cycle and installed in the machine room, and an evaporating dish disposed in the machine room and collecting defrost water of the cooler, The defrosted water of the cooler is guided onto the condenser and is collected in the evaporating dish through the condenser.

また本発明は、上記構成の冷蔵庫において、前記凝縮器が冷媒管にフィンを固着して形成され、前記フィンを水平に配したことを特徴とする。   In the refrigerator having the above-described configuration, the condenser is formed by fixing fins to a refrigerant pipe, and the fins are arranged horizontally.

また本発明は、上記構成の冷蔵庫において、前記機械室内の前記蒸発皿の上方に送風ファンを設けたことを特徴とする。   Moreover, the present invention is characterized in that in the refrigerator configured as described above, a blower fan is provided above the evaporating dish in the machine room.

本発明によると、冷却器の除霜水が凝縮器上に導かれ、凝縮器を伝って蒸発皿に回収されるため、除霜水の潜熱により凝縮器を放熱させることができる。これにより、凝縮器の放熱量を大きくし、冷蔵庫の冷却能力及び除霜水の蒸発能力を向上することができる。   According to the present invention, the defrost water of the cooler is guided onto the condenser and is collected in the evaporating dish through the condenser, so that the condenser can be dissipated by the latent heat of the defrost water. Thereby, the thermal radiation amount of a condenser can be enlarged and the cooling capability of a refrigerator and the evaporation capability of defrost water can be improved.

本発明の実施形態の冷蔵庫を示す側面断面図Side surface sectional drawing which shows the refrigerator of embodiment of this invention 本発明の実施形態の冷蔵庫の冷凍サイクルを示すサイクル図The cycle figure which shows the refrigerating cycle of the refrigerator of embodiment of this invention 本発明の実施形態の冷蔵庫の機械室を示す斜視図The perspective view which shows the machine room of the refrigerator of embodiment of this invention

(第1実施形態)
以下に本発明の実施形態を図面を参照して説明する。図1は一実施形態の冷蔵庫1を示す側面断面図を示している。冷蔵庫1は断熱材を充填した断熱箱体3を有する本体部2を備える。本体部2の上部には冷蔵室4が設けられ、冷蔵室4の下方には冷凍室5が設けられる。
(First embodiment)
Embodiments of the present invention will be described below with reference to the drawings. FIG. 1 is a side sectional view showing a refrigerator 1 according to an embodiment. The refrigerator 1 includes a main body 2 having a heat insulating box 3 filled with a heat insulating material. A refrigeration room 4 is provided at the upper part of the main body 2, and a freezing room 5 is provided below the refrigeration room 4.

冷蔵室4及び冷凍室5の前面は断熱扉4a、5aによりそれぞれ開閉される。本体部2の後方下部には断熱箱体3の下方に配される機械室6が設けられる。機械室6には冷凍サイクルを運転する圧縮機31が配置される。   The front surfaces of the refrigerator compartment 4 and the freezer compartment 5 are opened and closed by heat insulating doors 4a and 5a, respectively. A machine room 6 disposed below the heat insulating box 3 is provided in the lower rear portion of the main body 2. A compressor 31 for operating the refrigeration cycle is disposed in the machine room 6.

冷凍室5の背後には冷気が流通する冷気通路7が設けられる。冷気通路7は冷凍室5内に臨む吐出口7a及び戻り口7bが開口する。冷気通路7には冷凍サイクルの低温部となる冷却器35が配される。   A cool air passage 7 through which cool air flows is provided behind the freezer compartment 5. The cool air passage 7 has a discharge port 7 a and a return port 7 b that face the freezer compartment 5. The cool air passage 7 is provided with a cooler 35 serving as a low temperature part of the refrigeration cycle.

冷却器35の上方には冷気送風ファン9が配され、冷却器35の下方には冷却器35を除霜する除霜ヒータ37が配される。除霜ヒータ37の下方にはドレンパイプ38が設けられる。ドレンパイプ38は機械室6と連通し、ドレンパイプ38は機械室6内に配された蒸発皿16(図3参照)に除霜水を導く。   A cool air blower fan 9 is disposed above the cooler 35, and a defrost heater 37 that defrosts the cooler 35 is disposed below the cooler 35. A drain pipe 38 is provided below the defrost heater 37. The drain pipe 38 communicates with the machine room 6, and the drain pipe 38 guides defrost water to the evaporating dish 16 (see FIG. 3) disposed in the machine room 6.

冷蔵室4の背後にはダンパ(不図示)を介して冷気通路7に連通する冷気通路8が設けられる。冷気通路8には冷蔵室4内に臨む吐出口8aが開口する。また、冷蔵室4と冷気通路7の冷却器35の上流側とを連通させる連通路(不図示)が設けられる。   A cold air passage 8 communicating with the cold air passage 7 via a damper (not shown) is provided behind the refrigerator compartment 4. A discharge port 8 a facing the inside of the refrigerator compartment 4 is opened in the cold air passage 8. In addition, a communication path (not shown) is provided that allows the refrigerator compartment 4 to communicate with the upstream side of the cooler 35 of the cool air path 7.

図2は冷蔵庫1の冷凍サイクルを示すサイクル図である。冷凍サイクルは圧縮機31の駆動によって冷媒管36内を矢印A方向に冷媒が流通して運転される。圧縮機31の冷媒流出側には第1凝縮器39、第2凝縮器40が順に接続される。後述するように第1凝縮器39は機械室6内に配され、第2凝縮器40は断熱箱体3の側面や背面に配される。   FIG. 2 is a cycle diagram showing the refrigeration cycle of the refrigerator 1. The refrigeration cycle is operated by circulating the refrigerant in the direction of arrow A in the refrigerant pipe 36 by driving the compressor 31. A first condenser 39 and a second condenser 40 are sequentially connected to the refrigerant outflow side of the compressor 31. As will be described later, the first condenser 39 is disposed in the machine room 6, and the second condenser 40 is disposed on the side surface and the back surface of the heat insulating box 3.

第2凝縮器40の冷媒流出側にはドライヤ33が配され、ドライヤ33の冷媒流出側にはバルブ34を介して第1経路44及び第2経路45に分岐する。第1経路44には順にヒートパイプ41及びキャピラリチューブ42が配され、第2経路45にはキャピラリチューブ43が配される。   A dryer 33 is disposed on the refrigerant outflow side of the second condenser 40, and the refrigerant outflow side of the dryer 33 branches into a first path 44 and a second path 45 via a valve 34. A heat pipe 41 and a capillary tube 42 are arranged in order on the first path 44, and a capillary tube 43 is arranged on the second path 45.

ヒートパイプ41は冷蔵室4の開口部4bの周面及び冷凍室5の開口部5bの周面に設けられ、ヒートパイプ41により周面に発生する結露の発生を防止する。第1、第2経路44、45の合流点の後段には冷却器35が接続され、冷却器35の冷媒流出側が圧縮機31に接続される。   The heat pipe 41 is provided on the peripheral surface of the opening 4 b of the refrigerator compartment 4 and the peripheral surface of the opening 5 b of the freezer compartment 5, and prevents the occurrence of condensation that occurs on the peripheral surface by the heat pipe 41. A cooler 35 is connected to the subsequent stage of the confluence of the first and second paths 44 and 45, and the refrigerant outflow side of the cooler 35 is connected to the compressor 31.

圧縮機31により圧縮された高温高圧の冷媒は後述する送風ファン32(図3参照)による強制対流によって第1凝縮器39で放熱しながら凝縮する。第1凝縮器39から流出した冷媒は自然対流によって第2凝縮器40で放熱しながら凝縮する。   The high-temperature and high-pressure refrigerant compressed by the compressor 31 is condensed while dissipating heat in the first condenser 39 by forced convection by a blower fan 32 (see FIG. 3) described later. The refrigerant flowing out of the first condenser 39 is condensed while radiating heat in the second condenser 40 by natural convection.

第2凝縮器40から流出した高温の冷媒はドライヤ33で水分が除去される。その後、バルブ34の切り替えによって冷媒が第1経路44または第2経路45を流通する。第1経路44を流通する冷媒はヒートパイプ41を通り、開口部4b、5bの周囲の結露を防止する。ヒートパイプ41を流出した冷媒はキャピラリチューブ42で膨張して低圧になる。また、第2経路45を流通する冷媒はキャピラリチューブ43で膨張して低圧になる。   Moisture is removed from the high-temperature refrigerant flowing out of the second condenser 40 by the dryer 33. Thereafter, the refrigerant flows through the first path 44 or the second path 45 by switching the valve 34. The refrigerant flowing through the first path 44 passes through the heat pipe 41 and prevents condensation around the openings 4b and 5b. The refrigerant flowing out of the heat pipe 41 expands in the capillary tube 42 and becomes a low pressure. Further, the refrigerant flowing through the second path 45 expands in the capillary tube 43 and becomes a low pressure.

キャピラリチューブ42又はキャピラリチューブ43から流出した低圧の冷媒は冷却器35に流入し、冷気通路7を流通する空気から吸熱しながら蒸発して低温のガス冷媒となる。そして、低温のガス冷媒が圧縮機31に戻り、冷媒が循環して冷凍サイクルが運転される。   The low-pressure refrigerant that has flowed out of the capillary tube 42 or the capillary tube 43 flows into the cooler 35 and evaporates while absorbing heat from the air flowing through the cold air passage 7 to become a low-temperature gas refrigerant. Then, the low-temperature gas refrigerant returns to the compressor 31, and the refrigerant circulates to operate the refrigeration cycle.

圧縮機31及び冷気送風ファン9の駆動によって冷気通路7を流通する空気と冷却器35とが熱交換して生成された冷気が吐出口7aから冷凍室5に吐出される。吐出口7aから吐出された冷気は冷凍室5内を流通し、戻り口7bを介して冷却器35に戻る。これにより、冷凍室5内の冷却が行われる。   Cold air generated by heat exchange between the air flowing through the cold air passage 7 and the cooler 35 by driving the compressor 31 and the cold air blowing fan 9 is discharged from the discharge port 7 a to the freezer compartment 5. The cold air discharged from the discharge port 7a flows through the freezer compartment 5 and returns to the cooler 35 via the return port 7b. Thereby, cooling in the freezer compartment 5 is performed.

ダンパ(不図示)が開かれると冷気通路7から冷気通路8に冷気が流入し、吐出口8aから冷蔵室4に吐出される。吐出口8aから吐出された冷気は冷蔵室4内を流通し、連通路(不図示)を介して冷却器35に戻る。これにより、冷蔵室4内の冷却が行われる。   When a damper (not shown) is opened, cold air flows from the cold air passage 7 into the cold air passage 8, and is discharged from the discharge port 8a to the refrigerator compartment 4. The cold air discharged from the discharge port 8a flows through the refrigerator compartment 4 and returns to the cooler 35 through a communication path (not shown). Thereby, the inside of the refrigerator compartment 4 is cooled.

図3は機械室6を背面から見た斜視図を示している。機械室6の両側壁6aには複数の通気孔(不図示)を有したグリル10が設けられる。機械室6内には背面から見て左から順に圧縮機31、第1凝縮器39、送風ファン32、バルブ34及びドライヤ33が配される。   FIG. 3 shows a perspective view of the machine room 6 as seen from the back. A grill 10 having a plurality of ventilation holes (not shown) is provided on both side walls 6 a of the machine room 6. In the machine room 6, a compressor 31, a first condenser 39, a blower fan 32, a valve 34 and a dryer 33 are arranged in order from the left when viewed from the back.

第1凝縮器39及び送風ファン32の下方には蒸発皿16が配される。蒸発皿16は3L程度の容量を持ち、機械室6の底面に固定される。第1凝縮器39は水冷部39a及び空冷部39bによって構成される。水冷部39aは圧縮機31から蛇行して延びる冷媒管36が蒸発皿16の内底面16aに接して配される部分である。   The evaporating dish 16 is disposed below the first condenser 39 and the blower fan 32. The evaporating dish 16 has a capacity of about 3 L and is fixed to the bottom surface of the machine room 6. The first condenser 39 includes a water cooling unit 39a and an air cooling unit 39b. The water cooling part 39 a is a part where a refrigerant pipe 36 extending meandering from the compressor 31 is disposed in contact with the inner bottom surface 16 a of the evaporating dish 16.

空冷部39bは水冷部39aの下流であって送風ファン32に面して配される。空冷部39bは冷媒管36に多数のフィン39cを固着して形成される。略矩形状から成るフィン39cはそれぞれが水平に配される。空冷部39bの下端39dは蒸発皿16の内底面16aに接して配される。下端のフィン39cは内底面16aに近接され、上端のフィン39cはドレンパイプ38(図1参照)の下端に近接する。   The air cooling part 39b is arranged downstream of the water cooling part 39a and facing the blower fan 32. The air cooling part 39 b is formed by fixing a large number of fins 39 c to the refrigerant pipe 36. The fins 39c each having a substantially rectangular shape are horizontally arranged. The lower end 39d of the air cooling unit 39b is disposed in contact with the inner bottom surface 16a of the evaporating dish 16. The fin 39c at the lower end is close to the inner bottom surface 16a, and the fin 39c at the upper end is close to the lower end of the drain pipe 38 (see FIG. 1).

除霜ヒータ37の駆動によって冷却器35の除霜運転が行われ、冷却器35が昇温される。除霜運転により発生する除霜水はドレンパイプ38を介して空冷部39bのフィン39c上に導かれ、各フィン39cを伝って蒸発皿16に回収される。空冷部39bの下端39d及び水冷部39aは蒸発皿16の内底面16aに接するため、蒸発皿16に回収された除霜水に浸漬される。また、フィン39cも除霜水によって浸漬されてもよい。   The defrosting operation of the cooler 35 is performed by driving the defrost heater 37, and the cooler 35 is heated. The defrost water generated by the defrosting operation is guided onto the fins 39c of the air cooling unit 39b through the drain pipe 38, and is collected in the evaporating dish 16 through the fins 39c. Since the lower end 39d of the air cooling unit 39b and the water cooling unit 39a are in contact with the inner bottom surface 16a of the evaporating dish 16, they are immersed in defrosted water collected in the evaporating dish 16. Moreover, the fin 39c may also be immersed with defrost water.

送風ファン32が駆動されると、機械室6の一方に配したグリル26の通気孔を介して機械室6内に外気が吸気される。機械室6に流入した空気によって第1凝縮器39の空冷部39b及び圧縮機31が冷却して放熱する。第1凝縮器39及び圧縮機31を冷却した空気は他方のグリル26の通気孔を介して排気される。   When the blower fan 32 is driven, outside air is sucked into the machine room 6 through the vent hole of the grille 26 disposed on one side of the machine room 6. The air flowing into the machine room 6 cools the air cooling unit 39b and the compressor 31 of the first condenser 39 to dissipate heat. The air that has cooled the first condenser 39 and the compressor 31 is exhausted through the vent hole of the other grille 26.

蒸発皿16内の除霜水は圧縮機31や第1凝縮器39の熱源による機械室6内の熱により蒸発して大気中に回収される。この時、第1凝縮器39の水冷部39a及び空冷部39bが除霜水の蒸発による潜熱によって放熱する。これにより、第1凝縮器39の放熱量を大きくすることができる。   The defrosted water in the evaporating dish 16 is evaporated by the heat in the machine chamber 6 by the heat source of the compressor 31 and the first condenser 39 and collected in the atmosphere. At this time, the water cooling unit 39a and the air cooling unit 39b of the first condenser 39 dissipate heat by latent heat due to evaporation of the defrost water. Thereby, the heat radiation amount of the first condenser 39 can be increased.

また、送風ファン32が蒸発皿16の上方近傍にあるため、送風ファン32の駆動により発生する空気の流れにより除霜水の蒸発が促進される。   Further, since the blower fan 32 is in the vicinity of the upper portion of the evaporating dish 16, evaporation of defrost water is promoted by the flow of air generated by driving the blower fan 32.

本実施形態によると、冷却器35の除霜水が第1凝縮器39(凝縮器)上に導かれ、第1凝縮器39の上部から伝って蒸発皿16に回収されるため、除霜水の潜熱により第1凝縮器39を放熱させることができる。これにより、冷却能力及び除霜水の蒸発能力を向上できる冷蔵庫1を提供できる。なお、除霜後の高負荷状態以外にも除霜水が存在する限りは放熱効率の改善が図れる。   According to the present embodiment, the defrost water from the cooler 35 is guided onto the first condenser 39 (condenser) and is collected from the upper portion of the first condenser 39 to the evaporating dish 16. The first condenser 39 can be dissipated by the latent heat. Thereby, the refrigerator 1 which can improve a cooling capability and the evaporation capability of defrost water can be provided. In addition, as long as defrost water exists other than the high load state after defrosting, the heat radiation efficiency can be improved.

また、第1凝縮器39が冷媒管にフィン39cを固着して形成され、フィン39cを水平に配したため、除霜水が導かれる面積を大きくして除霜水をフィン39cへ確実に導くことができる。   Further, since the first condenser 39 is formed by fixing the fins 39c to the refrigerant pipe, and the fins 39c are horizontally arranged, the area where the defrost water is guided is increased and the defrost water is reliably guided to the fins 39c. Can do.

また、機械室6内の蒸発皿16の上型に送風ファン32を設けたため、第1凝縮器39(凝縮器)及び圧縮機31を冷却できるとともに、送風ファン32の駆動により発生する空気の流れにより除霜水の蒸発が促進される。これにより蒸発皿16を小型化することができる。   Further, since the blower fan 32 is provided on the upper mold of the evaporating dish 16 in the machine room 6, the first condenser 39 (condenser) and the compressor 31 can be cooled, and the flow of air generated by driving the blower fan 32. This promotes evaporation of defrost water. Thereby, the evaporating dish 16 can be reduced in size.

本発明によると、機械室内に除霜水を回収する蒸発皿を備えた冷蔵庫に利用することができる。   According to this invention, it can utilize for the refrigerator provided with the evaporating dish which collects defrost water in a machine room.

1 冷蔵庫
2 本体部
3 断熱箱体
4 冷蔵室
5 冷凍室
6 機械室
6a 側壁
6b 通気孔
7、8 冷気通路
9 冷気送風ファン
16 蒸発皿
16a 内底面
26 グリル
31 圧縮機
32 送風ファン
33 ドライヤ
34 バルブ
35 冷却器
36 冷媒管
37 除霜ヒータ
38 ドレンパイプ
39 第1凝縮器
39a 水冷部
39b 空冷部
39c フィン
39d 下端
40 第2凝縮器
41 ヒートパイプ
42、43 キャピラリチューブ
44 第1経路
45 第2経路
DESCRIPTION OF SYMBOLS 1 Refrigerator 2 Main body part 3 Heat insulation box 4 Refrigeration room 5 Freezing room 6 Machine room 6a Side wall 6b Vent hole 7, 8 Cold air passage 9 Cold air ventilation fan 16 Evaporating dish 16a Inner bottom surface 26 Grill 31 Compressor 32 Blower fan 33 Dryer 34 Valve 35 cooler 36 refrigerant pipe 37 defrost heater 38 drain pipe 39 first condenser 39a water cooling part 39b air cooling part 39c fin 39d lower end 40 second condenser 41 heat pipes 42, 43 capillary tube 44 first path 45 second path

Claims (3)

貯蔵室を形成する断熱箱体と、
前記断熱箱体の下方に配される機械室と、
冷凍サイクルの低温部に配して冷気を生成する冷却器と、
前記冷凍サイクルの高温部に配して前記機械室内に設置される凝縮器と、
前記機械室内に配して前記冷却器の除霜水を回収する蒸発皿と、
を備え、前記冷却器の除霜水が前記凝縮器上に導かれ、前記凝縮器を伝って前記蒸発皿に回収されることを特徴とする冷蔵庫。
A heat insulating box forming a storage room;
A machine room arranged below the heat insulation box,
A cooler that generates cold air in the low temperature part of the refrigeration cycle;
A condenser placed in the high temperature part of the refrigeration cycle and installed in the machine room;
An evaporating dish arranged in the machine room and collecting defrost water of the cooler;
The defrost water of the said cooler is led on the said condenser, goes through the said condenser, and is collect | recovered by the said evaporating dish, The refrigerator characterized by the above-mentioned.
前記凝縮器が冷媒管にフィンを固着して形成され、前記フィンを水平に配したことを特徴とする請求項1に記載の冷蔵庫。   The refrigerator according to claim 1, wherein the condenser is formed by fixing fins to a refrigerant pipe, and the fins are arranged horizontally. 前記機械室内の前記蒸発皿の上方に送風ファンを設けたことを特徴とする請求項1又は2に記載の冷蔵庫。   The refrigerator according to claim 1 or 2, wherein a blower fan is provided above the evaporating dish in the machine room.
JP2012204197A 2012-09-18 2012-09-18 Refrigerator Pending JP2014059100A (en)

Priority Applications (1)

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JP2012204197A JP2014059100A (en) 2012-09-18 2012-09-18 Refrigerator

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JP2014059100A true JP2014059100A (en) 2014-04-03

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Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP2007078345A (en) * 2005-08-02 2007-03-29 Matsushita Electric Ind Co Ltd Refrigerator
JP2009079778A (en) * 2007-09-25 2009-04-16 Mitsubishi Electric Corp Refrigerator
JP2009186045A (en) * 2008-02-04 2009-08-20 Panasonic Corp Evaporator and condensing unit
JP2010054111A (en) * 2008-08-28 2010-03-11 Sharp Corp Integrated air conditioner

Patent Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP2007078345A (en) * 2005-08-02 2007-03-29 Matsushita Electric Ind Co Ltd Refrigerator
JP2009079778A (en) * 2007-09-25 2009-04-16 Mitsubishi Electric Corp Refrigerator
JP2009186045A (en) * 2008-02-04 2009-08-20 Panasonic Corp Evaporator and condensing unit
JP2010054111A (en) * 2008-08-28 2010-03-11 Sharp Corp Integrated air conditioner

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