JP2014238181A - Refrigerator - Google Patents

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JP2014238181A
JP2014238181A JP2013119490A JP2013119490A JP2014238181A JP 2014238181 A JP2014238181 A JP 2014238181A JP 2013119490 A JP2013119490 A JP 2013119490A JP 2013119490 A JP2013119490 A JP 2013119490A JP 2014238181 A JP2014238181 A JP 2014238181A
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cooling chamber
refrigerator
suction port
temperature
cold air
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JP6145639B2 (en
Inventor
亜有子 宮坂
Ayuko Miyasaka
亜有子 宮坂
堀尾 好正
Yoshimasa Horio
好正 堀尾
克則 堀井
Katsunori Horii
克則 堀井
中西 和也
Kazuya Nakanishi
和也 中西
平井 剛樹
Tsuyoki Hirai
剛樹 平井
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Panasonic Corp
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Panasonic Corp
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Priority to CN201490000783.7U priority patent/CN205482060U/en
Priority to DE212014000135.8U priority patent/DE212014000135U1/en
Priority to PCT/JP2014/003031 priority patent/WO2014196210A1/en
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Abstract

PROBLEM TO BE SOLVED: To provide a refrigerator with high cooling capacity by suppressing mutual interference of a plurality of streams of return cold air which solves the problem in which, in a conventional structure, the cooling capacity is deteriorated as a plurality of streams of return cold air joining in a cooling chamber inhibit air streams with each other and decrease air quantity circulating in the refrigerator.SOLUTION: In a refrigerator, a freezing chamber suction port 56 is provided in front of a cooling chamber 43, a high temperature suction port 58 is provided at the back of the cooling chamber 43, and the freezing chamber suction port 56 is located lower than the high temperature suction port 58. Thus, even when return cold air flows into the cooling chamber 43 simultaneously from back and front, the air quantity circulating in the refrigerator can be increased by suppressing mutual interference by deviating in a vertical direction, so that cooling capacity can be improved.

Description

本発明は省エネ効果の高い冷蔵庫の構造に関するものである。   The present invention relates to a refrigerator structure having a high energy saving effect.

図5は従来の冷蔵庫の冷却室の断面図である。   FIG. 5 is a cross-sectional view of a cooling chamber of a conventional refrigerator.

図5に示すように、冷蔵庫10には複数の貯蔵室があり、最下部に冷凍室11が配置されている。冷凍室11の背面には内部に冷却器12と送風機13を有し冷気を生成、送風する冷却室14が設けられている。冷却器12で生成された冷気は、送風機13により強制的に各貯蔵室へ送られる。一部は冷気吐出口15を通り冷凍室11へ送られ、一部は高温吐出風路16を通り、冷凍室11上方に設けられた野菜室17や冷蔵室(図示せず)へ送られる。   As shown in FIG. 5, the refrigerator 10 has a plurality of storage rooms, and a freezing room 11 is arranged at the bottom. On the back surface of the freezer compartment 11, there is provided a cooler compartment 14 that has a cooler 12 and a blower 13 inside to generate and blow cool air. The cold air generated by the cooler 12 is forcibly sent to each storage room by the blower 13. A part is sent to the freezer compartment 11 through the cold discharge port 15, and a part is sent to the vegetable compartment 17 and the refrigerator compartment (not shown) provided above the freezer compartment 11 through the high temperature discharge air passage 16.

冷凍室11を冷却した冷気は冷凍室戻り口18から、冷蔵室、野菜室17を冷却した冷気は順に戻り口19と高温戻り風路20とを通過し高温吸込み口21から、冷却室14へ帰還し再び冷却器12により冷却される。このとき、冷却器12から冷気生成に使われず背面へ漏れ出た冷気は、高温戻り風路20を流れる比較的温かい戻り冷気に吸収されるため、冷蔵庫10の背面から外気へ熱リークさせることなく冷却器12の冷気を強制的に冷却室14へ返還させることで消費電力量を低減することができる。(例えば、特許文献1参照)。   The cold air that has cooled the freezer compartment 11 passes from the freezer compartment return port 18, and the cold air that has cooled the refrigerator compartment and the vegetable compartment 17 sequentially passes through the return port 19 and the high temperature return air passage 20, and then passes from the high temperature inlet 21 to the cooling chamber 14. It returns and is cooled again by the cooler 12. At this time, the cool air leaked from the cooler 12 to the back without being used to generate cool air is absorbed by the relatively warm return cold flowing through the high-temperature return air passage 20, so that heat does not leak from the back of the refrigerator 10 to the outside air. Power consumption can be reduced by forcibly returning the cool air of the cooler 12 to the cooling chamber 14. (For example, refer to Patent Document 1).

特開2012−159239号公報JP 2012-159239 A

しかしながら、上記従来の構成では、冷却器12下方において冷凍室11からの戻り冷気は後向きの風速が大きく、野菜室17や冷蔵室からの戻り冷気は前向きの風速が大きいため、お互いの流れを阻害し合い庫内を循環する風量を減少させることにより、冷却能力を低下させるという問題があった。   However, in the above-described conventional configuration, the return cold air from the freezer compartment 11 below the cooler 12 has a large backward wind speed, and the return cold air from the vegetable compartment 17 and the refrigerator compartment has a large forward wind speed, thereby obstructing the flow of each other. There has been a problem that the cooling capacity is lowered by reducing the amount of air circulating in the pallet chamber.

本発明は、従来の課題を解決するもので、複数の戻り冷気の相互干渉を抑制することで庫内を循環する風量を増やし冷却能力の高い冷蔵庫を提供することを目的とする。   This invention solves the conventional subject, and it aims at providing the refrigerator with high cooling capacity by increasing the air volume which circulates the inside of a store | warehouse | chamber by suppressing the mutual interference of several return cold air.

上記従来の課題を解決するために、本発明の冷蔵庫は、冷気を生成する冷却器と、前記冷却器で生成された冷気を強制的に循環させる送風機と、前記冷却器および送風機とを収める冷却室と、前記冷却室を背面に備える低温貯蔵室と、前記低温貯蔵室と温度帯の異なる少なくとも一つの高温貯蔵室と、前記低温貯蔵室からの低温戻り冷気を前記冷却室へ導入する低温吸込み口と、前記高温貯蔵室からの高温戻り冷気を前記冷却室へ導入する高温吸込み口とを備え、前記低温吸込み口は前記冷却室前面に、前記高温吸込み口は前記冷却室背面に設けられ、前記低温吸込み口は前記高温吸込み口よりも下方に位置することを特徴とする。   In order to solve the above-described conventional problems, the refrigerator of the present invention includes a cooler that generates cold air, a blower that forcibly circulates the cold air generated by the cooler, and a cooling device that houses the cooler and the blower. A cold storage room having a cooling chamber at the back, at least one high temperature storage room having a temperature range different from that of the low temperature storage room, and low temperature suction for introducing low temperature return cold air from the low temperature storage room into the cooling room A high-temperature intake port for introducing high-temperature return cold air from the high-temperature storage chamber into the cooling chamber, the low-temperature intake port is provided on the front surface of the cooling chamber, and the high-temperature intake port is provided on the back surface of the cooling chamber, The low temperature suction port is located below the high temperature suction port.

これにより、後向きの速度が大きい低温戻り冷気と前向きの速度が大きい高温戻り冷気は、上下方向にずれることで相互干渉を抑制し庫内を循環する風量を大きくすることがで
きるため、より冷却能力を向上することができる。また、最も大きな冷却効果が必要となる低温貯蔵室からの冷気をより下方から冷却室へ戻すことで、低温戻り冷気が冷却器を通過する距離が長くなり熱交換量を増やすことで更に冷却能力を向上させることができる。
As a result, the low-temperature return cold air having a large backward speed and the high-temperature return cold air having a large forward speed can be prevented from mutual interference by shifting in the vertical direction, and the amount of air circulating in the warehouse can be increased. Can be improved. In addition, by returning the cool air from the low temperature storage room, which requires the greatest cooling effect, from the lower part to the cooling room, the distance that the low temperature return cold air passes through the cooler becomes longer and the heat exchange amount is increased to further increase the cooling capacity. Can be improved.

本発明の冷蔵庫は、冷却室内での複数の戻り冷気の相互干渉を抑制することで、庫内を循環する風量を大きくすることで冷却能力の高い冷蔵庫を提供できる。   The refrigerator of the present invention can provide a refrigerator with high cooling capacity by suppressing the mutual interference of a plurality of return cold air in the cooling chamber, thereby increasing the amount of air circulating in the refrigerator.

本発明の実施の形態1における冷蔵庫の縦断面図The longitudinal cross-sectional view of the refrigerator in Embodiment 1 of this invention 本発明の実施の形態1における冷却室の縦断面図1 is a longitudinal sectional view of a cooling chamber in Embodiment 1 of the present invention. 本発明の実施の形態2における冷蔵庫の縦断面図Longitudinal sectional view of the refrigerator in the second embodiment of the present invention 図3におけるA−A’正面図A-A 'front view in FIG. 従来の冷蔵庫の冷却室の縦断面図Longitudinal sectional view of the cooling chamber of a conventional refrigerator

第1の発明は、冷気を生成する冷却器と、前記冷却器で生成された冷気を強制的に循環させる送風機と、前記冷却器および送風機とを収める冷却室と、前記冷却室を背面に備える低温貯蔵室と、前記低温貯蔵室と温度帯の異なる少なくとも一つの高温貯蔵室と、前記低温貯蔵室からの低温戻り冷気を前記冷却室へ導入する低温吸込み口と、前記高温貯蔵室からの高温戻り冷気を前記冷却室へ導入する高温吸込み口とを備える冷蔵庫において、前記低温吸込み口は前記冷却室前面に、前記高温吸込み口は前記冷却室背面に設けられ、前記低温吸込み口は前記高温吸込み口よりも下方に位置することを特徴とする。これにより、後向きの速度が大きい低温戻り冷気と前向きの速度が大きい高温戻り冷気は、上下方向にずれることで相互干渉を抑制し庫内を循環する風量を大きくすることができるため、より冷却能力を向上することができる。また、最も大きな冷却効果が必要となる低温貯蔵室からの冷気をより下方から冷却室へ戻すことで、低温戻り冷気が冷却器を通過する距離が長くなり熱交換量を増やすことで更に冷却能力を向上させることができる。   1st invention is equipped with the cooler which produces | generates cold air, the air blower which forcibly circulates the cold air produced | generated by the said cooler, the cooling chamber which accommodates the said cooler and an air blower, and the said cooling chamber in a back surface A low-temperature storage room, at least one high-temperature storage room having a temperature range different from that of the low-temperature storage room, a low-temperature inlet for introducing low-temperature return cold air from the low-temperature storage room into the cooling room, and a high temperature from the high-temperature storage room A refrigerator comprising a high temperature inlet for introducing return cold air into the cooling chamber, wherein the low temperature inlet is provided at the front of the cooling chamber, the high temperature inlet is provided at the back of the cooling chamber, and the low temperature inlet is the high temperature inlet. It is located below the mouth. As a result, the low-temperature return cold air having a large backward speed and the high-temperature return cold air having a large forward speed can be prevented from mutual interference by shifting in the vertical direction, and the amount of air circulating in the warehouse can be increased. Can be improved. In addition, by returning the cool air from the low temperature storage room, which requires the greatest cooling effect, from the lower part to the cooling room, the distance that the low temperature return cold air passes through the cooler becomes longer and the heat exchange amount is increased to further increase the cooling capacity. Can be improved.

第2の発明は、第1の発明において、前記冷却室の底面は前記低温吸込み口から下方に傾斜して構成されることを特徴とする。これにより、後向きの速度を持った前記低温戻り冷気は、前記冷却室底面に沿って下方へ流れた後、背面に沿って上昇させることができるため、前記高温吸込み口前方において低温戻り冷気の速度が上向きとなり、前記高温戻り冷気とスムーズに合流できるため、より風量を増やし冷却能力を向上させることができる。   According to a second aspect, in the first aspect, the bottom surface of the cooling chamber is configured to be inclined downward from the low temperature suction port. As a result, the low-temperature return cold air having a backward speed can flow up along the back surface after flowing down along the bottom surface of the cooling chamber, so that the speed of the low-temperature return cold air in front of the high-temperature intake port Can be smoothly merged with the high-temperature return cold air, so that the air volume can be increased and the cooling capacity can be improved.

第3の発明は、第1または第2の発明において、前記低温吸込み口は上流側に低温戻り風路を備え、前記低温戻り風路の入り口は前記低温吸込み口よりも上方に位置し、前記低温戻り風路の入り口の面積は前記低温吸込み口面積よりも小さいことを特徴とする。これにより、前記低温戻り風路を通った冷気は、下向きに傾斜している風路に従って流れてくるため、前記低温吸込み口において低温戻り冷気は下向きの速度を有する。従って、低温戻り冷気は前記冷却室底面および背面に沿って流れ易くなり、高温戻り冷気とよりスムーズに合流できる。また、前記低温吸込み口は低温戻り風路の入り口よりも大きいため、低温吸込み口での圧力損失を低減することができる。   According to a third invention, in the first or second invention, the low temperature suction port includes a low temperature return air passage on the upstream side, and an inlet of the low temperature return air passage is located above the low temperature suction port, The area of the inlet of the low-temperature return air passage is smaller than the area of the low-temperature inlet. As a result, the cold air that has passed through the low temperature return air passage flows along the air passage that is inclined downward, so that the low temperature return cold air has a downward speed at the low temperature inlet. Therefore, the low-temperature return cold air easily flows along the bottom and back surfaces of the cooling chamber, and can merge with the high-temperature return cold air more smoothly. Further, since the low temperature suction port is larger than the entrance of the low temperature return air passage, pressure loss at the low temperature suction port can be reduced.

第4の発明は、第1から第3のいずれかの発明において、前記冷却室は前記冷却器下方に霜や氷を溶かすための除霜ヒータを備え、冷蔵庫縦断面において、前記除霜ヒータから前記冷却室の底面までの距離の最大値は前記低温吸込み口の垂直方向の空間距離の最大値よりも大きく設定したことを特徴とする。これにより、除霜ヒータの下の空間を大きく確保できるため、低温戻り冷気は圧力損失を大きくすることなく前記除霜ヒータの下へ流れ
込み、除霜ヒータを中心にスムーズな方向転換をすることができ、高温戻り冷気とよりスムーズに合流できる。
According to a fourth aspect of the present invention, in any one of the first to third aspects, the cooling chamber includes a defrost heater for melting frost and ice below the cooler. The maximum value of the distance to the bottom surface of the cooling chamber is set to be larger than the maximum value of the spatial distance in the vertical direction of the low temperature suction port. As a result, a large space under the defrost heater can be secured, so that the low-temperature return cold air flows under the defrost heater without increasing the pressure loss, and can smoothly change the direction around the defrost heater. Yes, it can merge with hot return cold air more smoothly.

第5の発明は、第1から第4のいずれかの発明において、前記冷却室は前記冷却器下方に霜や氷を溶かすための除霜ヒータを備え、冷蔵庫縦断面において、前記除霜ヒータから前記冷却室の背面までの距離の最大値は前記低温吸込み口の垂直方向の空間距離の最大値よりも大きく設定したことを特徴とする。これにより、除霜ヒータと冷却室背面との間の空間を大きく確保できるため、冷却室底面に沿って流れ込んだ低温戻り冷気は圧力損失を大きくすることなく冷却室背面に沿って上昇することができ、高温戻り冷気とよりスムーズに合流できる。   According to a fifth invention, in any one of the first to fourth inventions, the cooling chamber includes a defrost heater for melting frost and ice below the cooler. The maximum value of the distance to the back surface of the cooling chamber is set larger than the maximum value of the vertical space distance of the low temperature suction port. As a result, a large space between the defrost heater and the cooling chamber back surface can be secured, so that the low temperature return cold air flowing along the bottom surface of the cooling chamber can rise along the back surface of the cooling chamber without increasing the pressure loss. Yes, it can merge with hot return cold air more smoothly.

以下、本発明の実施の形態について、図面を参照しながら説明するが、従来例または先に説明した実施の形態と同一構成については同一符号を付して、その詳細な説明は省略する。なお、この実施の形態によってこの発明が限定されるものではない。   DESCRIPTION OF EMBODIMENTS Hereinafter, embodiments of the present invention will be described with reference to the drawings. The same reference numerals are given to the same configurations as those of the conventional example or the embodiments described above, and detailed descriptions thereof will be omitted. The present invention is not limited to the embodiments.

(実施の形態1)
図1は、本発明の実施の形態1における冷蔵庫の縦断面図、図2は、本発明の実施の形態1における冷却室の縦断面図である。
(Embodiment 1)
FIG. 1 is a longitudinal sectional view of a refrigerator according to Embodiment 1 of the present invention, and FIG. 2 is a longitudinal sectional view of a cooling chamber according to Embodiment 1 of the present invention.

図1および2において、冷蔵庫30の断熱箱体31は主に鋼板を用いた外箱32とABSなどの樹脂で成型された内箱33とで構成され、その内部には断熱材として例えば硬質発泡ウレタンなどの発泡断熱材34が充填、周囲と断熱され、複数の貯蔵室に区分されている。   1 and 2, a heat insulating box 31 of a refrigerator 30 is mainly composed of an outer box 32 using a steel plate and an inner box 33 molded of a resin such as ABS, and the inside thereof is, for example, a hard foam as a heat insulating material. A foam insulation material 34 such as urethane is filled, insulated from the surroundings, and divided into a plurality of storage rooms.

複数の貯蔵室は、最上部に冷蔵室35、その冷蔵室35の下部に野菜室36、そして最下部に冷凍室37が配置されている。   The plurality of storage rooms have a refrigeration room 35 at the top, a vegetable room 36 at the bottom of the refrigeration room 35, and a freezing room 37 at the bottom.

冷蔵室35の前面開口部には冷蔵室ドア38、野菜室36の前面開口部には野菜室ドア39、冷凍室37の前面開口部には冷凍室ドア40が、それぞれの前面開口部を開閉自在に支持されている。   A refrigerator compartment door 38 is opened at the front opening of the refrigerator compartment 35, a vegetable compartment door 39 is opened at the front opening of the vegetable compartment 36, and a freezer compartment door 40 is opened and closed at the front opening of the freezer compartment 37. It is supported freely.

冷蔵室35は冷蔵保存のために凍らない温度を下限に通常1℃〜5℃とし、野菜室36は、3〜8℃まで設定することができる。冷凍室37は冷凍温度帯に設定されており、冷凍保存のために通常−22℃〜−15℃で設定されているが、冷凍保存状態の向上のために、例えば−30℃や−25℃の低温で設定されることもある。   The refrigerator compartment 35 is normally set to 1 ° C to 5 ° C at the lower limit of the temperature at which it is not frozen for refrigerated storage, and the vegetable compartment 36 can be set to 3 to 8 ° C. The freezer compartment 37 is set in a freezing temperature zone and is usually set at −22 ° C. to −15 ° C. for frozen storage, but for example, −30 ° C. or −25 ° C. to improve the frozen storage state. It may be set at a low temperature.

また、仕切壁である第一区画壁41によって野菜室36と冷凍室37とは上下に区画され、仕切壁である第二区画壁42によって冷蔵室35と野菜室36とは上下に区画されている。   Moreover, the vegetable compartment 36 and the freezer compartment 37 are divided up and down by the 1st division wall 41 which is a partition wall, and the refrigerator compartment 35 and the vegetable compartment 36 are divided up and down by the 2nd division wall 42 which is a partition wall. Yes.

また冷凍室37の背面には冷気を生成する冷却室43が設けられ、内部には冷却器44が配設されている。冷却室43は縦区画壁45によって冷凍室37と断熱区画されている。冷却器44の上方に生成された冷気を強制的に送風する送風機46が配置され、冷却器44の下方に、冷却器44に付着した霜や氷を除霜する除霜ヒータ47が設けられている。さらにその下部には除霜時に生じる除霜水を受けるためのドレンパン48、その最深部から庫外に貫通したドレンチューブ49が構成され、その下流側の庫外に蒸発皿50が構成されている。   A cooling chamber 43 for generating cool air is provided on the back of the freezing chamber 37, and a cooler 44 is provided inside. The cooling chamber 43 is insulated from the freezing chamber 37 by a vertical partition wall 45. A blower 46 that forcibly blows cool air generated above the cooler 44 is disposed, and a defrost heater 47 that defrosts frost and ice adhering to the cooler 44 is provided below the cooler 44. Yes. Furthermore, a drain pan 48 for receiving defrosted water generated at the time of defrosting, a drain tube 49 penetrating from the deepest part to the outside of the cabinet are configured at the lower part, and an evaporating dish 50 is configured outside the warehouse on the downstream side. .

除霜ヒータ47は、具体的にはガラス製のガラス管ヒータであり、特に冷媒が炭化水素系冷媒ガスである場合、防爆対応としてガラス管が2重に形成された2重ガラス管ヒータ
が採用されている。
Specifically, the defrost heater 47 is a glass tube heater made of glass, and in particular, when the refrigerant is a hydrocarbon-based refrigerant gas, a double glass tube heater in which glass tubes are formed in a double manner is adopted for explosion protection. Has been.

ドレンパン48は冷却室43の底面および背面の一部を構成している。底面は、除霜水をドレンチューブ49に集めるためにドレンチューブ49との接続部が最も低くなるよう構成されており、ドレンチューブ49との接続部において除霜ヒータ47から最も離れる(距離L)ことになる。背面はドレンパン48の貯水量が確保できる高さを超える高さまで立ち上がっており、底面と背面とのなす角は緩やかな曲面で構成される。   The drain pan 48 constitutes a part of the bottom surface and the back surface of the cooling chamber 43. The bottom surface is configured such that the connection portion with the drain tube 49 is the lowest in order to collect the defrost water in the drain tube 49, and is farthest from the defrost heater 47 at the connection portion with the drain tube 49 (distance L). It will be. The back surface rises to a height that exceeds the height at which the amount of water stored in the drain pan 48 can be secured, and the angle formed between the bottom surface and the back surface is a gently curved surface.

(縦区画壁の構成)
縦区画壁45は、冷凍室37の外殻をなす前区画壁45aと冷却室43の外殻をなす後区画壁45bとから構成される。前区画壁45aと後区画壁45bとの間の空間は各貯蔵室に向けて冷気を分岐させる分配風路51である。
(Configuration of vertical partition wall)
The vertical partition wall 45 includes a front partition wall 45 a that forms the outer shell of the freezing chamber 37 and a rear partition wall 45 b that forms the outer shell of the cooling chamber 43. A space between the front partition wall 45a and the rear partition wall 45b is a distribution air passage 51 that branches cold air toward each storage chamber.

前区画壁45aは、上方に冷凍室吐出口52を有し、分配風路51と冷凍室37とを連通している。下方には冷凍室37側へ突出した冷凍室戻り風路53を有し、冷凍室戻り風路53前面に設けられた入り口53aから冷却室43へ冷凍室37の戻り冷気を導入する。   The front partition wall 45 a has a freezer compartment discharge port 52 on the upper side, and communicates the distribution air passage 51 and the freezer compartment 37. There is a freezer return air passage 53 protruding downward from the freezer compartment 37 side, and the return cold air from the freezer compartment 37 is introduced into the cooling chamber 43 through an inlet 53a provided in front of the freezer return air passage 53.

分配風路51はまた、第一区画壁41内に設けられた高温吐出風路54に接続している。さらに高温吐出風路54は冷蔵室35および野菜室36と接続している。   The distribution air passage 51 is also connected to a high temperature discharge air passage 54 provided in the first partition wall 41. Further, the high temperature discharge air passage 54 is connected to the refrigerator compartment 35 and the vegetable compartment 36.

後区画壁45bは上方に送風機46を備え、下方には冷凍室戻り風路53と冷却室43とを区画するリブ55を有する。冷凍室戻り風路53をリブ55とドレンパン48とにより囲まれた領域が冷凍室吸込み口56であり、冷凍室戻り風路53と冷却室43とを連通する。   The rear partition wall 45 b includes a blower 46 on the upper side, and has a rib 55 that partitions the freezer return air passage 53 and the cooling chamber 43 on the lower side. A region surrounded by the freezing chamber return air passage 53 by the rib 55 and the drain pan 48 is a freezing chamber suction port 56, and the freezer compartment return air passage 53 and the cooling chamber 43 communicate with each other.

冷凍室吸込み口56の面積は、入り口53aの面積よりも大きくなるように構成される。また、ドレンチューブ49の中心を通る縦断面において、除霜ヒータ47とドレンチューブ49との距離Lは、同じ縦断面での冷凍室吸込み口56の高さHよりも大きくなるように構成される。また、冷却室43背面と除霜ヒータ47との距離Bも、冷凍室吸込み口56の高さHより大きくなるように構成される。   The area of the freezer compartment suction port 56 is configured to be larger than the area of the entrance 53a. Further, in the longitudinal section passing through the center of the drain tube 49, the distance L between the defrost heater 47 and the drain tube 49 is configured to be larger than the height H of the freezer compartment suction port 56 in the same longitudinal section. . Further, the distance B between the back surface of the cooling chamber 43 and the defrost heater 47 is also configured to be larger than the height H of the freezer compartment suction port 56.

冷凍室戻り風路53の底面は、ドレンパン48の一部により冷却室43の底面と続きで構成される。ドレンパン48は入り口53aの下端より始まり冷凍室吸込み口56下端を通りドレンチューブ49まで下向きに傾斜し、その後緩やかに上向きに転じ冷却室43の背面へと繋がる形状を有する。   The bottom surface of the freezing chamber return air passage 53 is constituted by a part of the drain pan 48 and the bottom surface of the cooling chamber 43. The drain pan 48 starts from the lower end of the inlet 53a, passes through the lower end of the freezing chamber suction port 56, inclines downward to the drain tube 49, and then gradually turns upward to connect to the back surface of the cooling chamber 43.

(戻り通路構成)
冷却器44の背面に高温戻り風路57が配置されている。第一区画壁41および第二区画壁42を通り、野菜室36と冷蔵室35とにそれぞれ連通しており、冷蔵室35と野菜室36を冷却した冷気が高温戻り風路57内で合流する。高温戻り風路57は下方に冷却室43と連通する高温吸込み口58を備える。高温吸込み口58は、冷却器44の下端近傍に設けられ、冷凍室吸込み口56よりも高い位置に構成される。
(Return passage configuration)
A high-temperature return air passage 57 is disposed on the back surface of the cooler 44. It passes through the first partition wall 41 and the second partition wall 42 and communicates with the vegetable compartment 36 and the refrigeration compartment 35, respectively, and the cold air that has cooled the refrigeration compartment 35 and the vegetable compartment 36 merges in the high-temperature return air passage 57. . The high temperature return air passage 57 includes a high temperature suction port 58 that communicates with the cooling chamber 43 below. The high temperature suction port 58 is provided near the lower end of the cooler 44 and is configured at a position higher than the freezer compartment suction port 56.

(作用・効果)
以上のように構成された冷蔵庫について、以下その動作、作用を説明する。
(Action / Effect)
About the refrigerator comprised as mentioned above, the operation | movement and an effect | action are demonstrated below.

冷却室43の冷却器44で生成された冷気の一部は送風機46によって分配風路51内前方へ強制的に送風される。冷凍室37は冷凍室吐出口52から吐出された冷気によって冷却され、冷気は縦区画壁45の下部に設けられた冷凍室戻り風路53を介して冷凍室吸
込み口56より冷却器44の下部に導かれ、冷却器44で熱交換されて、再び新鮮な冷気が送風機46によって循環を繰返す。これによって冷凍室37は冷凍室センサー(図示しない)の制御で適温に冷却される。
A part of the cold air generated by the cooler 44 in the cooling chamber 43 is forcibly blown forward by the blower 46 in the distribution air passage 51. The freezer compartment 37 is cooled by the cold air discharged from the freezer compartment discharge port 52, and the cold air is below the cooler 44 from the freezer compartment suction port 56 via the freezer return air passage 53 provided at the lower part of the vertical partition wall 45. Then, heat is exchanged in the cooler 44, and fresh cold air is circulated again by the blower 46. As a result, the freezer compartment 37 is cooled to an appropriate temperature under the control of a freezer sensor (not shown).

また、分配風路51内上方に吐出された冷気は第一区画壁41内の高温吐出風路54を経て冷蔵室35や野菜室36に吐出される。循環した冷気は冷蔵室35や野菜室36内の空気や貯蔵物に含まれる湿気を帯びた空気となって、高温戻り風路57を通り高温吸込み口58から冷却器44の下部に導かれて冷却器44と熱交換して、新鮮な冷気が再び送風機によって強制的に送風される。   Further, the cold air discharged upward in the distribution air passage 51 is discharged to the refrigerator compartment 35 and the vegetable compartment 36 through the high temperature discharge air passage 54 in the first partition wall 41. The circulated cold air becomes the air in the refrigerator compartment 35 and the vegetable compartment 36 and the humid air contained in the stored product, passes through the high temperature return air passage 57 and is led to the lower part of the cooler 44 through the high temperature suction port 58. Heat is exchanged with the cooler 44, and fresh cool air is forcibly blown again by the blower.

これによって、冷蔵室35や野菜室36は、冷却器44から離れた位置にあっても、送風機46によって冷気を強制的に循環させることで室内を設定温度に冷却することができる。   Thereby, even if the refrigerator compartment 35 and the vegetable compartment 36 are in the position away from the cooler 44, the room can be cooled to the set temperature by forcibly circulating the cool air by the blower 46.

また除霜ヒータ47は、除霜時に、ヒータ熱で冷却室43内および高温戻り風路57内を加熱できるので、結露や凍結を改善し防止することができ信頼性を高めることができる。   Further, since the defrost heater 47 can heat the inside of the cooling chamber 43 and the high temperature return air passage 57 with the heater heat at the time of defrosting, condensation and freezing can be improved and prevented, and reliability can be improved.

(戻り冷気の詳細説明)
ここで、送風機46から吐出された冷気が、冷蔵室35、野菜室36、冷凍室37の全ての貯蔵室を循環しているとき、冷却室43には冷凍室37からの戻り冷気と、冷蔵室35および野菜室36からの高温戻り冷気の2つの流れが同時に流れ込むことになる。
(Detailed explanation of the return cold)
Here, when the cool air discharged from the blower 46 circulates through all the storage rooms of the refrigerating room 35, the vegetable room 36, and the freezing room 37, the cooling room 43 returns the refrigerating air from the freezing room 37 and the refrigerating room. Two flows of hot return cold air from the chamber 35 and the vegetable chamber 36 will flow simultaneously.

冷凍室37からの戻り冷気は、入り口53aから冷凍室戻り風路53を通り、冷凍室吸込み口56から冷却室43へ入る。冷蔵室35および野菜室36からの高温戻り冷気は、高温戻り風路57を通り、高温吸込み口58から冷却室43へ入る。   The return cold air from the freezer compartment 37 passes through the freezer compartment return air passage 53 from the entrance 53 a and enters the cooling compartment 43 from the freezer compartment suction port 56. The high temperature return cold air from the refrigerator compartment 35 and the vegetable room 36 passes through the high temperature return air passage 57 and enters the cooling chamber 43 from the high temperature suction port 58.

このとき、冷凍室戻り冷気は、入り口53aより冷凍室吸込み口56が下方にあることから、冷凍室戻り風路53の底面を構成するドレンパン48に沿って下向きに冷却室43に流れ込む。さらに、冷凍室吸込み口56の高さよりも除霜ヒータ47とドレンパン48との距離Lや、冷却室43の背面との距離Bが大きいために、冷凍室戻り冷気は空間の広い除霜ヒータ47の下へ流れ込む。その後はそのまま冷却室43の底面を流れドレンパン48の形状に従って方向転換し、冷却室43の背面に沿って上向きに流れる。   At this time, the freezer return air flows downward into the cooling chamber 43 along the drain pan 48 constituting the bottom surface of the freezer return air passage 53 because the freezer inlet 56 is located below the inlet 53a. Furthermore, since the distance L between the defrost heater 47 and the drain pan 48 and the distance B between the rear surface of the cooling chamber 43 are larger than the height of the freezer inlet 56, the freezing chamber return cold air has a wide space. Flows down. After that, it flows through the bottom surface of the cooling chamber 43 as it is and changes direction according to the shape of the drain pan 48, and flows upward along the back surface of the cooling chamber 43.

冷蔵室35および野菜室36からの高温戻り冷気は、高温戻り風路57中を下向きに流れてくるが、高温戻り風路57の下面で前向きに方向転換し冷却室43の背面に設置された高温吸込み口58から冷却室43内に流れ込む。   The high-temperature return cold air from the refrigerator compartment 35 and the vegetable compartment 36 flows downward in the high-temperature return air passage 57, but is turned forward on the lower surface of the high-temperature return air passage 57 and installed on the back surface of the cooling chamber 43. It flows into the cooling chamber 43 from the high temperature suction port 58.

高温吸込み口58から出てきた高温戻り冷気は、冷却室43の背面に沿って上ってきた冷凍室戻り冷気と合流する。高温戻り冷気は上向きの冷凍室戻り冷気に押され、スムーズに上向きに方向転換し、冷凍室戻り冷気と一緒に冷却器44へ突入することができる。従って、冷凍室戻り冷気と高温戻り冷気の2つの流れが正面衝突しお互いに邪魔することがないため、2つの流れの風量を増やすことで冷却器44の熱交換量を増加させ、冷却能力を向上させることができる。   The high temperature return cold air that has come out of the high temperature suction port 58 merges with the freezer compartment return cold air that has risen along the back surface of the cooling chamber 43. The high temperature return cold air is pushed by the upward freezer return cold air, smoothly turns upward, and can enter the cooler 44 together with the freezer return cold air. Therefore, since the two flows of the freezer return cold air and the high temperature return cold air do not interfere with each other and interfere with each other, increasing the air volume of the two flows increases the heat exchange amount of the cooler 44 and increases the cooling capacity. Can be improved.

冷蔵庫30は3つの貯蔵室の中で冷凍室37を最も冷やす必要があるため、高温吐出風路54を開閉弁(図示せず)で閉じるなどすることで、冷凍室37のみに冷気を循環させる必要がある。送風機46から吐出された冷気が冷凍室37のみを循環しているとき、冷却室43には冷凍室37からの戻り冷気のみが流れ込むことになる。   Since the refrigerator 30 needs to cool the freezing room 37 most among the three storage rooms, the cold air is circulated only to the freezing room 37 by closing the high-temperature discharge air passage 54 with an open / close valve (not shown). There is a need. When the cool air discharged from the blower 46 circulates only in the freezer compartment 37, only the return cool air from the freezer compartment 37 flows into the cooler chamber 43.

このときも冷凍室戻り冷気は、全貯蔵室に冷気が循環しているときと同様に、入り口53aから冷凍室戻り風路53を通り、冷凍室吸込み口56から冷却室43へ入り、除霜ヒータ47の下を通りドレンパン48に沿って背面から冷却器44へ突入する。従って、冷凍室戻り冷気は冷却器44内を対角線上に流れることができ、熱交換距離を長く取ることができるため、熱交換量を増加し冷却能力を向上させることができる。   At this time, the freezing room return cold air passes through the freezing room return air passage 53 from the entrance 53a and enters the cooling room 43 through the freezing room suction port 56 as in the case where the cold air circulates in all the storage rooms. It passes under the heater 47 and enters the cooler 44 along the drain pan 48 from the back surface. Therefore, the freezer return cold air can flow diagonally in the cooler 44, and the heat exchange distance can be increased, so that the heat exchange amount can be increased and the cooling capacity can be improved.

さらに、冷却室43の前面に設置された吸込み口は冷凍室吸込み口56のみであるため冷凍室吸込み口56の幅を冷却器44の幅と同じまで広げることができる。従って、冷凍室37のみに冷気が循環しているときでも、冷却器44全体を使うことができ、冷却能力を更に向上させることができる。   Furthermore, since the suction port installed on the front surface of the cooling chamber 43 is only the freezing chamber suction port 56, the width of the freezing chamber suction port 56 can be expanded to the same as the width of the cooler 44. Therefore, even when the cold air is circulating only in the freezer compartment 37, the entire cooler 44 can be used, and the cooling capacity can be further improved.

また、冷凍室吸込み口は冷凍室戻り風路53の入り口53aよりも大きいため、ここでの圧力損失も抑制することができ、さらに風量を増加させることができる。   Moreover, since the freezer compartment suction inlet is larger than the entrance 53a of the freezer compartment return air path 53, the pressure loss here can also be suppressed and the air volume can be increased.

また、冷却器44によって冷却された冷気は熱伝達によってその周辺に広がるが、冷却器44の背面に設置された高温戻り風路57中を冷蔵室35や野菜室36からの戻り冷気が流れる際に、冷却器44から漏れ出した冷気を吸収し、再び冷却室43へ帰還させるため、冷蔵庫30の外への冷気漏れを抑制し、消費電力量を低減することができる。   In addition, the cold air cooled by the cooler 44 spreads around it by heat transfer, but when the return cold air flows from the refrigerator compartment 35 and the vegetable compartment 36 through the high temperature return air passage 57 installed on the back surface of the cooler 44. Furthermore, the cool air leaked from the cooler 44 is absorbed and returned to the cooling chamber 43 again, so that the cool air leakage to the outside of the refrigerator 30 can be suppressed and the power consumption can be reduced.

(まとめ)
以上のように、本実施の形態では、冷凍室吸込み口56は冷却室43前面に、高温吸込み口58は冷却室43背面に設けられ、冷凍室吸込み口56は高温吸込み口58よりも下方に位置することにより、後向きの速度が大きい冷凍室戻り冷気と前向きの速度が大きい高温戻り冷気は、上下方向にずれることで相互干渉を抑制し庫内を循環する風量を大きくすることができるため、より冷却能力を向上することができる。また、最も冷やす必要がある冷凍室37のみに冷気が循環している際も、冷凍室吸込み口56がより下方にあることで、冷凍室戻り冷気が冷却器を通過する距離が長くなり熱交換量を増やすことで更なる冷却能力を向上させることができる。
(Summary)
As described above, in the present embodiment, the freezer compartment suction port 56 is provided on the front surface of the cooling chamber 43, the high temperature suction port 58 is provided on the rear surface of the cooling chamber 43, and the freezer compartment suction port 56 is located below the high temperature suction port 58. By being positioned, the freezer return cold air with a large backward speed and the high temperature return cold air with a large forward speed can be displaced in the vertical direction to suppress mutual interference and increase the amount of air circulating in the warehouse, The cooling capacity can be further improved. Further, even when the cold air is circulating only in the freezer compartment 37 that needs to be cooled most, the freezer compartment suction port 56 is located further downward, so that the distance that the freezer return cold air passes through the cooler is increased and heat exchange is performed. Further cooling capacity can be improved by increasing the amount.

また、冷却室43の底面を構成するドレンパン48は冷凍室吸込み口56からドレンチューブ49にかけて下方に傾斜した形状を有することにより、冷凍室戻り冷気は、ドレンパン48沿って下方へ流れた後背面に沿って上昇させることができるため、高温吸込み口58前方において冷凍室戻り冷気の速度が上向きとなり、高温戻り冷気とスムーズに合流できるため、より風量を増やし冷却能力を向上させることができる。   Further, the drain pan 48 constituting the bottom surface of the cooling chamber 43 has a shape inclined downward from the freezing chamber suction port 56 to the drain tube 49, so that the freezing chamber return cold air flows downward along the drain pan 48 on the rear surface. Therefore, the speed of the freezer compartment return cold air is increased in front of the high temperature inlet 58 and can smoothly merge with the high temperature return cold air, so that the air volume can be increased and the cooling capacity can be improved.

また、冷凍室吸込み口56は上流側に冷凍室戻り風路53を備え、冷凍室戻り風路53の入り口53aは冷凍室吸込み口56よりも上方に位置することにより、冷凍室吸込み口56において冷凍室戻り冷気は下向きに冷却室43に流れ込むため、よりドレンパン48に沿って流れ易くなり、より圧力損失を小さくしたまま低温戻り冷気との干渉を抑制することができる。さらに、冷凍室戻り風路53の入り口53aの面積は冷凍室吸込み口56の面積よりも小さいことにより、さらに冷凍室吸込み口56での圧力損失を低減することができる。   Further, the freezer compartment suction port 56 is provided with a freezer compartment return air passage 53 on the upstream side, and an inlet 53a of the freezer compartment return air passage 53 is located above the freezer compartment suction port 56, so that Since the freezing chamber return cold air flows downward into the cooling chamber 43, it becomes easier to flow along the drain pan 48, and interference with the low temperature return cold air can be suppressed while reducing the pressure loss. Furthermore, since the area of the inlet 53a of the freezer return air passage 53 is smaller than the area of the freezer compartment inlet 56, pressure loss at the freezer compartment inlet 56 can be further reduced.

また、冷却室43は冷却器44の下方に霜や氷を溶かすための除霜ヒータ47を備え、冷凍室吸込み口56よりも除霜ヒータ47とドレンパン48との距離Lや、冷却室43の背面との距離Bが大きいために、冷凍室戻り冷気は空間の広い除霜ヒータ47の下へ流れ込む。その後はそのまま冷却室43の底面を流れドレンパン48の形状に従って方向転換し、冷却室43の背面を上向きに流れる際も、圧力損失を小さく抑えることができる。従って、風量を増やし且つ冷却器を通過する距離が長くできるため冷却能力を向上させることができる。   The cooling chamber 43 includes a defrost heater 47 for melting frost and ice below the cooler 44, and the distance L between the defrost heater 47 and the drain pan 48 from the freezer inlet 56 and the cooling chamber 43. Since the distance B from the back surface is large, the freezer return cold air flows under the defrost heater 47 having a large space. After that, it flows through the bottom surface of the cooling chamber 43 as it is and changes its direction according to the shape of the drain pan 48, and the pressure loss can be kept small even when it flows upward through the back surface of the cooling chamber 43. Accordingly, the cooling capacity can be improved because the air volume can be increased and the distance passing through the cooler can be increased.

(実施の形態2)
図3は、本発明の実施の形態2における冷蔵庫の縦断面図、図4は、本発明の実施の形態2における冷却室の正面図である。
(Embodiment 2)
FIG. 3 is a longitudinal sectional view of the refrigerator according to the second embodiment of the present invention, and FIG. 4 is a front view of the cooling chamber according to the second embodiment of the present invention.

なお、実施の形態1と同様の構成および同様の技術思想が適用できる部分については、説明を省略するが、不具合がない限り実施の形態1の構成に本実施の形態を組み合わせて適用することが可能である。   In addition, although description is abbreviate | omitted about the part which can apply the structure similar to Embodiment 1, and the same technical idea, as long as there is no malfunction, it can apply combining this Embodiment with the structure of Embodiment 1. Is possible.

図3および図4において、冷蔵庫30の複数の貯蔵室は、最上部に冷蔵室35、最下部に野菜室36、そして冷蔵室35と野菜室36の間に冷凍室37が配置されている。   3 and 4, the plurality of storage rooms of the refrigerator 30 includes a refrigeration room 35 at the top, a vegetable room 36 at the bottom, and a freezing room 37 between the refrigeration room 35 and the vegetable room 36.

また、仕切壁である第一区画壁71によって野菜室36と冷凍室37とは上下に区画され、仕切壁である第二区画壁72によって冷蔵室35と冷凍室37とは上下に区画されている。   Moreover, the vegetable compartment 36 and the freezer compartment 37 are divided up and down by the 1st division wall 71 which is a partition wall, and the refrigerator compartment 35 and the freezer compartment 37 are divided up and down by the 2nd division wall 72 which is a partition wall. Yes.

(吐出風路構成)
分配風路51は、第一区画壁71内に設けられた野菜室吐出風路(図示せず)に接続し、分配風路51と野菜室36とを連通している。また第二区画壁72内に設けられた冷蔵室吐出風路85に接続し、分配風路51と冷蔵室35とを連通している。
(Discharge air path configuration)
The distribution air passage 51 is connected to a vegetable room discharge air passage (not shown) provided in the first partition wall 71 and communicates the distribution air passage 51 and the vegetable compartment 36. In addition, the distribution air passage 51 and the refrigerating chamber 35 are communicated with each other by connecting to a refrigerating chamber discharge air passage 85 provided in the second partition wall 72.

(戻り通路構成)
冷却器44の背面に冷蔵室戻り風路87が配置されている。冷蔵室戻り風路87は第二区画壁72を通り冷蔵室35と冷却室43とを連通しており、冷蔵室35を冷却した冷気が流れている。冷蔵室戻り風路87は下方に冷却室43と連通する冷蔵室吸込み口88を備える。
(Return passage configuration)
A refrigeration chamber return air passage 87 is disposed on the back surface of the cooler 44. The refrigeration chamber return air passage 87 passes through the second partition wall 72 and communicates the refrigeration chamber 35 and the cooling chamber 43, and cold air that has cooled the refrigeration chamber 35 flows therethrough. The refrigerating room return air passage 87 includes a refrigerating room suction port 88 communicating with the cooling room 43 below.

また、冷却室43の背面は、冷蔵室吸込み口88の横に野菜室吸込み口89を有する。野菜室吸込み口89は第一区画壁71内に設けられた野菜室戻り風路90を介して野菜室36と連通している。   In addition, the rear surface of the cooling chamber 43 has a vegetable chamber suction port 89 next to the refrigeration chamber suction port 88. The vegetable room suction port 89 communicates with the vegetable room 36 via a vegetable room return air passage 90 provided in the first partition wall 71.

冷蔵室吸込み口88および野菜室吸込み口89は、冷却器44の下端近傍に設けられ、冷凍室吸込み口56よりも高い位置に構成される。   The refrigerator compartment suction port 88 and the vegetable compartment suction port 89 are provided in the vicinity of the lower end of the cooler 44 and are configured at a position higher than the freezer compartment suction port 56.

(作用・効果)
以上のように構成された冷蔵庫について、以下その動作、作用を説明する。
(Action / Effect)
About the refrigerator comprised as mentioned above, the operation | movement and an effect | action are demonstrated below.

分配風路51内上方に吐出された冷気は第二区画壁72内の冷蔵室吐出風路85を経て冷蔵室35に吐出される。冷蔵室35内を冷却した冷気は冷蔵室戻り風路87を通り冷蔵室吸込み口88から冷却器44の下部に導かれて冷却器44と熱交換して、新鮮な冷気が再び送風機によって強制的に送風される。   The cold air discharged upward in the distribution air passage 51 is discharged to the refrigerating chamber 35 through the refrigerating chamber discharge air passage 85 in the second partition wall 72. The cold air that has cooled the inside of the refrigerating chamber 35 passes through the refrigerating chamber return air passage 87 and is led from the refrigerating chamber suction port 88 to the lower portion of the cooler 44 to exchange heat with the cooler 44, so that fresh cool air is forced by the fan again To be blown.

また分配風路51内側方に吐出された冷気は第一区画壁71内の野菜室吐出風路84を経て野菜室36に吐出される。野菜室36内を冷却した冷気は野菜室戻り風路90を通り野菜室吸込み口89から冷却器44の下部に導かれて冷却器44と熱交換して、新鮮な冷気が再び送風機によって強制的に送風される。   Further, the cold air discharged to the inside of the distribution air passage 51 is discharged to the vegetable compartment 36 through the vegetable compartment discharge air passage 84 in the first partition wall 71. The cold air that has cooled the inside of the vegetable compartment 36 passes through the vegetable compartment return air passage 90 and is guided to the lower portion of the cooler 44 through the vegetable compartment suction port 89 to exchange heat with the cooler 44, and fresh cold air is forced again by the blower. To be blown.

冷蔵室35からの冷蔵室戻り冷気は、冷蔵室戻り風路87中を下向きに流れてくるが、冷蔵室戻り風路87の下面で前向きに方向転換し冷却室43の背面に設置された高温吸込み口58から冷却室43内に流れ込む。   The refrigerated room return cold air from the refrigeration room 35 flows downward in the refrigeration room return air passage 87, but the high temperature is installed on the back surface of the cooling room 43 by changing the direction forward on the lower surface of the refrigeration room return air passage 87. It flows into the cooling chamber 43 from the suction port 58.

冷蔵室吸込み口88から出てきた冷蔵室戻り冷気は、冷却室43の背面に沿って上ってきた冷凍室戻り冷気と合流する。冷蔵室戻り冷気は上向きの冷凍室戻り冷気に押され、スムーズに上向きに方向転換し、冷凍室戻り冷気と一緒に冷却器44へ突入することができる。   The cold room return cold air that has come out of the cold room suction port 88 merges with the freezer compartment return cold air that has risen along the back surface of the cooling chamber 43. The cold air returning from the refrigerator compartment is pushed by the upward freezing room return air, smoothly turning upward, and can enter the cooler 44 together with the freezing room return cold air.

一方、野菜室36からの野菜室戻り冷気は、野菜室戻り風路90中を上向きに流れてくるため、野菜室吸込み口89から出てきた野菜室戻り冷気は、冷却室43の背面に沿って上ってきた冷凍室戻り冷気とスムーズに合流し、冷凍室戻り冷気と一緒に冷却器44へ突入することができる。   On the other hand, since the vegetable room return cold air from the vegetable room 36 flows upward in the vegetable room return air passage 90, the vegetable room return cold air that has come out from the vegetable room suction port 89 runs along the back of the cooling room 43. The freezing room return cold air that has come up can smoothly merge and enter the cooler 44 together with the freezing room return cold air.

ここで、冷蔵室吸込み口88と野菜室吸込み口89とは横並びで構成されているため、上向きに流れる冷却室43内ではお互いが干渉することはない。   Here, since the refrigerator compartment inlet 88 and the vegetable compartment inlet 89 are arranged side by side, they do not interfere with each other in the cooling chamber 43 that flows upward.

なお、風路構成により冷蔵室吸込み口88と野菜室吸込み口89とを上下に並べて構成した場合でも、全ての冷却室43内では全ての流れが上方向を向くため、干渉し合い風量を低下させることはない。   Even when the refrigeration room suction port 88 and the vegetable room suction port 89 are arranged one above the other according to the air path configuration, since all the flows are directed upward in all the cooling chambers 43, they interfere with each other and reduce the air volume. I will not let you.

従って、全ての戻り冷気はお互いに干渉し合うことがないため、循環する風量を増やすことで冷却器44の熱交換量を増加させ、冷却能力を向上させることができる。   Accordingly, since all the return cold air does not interfere with each other, the amount of heat exchange of the cooler 44 can be increased by increasing the amount of circulating air, and the cooling capacity can be improved.

(まとめ)
以上のように、本実施の形態では、冷凍室吸込み口56は冷却室43前面に、冷蔵室吸込み口88および野菜室吸込み口89は冷却室43背面に設けられ、冷凍室吸込み口56は冷蔵室吸込み口88および野菜室吸込み口89よりも下方に位置することにより、前後から戻り冷気が冷却室43に同時に流れ込んでも上下方向にずれることでお互いの流れを阻害しあうことなく庫内を循環する風量を大きくすることができるため、より冷却能力を向上することができる。
(Summary)
As described above, in the present embodiment, the freezer compartment suction port 56 is provided on the front surface of the cooling chamber 43, the refrigeration chamber suction port 88 and the vegetable room suction port 89 are provided on the back surface of the cooling chamber 43, and the freezer compartment suction port 56 is refrigerated. By being located below the chamber suction port 88 and the vegetable chamber suction port 89, even if the cold air returns from the front and back and flows into the cooling chamber 43 at the same time, it circulates in the cabinet without interfering with each other's flow. Since the air volume to be increased can be increased, the cooling capacity can be further improved.

以上のように、本発明にかかる冷蔵庫の構成は、風路の圧力損失を大きくすることなく冷却器の熱交換量を向上させることができるため、家庭用又は業務用冷蔵庫など、強制的に風を循環させて熱交換を行っている機器に対しても適用できる。   As described above, the configuration of the refrigerator according to the present invention can improve the heat exchange amount of the cooler without increasing the pressure loss of the air passage. It can also be applied to equipment that circulates heat to exchange heat.

30 冷蔵庫
35 冷蔵室(高温貯蔵室)
36 野菜室(高温貯蔵室)
37 冷凍室(低温貯蔵室)
43 冷却室
44 冷却器
46 送風機
47 除霜ヒータ
48 ドレンパン(冷却室底面)
53 冷凍室戻り風路
53a 入り口
56 冷凍室吸込み口(低温吸込み口)
57、87 冷蔵室戻り風路(高温戻り風路)
58、88 冷蔵室吸込み口(高温吸込み口)
89 野菜室吸込み口(高温吸込み口)
90 野菜室戻り風路(高温戻り風路)
30 Refrigerator 35 Refrigerated room (high temperature storage room)
36 Vegetable room (high temperature storage room)
37 Freezer room (cold storage room)
43 Cooling chamber 44 Cooler 46 Blower 47 Defrost heater 48 Drain pan (cooling chamber bottom)
53 Freezer return air passage 53a Entrance 56 Freezer compartment inlet (low temperature inlet)
57,87 Refrigerator return air path (high temperature return air path)
58, 88 Refrigerating room inlet (high temperature inlet)
89 Vegetable room inlet (high temperature inlet)
90 Vegetable room return airway (high temperature return airway)

Claims (5)

冷気を生成する冷却器と、前記冷却器で生成された冷気を強制的に循環させる送風機と、前記冷却器および送風機とを収める冷却室と、前記冷却室を背面に備える低温貯蔵室と、前記低温貯蔵室と温度帯の異なる少なくとも一つの高温貯蔵室と、前記低温貯蔵室からの低温戻り冷気を前記冷却室へ導入する低温吸込み口と、前記高温貯蔵室からの高温戻り冷気を前記冷却室へ導入する高温吸込み口とを備える冷蔵庫において、
前記低温吸込み口は前記冷却室前面に、前記高温吸込み口は前記冷却室背面に設けられ、前記低温吸込み口は前記高温吸込み口よりも下方に位置することを特徴とする冷蔵庫。
A cooler that generates cold air, a blower that forcibly circulates the cold air generated by the cooler, a cooling chamber that houses the cooler and the blower, a low-temperature storage chamber that includes the cooling chamber on the back surface, and At least one high-temperature storage chamber having a temperature range different from that of the low-temperature storage chamber, a low-temperature inlet for introducing low-temperature return cold air from the low-temperature storage chamber into the cooling chamber, and the high-temperature return cold air from the high-temperature storage chamber in the cooling chamber In a refrigerator having a high-temperature inlet to be introduced into,
The refrigerator characterized in that the low temperature suction port is provided on the front surface of the cooling chamber, the high temperature suction port is provided on the back surface of the cooling chamber, and the low temperature suction port is positioned below the high temperature suction port.
前記冷却室の底面は前記低温吸込み口から下方に傾斜して構成される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 a bottom surface of the cooling chamber is configured to be inclined downward from the low-temperature suction port. 前記低温吸込み口は上流側に低温戻り風路を備え、前記低温戻り風路の入り口は前記低温吸込み口よりも上方に位置し、前記低温戻り風路の入り口の面積は前記低温吸込み口面積よりも小さいことを特徴とする請求項1または2に記載の冷蔵庫。 The low temperature inlet has a low temperature return air channel upstream, the inlet of the low temperature return air channel is located above the low temperature air inlet, and the area of the inlet of the low temperature return air channel is larger than the area of the low temperature air inlet The refrigerator according to claim 1, wherein the refrigerator is small. 前記冷却室は前記冷却器下方に霜や氷を溶かすための除霜ヒータを備え、冷蔵庫縦断面において、前記除霜ヒータから前記冷却室の底面までの距離の最大値は前記低温吸込み口の垂直方向の空間距離の最大値よりも大きく設定したことを特徴とする請求項1から3のいずれか一項に記載の冷蔵庫。 The cooling chamber is provided with a defrosting heater for melting frost and ice below the cooler, and in the vertical section of the refrigerator, the maximum value of the distance from the defrosting heater to the bottom surface of the cooling chamber is perpendicular to the low temperature suction port The refrigerator according to any one of claims 1 to 3, wherein the refrigerator is set to be larger than the maximum value of the spatial distance in the direction. 前記冷却室は前記冷却器下方に霜や氷を溶かすための除霜ヒータを備え、冷蔵庫縦断面において、前記除霜ヒータから前記冷却室の背面までの距離の最大値は前記低温吸込み口の垂直方向の空間距離の最大値よりも大きく設定したことを特徴とする請求項1から4のいずれか一項に記載の冷蔵庫。 The cooling chamber is provided with a defrosting heater for melting frost and ice below the cooler, and in the vertical section of the refrigerator, the maximum value of the distance from the defrosting heater to the back of the cooling chamber is perpendicular to the low temperature suction port The refrigerator according to any one of claims 1 to 4, wherein the refrigerator is set to be larger than the maximum value of the spatial distance in the direction.
JP2013119490A 2013-06-06 2013-06-06 refrigerator Expired - Fee Related JP6145639B2 (en)

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