[go: up one dir, main page]
More Web Proxy on the site http://driver.im/

JPS61140771A - Refrigerator - Google Patents

Refrigerator

Info

Publication number
JPS61140771A
JPS61140771A JP26215684A JP26215684A JPS61140771A JP S61140771 A JPS61140771 A JP S61140771A JP 26215684 A JP26215684 A JP 26215684A JP 26215684 A JP26215684 A JP 26215684A JP S61140771 A JPS61140771 A JP S61140771A
Authority
JP
Japan
Prior art keywords
cooler
fin
fins
refrigerator
freezer compartment
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
JP26215684A
Other languages
Japanese (ja)
Inventor
幸弘 前川
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.)
Panasonic Holdings Corp
Original Assignee
Matsushita Refrigeration Co
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 Matsushita Refrigeration Co filed Critical Matsushita Refrigeration Co
Priority to JP26215684A priority Critical patent/JPS61140771A/en
Publication of JPS61140771A publication Critical patent/JPS61140771A/en
Pending legal-status Critical Current

Links

Landscapes

  • Defrosting Systems (AREA)

Abstract

(57)【要約】本公報は電子出願前の出願データであるた
め要約のデータは記録されません。
(57) [Summary] This bulletin contains application data before electronic filing, so abstract data is not recorded.

Description

【発明の詳細な説明】 産業上の利用分野 本発明はファンで庫内を強制冷却する冷蔵庫の改良に関
するものである。
DETAILED DESCRIPTION OF THE INVENTION Field of the Invention The present invention relates to an improvement in a refrigerator that uses a fan to forcibly cool the inside of the refrigerator.

従来例の構成とその問題点 従来、冷蔵庫等に使用しているこの種のフィン2ヘ一/ く着霜するため、他部分が不着霜であるにもかかわらず
冷気の流れる風路が狭くなる。
Conventional structure and its problems Conventionally, frost forms on the fins of this type used in refrigerators, etc., so the air passage through which cold air flows becomes narrow even though other parts are free of frost. .

従って冷却器に霜が付着した場合、通気抵抗は著しく増
加し、冷却器を通る風量は急激に落ちて、その結果、冷
却効率が著しく低下するといった欠点があった。
Therefore, when frost builds up on the cooler, the ventilation resistance increases significantly, and the amount of air passing through the cooler drops sharply, resulting in a significant drop in cooling efficiency.

また冷却器を垂直にして使用する場合、霜取り時に上部
に着いている霜が下方に落下してきて、除霜のすんでい
る下部の冷媒管に再び着くこととなり、霜取り効果が悪
くな9、除霜によるヒータ加熱の回数が多く省電力に反
するという問題点を有していた。
Also, if the cooler is used vertically, the frost on the top during defrosting will fall downward and land again on the refrigerant pipes at the bottom where defrosting has already been completed, resulting in poor defrosting effectiveness. This has the problem that the number of times the heater is heated is large, which is contrary to power saving.

発明の目的 本発明はこの様な従来の問題点を解消し、冷却効率の向
上を図り、除霜によるヒータ加熱の回数を減少せしめ、
省電力に寄与する冷蔵庫を提供する事を目的とする。
Purpose of the Invention The present invention solves these conventional problems, improves cooling efficiency, reduces the number of times the heater is heated for defrosting,
The purpose is to provide a refrigerator that contributes to power saving.

発明の構成 この目的を達成するため、本発明は、冷却器室内に縦長
に設けたフィンチューブ型冷却器を設け、3ページ この冷却器は、蛇行状に折曲された冷媒管と、この冷媒
管に直交状に設けられ、かつ並設した多数の放熱フィン
と、上記冷媒管と並設され上記放熱フィンと交差する加
熱管とを備え、中心部のフィンピッチを疎にし、両側の
それを密とし、かつ中心部のフィン高より低くして構成
し、かつフィンピッチ疎の部分に対向して循環冷気のバ
イパス風路を設けたものである。
Structure of the Invention In order to achieve this object, the present invention provides a vertically elongated fin-tube type cooler in the cooler chamber. It is equipped with a large number of radiation fins arranged perpendicularly to the tube and arranged in parallel, and a heating tube which is installed in parallel with the refrigerant pipe and intersects with the radiation fins. The fins are dense and have a lower height than the center fin height, and a bypass air passage for circulating cold air is provided opposite the sparse fin pitch area.

実施例の説明 以下本発明の一実施例を添付図面に従い説明する。図に
おいて1は冷蔵庫本体で冷凍室2と冷蔵室3と区画壁4
により形成されている。前記冷凍室2の背面にはフィン
チューブ型冷却器5が縦長に設けられ、その前面に仕切
板6が設けられている0 また前記区画壁4には一端を冷却器5の通風入口側に、
他端を冷凍室2及び冷蔵室3側にそれぞれ連通する吸入
口13及び14を有するダクト部7が形成されている。
DESCRIPTION OF EMBODIMENTS An embodiment of the present invention will be described below with reference to the accompanying drawings. In the figure, 1 is the main body of the refrigerator, which has a freezer compartment 2, a refrigerator compartment 3, and a partition wall 4.
It is formed by A fin-tube type cooler 5 is provided vertically on the back side of the freezer compartment 2, and a partition plate 6 is provided on the front side thereof.
A duct portion 7 is formed which has suction ports 13 and 14 whose other ends communicate with the freezer compartment 2 and the refrigerator compartment 3, respectively.

8は冷却器5で冷やされた冷気を冷凍室2、冷蔵室3内
へ強制的に循環させるファンである。
A fan 8 forcibly circulates the cold air cooled by the cooler 5 into the freezer compartment 2 and the refrigerator compartment 3.

前記冷却器6は第2図の如く蛇行状に折曲された冷媒管
10と、この冷媒管10と並設さ几内部にヒータを備え
た加熱管11と、これら両管10゜11と直交状に配設
さ扛た複数板の放熱用フィン12とより形成されている
。そして前記放熱ンイン12は、通気抵抗J−なるよう
に中心部の放熱フィンピッチを疎にした放熱フィン12
aと、通気抵抗大なる両側のそn’l密とし、かつ中心
部のフィン高より低くした放熱フィン群12bとより成
り、通風路と平行に配設さnたフィンチー−プ型冷却器
5を構成し、ファン8による風の流れる方向と平行にな
る様に設けら扛ている。
The cooler 6 includes a refrigerant pipe 10 bent in a meandering manner as shown in FIG. It is formed of a plurality of heat dissipating fins 12 arranged in a shape. The heat dissipation fin 12 has a sparse pitch of heat dissipation fins in the center so that the ventilation resistance J- is achieved.
A fin-chip type cooler 5, consisting of a group of radiating fins 12b, which are densely packed on both sides with high ventilation resistance and lower than the fin height in the center, and arranged parallel to the ventilation path. It is arranged so as to be parallel to the direction in which the air flows by the fan 8.

ここで、冷凍室からの戻ジ冷気は冷凍室ダクトヲ通り冷
却器両端部で主として熱交換され、ファンにより吐出さ
れ冷凍室を冷却する。そして冷凍室内の冷気の一部が冷
蔵室風路全通り冷蔵室へ導がファンにより吐出される構
成である。
Here, the cold air returned from the freezer compartment passes through the freezer compartment duct, undergoes heat exchange mainly at both ends of the cooler, and is discharged by a fan to cool the freezer compartment. A part of the cold air in the freezer compartment is directed to the refrigerator compartment through the entire air path of the refrigerator compartment and is discharged by a fan.

5ページ 従って冷却器両端部は、冷凍室の冷却に作用することに
対して、冷却器中央部は冷蔵室の冷却に作帛する為、フ
ィンピッチを縮める事が可能となり、その結果、熱交換
面積が犬となる為、フィン高は低く設定している。そし
て上記ダクト部7は中心部の冷蔵室ダク)7aとその両
端の冷凍室ダクト7bとより成り、冷蔵室ダク)7aよ
りの通風路と平行に前記放熱フィン群12a、冷凍室ダ
クト7bJニジの通風路と平行に前記放熱フィン群12
bを配置できる様にして、かつ放熱フィン群12aと対
向してバイパス風路を形成している。この構成において
、冷蔵室の戻り冷気は、冷蔵室ダクトTai通り、冷却
器5の通風入口側Aより侵入し、前記放熱フィン群12
aで熱交換する径路が最も短い部分を通って循環してい
る。そして冷凍室からの戻り冷気は両端の冷凍室ダクト
アb2通ジ冷却器5の通風入口側Bより侵入し、前記冷
却器5の両端部の放熱フィン群12bでそれぞれ熱交換
する。
Page 5 Therefore, while both ends of the cooler work to cool the freezer compartment, the center part of the cooler works to cool the refrigerator compartment, making it possible to reduce the fin pitch, resulting in improved heat exchange. Since the area is a dog, the fin height is set low. The duct section 7 consists of a refrigerator compartment duct) 7a in the center and a freezer compartment duct 7b at both ends thereof. The radiation fin group 12 is arranged parallel to the ventilation path.
b can be arranged, and a bypass air path is formed facing the radiation fin group 12a. In this configuration, the return cold air from the refrigerator compartment enters from the ventilation inlet side A of the cooler 5 through the refrigerator compartment duct Tai, and enters the cooling fin group 12.
The path for heat exchange in a circulates through the shortest part. The cold air returned from the freezer compartment passes through the freezer compartment ducts b2 at both ends, enters from the ventilation inlet side B of the cooler 5, and exchanges heat with the radiation fin groups 12b at both ends of the cooler 5, respectively.

ここで例えば、冷蔵室温度10℃(飽和蒸気圧6ベー 9.21mHf)、冷凍室温度−18℃(飽和蒸気圧0
.94mmHf’ )に設定し、冷却器表面温度を一2
5℃(飽和蒸気圧0.47mmHf )  と仮定する
と、冷蔵室分=蒸気圧差8.74咽)1グ (9,21+n+rlHf−0,47mmHt)冷凍室
分=蒸気圧差0.47喘H2 (0,94端Hf −0,47#H? )に相当する水
分が固化し、霜となって冷却器に付着する。
Here, for example, the temperature in the refrigerator compartment is 10°C (saturated vapor pressure 6 9.21 mHf), the temperature in the freezer compartment is -18°C (saturated vapor pressure 0
.. 94mmHf') and set the cooler surface temperature to -2.
Assuming 5℃ (saturated vapor pressure 0.47 mmHf), refrigerator compartment = vapor pressure difference 8.74 mmHt) 1g (9,21 + n + rlHf - 0,47 mmHt) freezer compartment = vapor pressure difference 0.47 mmH2 (0, The moisture corresponding to the 94 end Hf -0,47#H?) solidifies, becomes frost, and adheres to the cooler.

そこで本発明の冷却器5は、冷蔵室よりの通風路と平行
する放熱フィン群12ai疎にし、冷凍室よりの通風流
と平行する放熱フィン群12bi密とし、かつ熱交換面
積を必要最小限としたものである。さらに、前記冷却器
6の放熱フィン群12aと対向してバイパス風路を形成
する事により、冷蔵室の湿ジ孕気を熱交換する事により
、吸込口側が多く着霜した場合でも風路面積が犬きくな
り、バイパス風路を経て冷却器上部と熱交換される。
Therefore, in the cooler 5 of the present invention, the radiation fin group 12ai parallel to the ventilation path from the refrigerator compartment is made sparse, and the radiation fin group 12bi parallel to the ventilation passage from the freezer compartment is made dense, and the heat exchange area is kept to the minimum necessary. This is what I did. Furthermore, by forming a bypass air passage facing the radiation fin group 12a of the cooler 6, heat exchange is performed on the humid air in the refrigerator compartment, so that even if there is a lot of frost on the suction port side, the air passage area is heat is exchanged with the upper part of the cooler through the bypass air path.

その結果冷却器5内を流れる風量が均一化でき、冷却効
率の向上が図詐るものである。
As a result, the amount of air flowing through the cooler 5 can be made uniform, and the cooling efficiency can be improved significantly.

7ペーノ また着霜が吸込口に集中しないので、除霜用の加熱管1
1の熱量が小さくでき、省電力に寄与するものである。
7Peno In addition, since frost does not concentrate on the suction port, heating pipe 1 for defrosting
1 can be made small, contributing to power saving.

また、上方に溜った霜も疎部により下方へ流れやすくな
っているので、下方で凍結することがない。
In addition, the frost that accumulates above can easily flow downward due to the sparse portions, so it does not freeze below.

発明の効果 上記実施例から明らかな様に、本発明は蛇行状に折曲さ
れた冷媒管と、この冷媒管に直交状に設けら扛かつ並設
した多数の放熱フィンとを備え、中心部の放熱フィンピ
ッチを疎にし両側のそれを密としかつ中心部のフィン高
より低くしたフィンチューブ型冷却器と、この冷却器の
放熱フィンピッチを疎にした部分に対向してバイパス風
路を設けた事により、冷却器に付着する着霜量の均一化
が図れ、かつ除霜用の加熱管11の熱量を小さくするこ
とができる為、冷却器の効率向上及び霜取時の省電力に
寄与するものである。
Effects of the Invention As is clear from the above embodiments, the present invention includes a refrigerant pipe bent in a meandering manner, and a large number of heat dissipation fins arranged orthogonally to the refrigerant pipe. A fin-tube type cooler with a sparse radiating fin pitch, denser fins on both sides, and lower than the fin height in the center, and a bypass air path opposite the part of the cooler with a sparse radiating fin pitch. As a result, the amount of frost that adheres to the cooler can be made uniform, and the amount of heat in the heating tube 11 for defrosting can be reduced, which contributes to improving the efficiency of the cooler and saving power during defrosting. It is something to do.

【図面の簡単な説明】[Brief explanation of the drawing]

第1図は本発明の一実施例であるフィンチューブ形冷却
器を備えた冷蔵庫の側断面図、第2図は本発明の一部で
あるフィンチューブ型冷却器の部分斜視図、第3図は第
1図の要部斜視図、第4図は第1図のa−a’断面図で
ある。 5・・・・・・冷却器、9・・・・・・バイパス風路、
10・・・・・・冷媒管、12,12a、12b・・・
・放熱フィン。
Fig. 1 is a side sectional view of a refrigerator equipped with a fin-tube type cooler which is an embodiment of the present invention, Fig. 2 is a partial perspective view of the fin-tube type cooler which is a part of the present invention, and Fig. 3 1 is a perspective view of the main part of FIG. 1, and FIG. 4 is a sectional view taken along the line a-a' in FIG. 5...Cooler, 9...Bypass air path,
10...Refrigerant pipe, 12, 12a, 12b...
- Heat dissipation fin.

Claims (1)

【特許請求の範囲】[Claims] 蛇行状に折曲された冷媒管と、この冷媒管に直交状に設
けられかつ並設した多数の放熱フィンとより冷却器を形
成し、この冷却器の中心部の放熱フィンピッチを疎にし
、両側を密とするとともに、中心部のフィン高より低く
し、かつこの冷却器の放熱フィンピッチを疎にした部分
に対向して循環冷気のバイパス風路を設けた事を特徴と
する冷蔵庫。
A cooler is formed by a refrigerant pipe bent in a serpentine shape and a large number of radiation fins arranged orthogonally to the refrigerant pipe and arranged in parallel, and the pitch of the radiation fins in the center of the cooler is made sparse. A refrigerator characterized by having a bypass air passage for circulating cold air opposite to a part of the cooler which has dense fins on both sides, is lower than the height of the fins in the center, and has a sparse pitch of radiation fins.
JP26215684A 1984-12-12 1984-12-12 Refrigerator Pending JPS61140771A (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
JP26215684A JPS61140771A (en) 1984-12-12 1984-12-12 Refrigerator

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
JP26215684A JPS61140771A (en) 1984-12-12 1984-12-12 Refrigerator

Publications (1)

Publication Number Publication Date
JPS61140771A true JPS61140771A (en) 1986-06-27

Family

ID=17371836

Family Applications (1)

Application Number Title Priority Date Filing Date
JP26215684A Pending JPS61140771A (en) 1984-12-12 1984-12-12 Refrigerator

Country Status (1)

Country Link
JP (1) JPS61140771A (en)

Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP2010249376A (en) * 2009-04-14 2010-11-04 Mitsubishi Electric Corp Refrigerator
JP2014089000A (en) * 2012-10-30 2014-05-15 Sharp Corp Refrigerator

Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP2010249376A (en) * 2009-04-14 2010-11-04 Mitsubishi Electric Corp Refrigerator
JP2014089000A (en) * 2012-10-30 2014-05-15 Sharp Corp Refrigerator

Similar Documents

Publication Publication Date Title
US5186022A (en) Evaporator structure for refrigerator-freezer
KR900006245B1 (en) Heat exchanger
JPS58217195A (en) Heat exchanger
JPH07180943A (en) Heat exchanger and refrigerator
US5848638A (en) Finned tube heat exchanger
KR100220723B1 (en) Heat exchanger for air conditioner
JPH09159311A (en) Heat exchanger for refrigerator
JPS61140771A (en) Refrigerator
US6659170B1 (en) Energy-efficient, finned-coil heat exchanger
JPH0410530Y2 (en)
JP3703914B2 (en) Heat exchanger
KR20110087917A (en) Refrigerator
JPS61140790A (en) Refrigerant vaporizer
JPS6324390Y2 (en)
JPH0330718Y2 (en)
JP2005531748A (en) Heat exchanger
JP2001133076A (en) Heat exchanger
CN221527469U (en) Microchannel heat exchanger, heat pump refrigerating system and clothes dryer
JPS6143113Y2 (en)
JPH0666458A (en) Refrigerator evaporator
KR200148294Y1 (en) Evaporator in a refrigerator
JP3886244B2 (en) Heat exchanger
JPH025326Y2 (en)
JPH0241498Y2 (en)
JP2003302190A (en) Corrugated fin type heat exchanger