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JP3726796B2 - Integrated air conditioner for wall installation - Google Patents

Integrated air conditioner for wall installation Download PDF

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Publication number
JP3726796B2
JP3726796B2 JP2002307053A JP2002307053A JP3726796B2 JP 3726796 B2 JP3726796 B2 JP 3726796B2 JP 2002307053 A JP2002307053 A JP 2002307053A JP 2002307053 A JP2002307053 A JP 2002307053A JP 3726796 B2 JP3726796 B2 JP 3726796B2
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JP
Japan
Prior art keywords
air
passage
exhaust
return
outside
Prior art date
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Expired - Fee Related
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JP2002307053A
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Japanese (ja)
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JP2004144333A (en
Inventor
恵一 木村
多門 清滝
Original Assignee
木村工機株式会社
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Description

【0001】
【発明の属する技術分野】
本発明は壁設置用一体形エアコンに関する。
【0002】
【従来の技術】
【特許文献1】
特開2002−267202号公報
従来のエアコンにおける風吹出口はその位置を移動できない構造となっている。
【0003】
【発明が解決しようとする課題】
そのため、室内を局部的に空調したい場合でも室内全体を空調せねばならず不経済である。そこで、これらの問題点を解決する壁設置用一体形エアコンを提供することを目的とする。
【0004】
【課題を解決するための手段】
上記目的を達成するために、本発明の壁設置用一体形エアコンは、ケーシングの上端部に還気取入口と排気口を形成するとともにこのケーシングの下端部に外気取入口と給気口を形成し、前記ケーシング内に、前記還気取入口と前記給気口を連通連結し蒸発器と再熱器と給気ファンを設けた縦方向の給気送風路と、前記外気取入口と前記排気口を連通連結し凝縮器と排気ファンを設けた縦方向の排気送風路と、を備え、前記給気送風路と前記排気送風路の間に、前記還気取入口から取入れた還気を前記凝縮器へも導く第一連通路と、前記外気取入口から取入れた外気を前記蒸発器へも導く第二連通路と、を設け、吹出位置移動自在な送風用ホースを、前記給気口に接続した。また、ケーシングの上端部に還気取入口を形成するとともにこのケーシングの下端部に外気取入口と給気口と排気口を形成し、前記ケーシング内に、前記還気取入口と前記給気口を連通連結し蒸発器と再熱器と給気ファンを設けた縦方向の給気送風路と、前記外気取入口と前記排気口を連通連結し凝縮器と排気ファンを設けた倒立U字状の排気送風路と、を備え、前記還気取入口から取入れた還気を前記凝縮器へも導く第一連通路と、前記外気取入口から取入れた外気を前記蒸発器へも導く第二連通路と、を設け、吹出位置移動自在な送風用ホースを、前記給気口に接続した。さらに、給気送風路の還気の風量制御と排気送風路の外気の風量制御を行うダンパ機構、又は、給気送風路の外気と還気の風量制御と排気送風路の外気と還気の風量制御を行うダンパ機構、を設けた。さらに、蒸発器と凝縮器と再熱器の各々のフィンチューブを楕円管にした。
【0005】
【発明の実施の形態】
図1と図2は、本発明の壁設置用一体形エアコンの一実施例を示しており、このエアコンは、横に薄い扁平箱状のケーシング1の上端部(図例では上端面)に還気取入口2と排気口3を形成するとともにこのケーシング1の下端部(図例では下端面)に外気取入口4と給気口5を形成し、ケーシング1内に、冷媒循環回路13と、還気取入口2と給気口5を連通連結し蒸発器6と再熱器7と給気ファン8を設けた縦方向の給気送風路Aと、外気取入口4と排気口3を連通連結し凝縮器9と排気ファン10を設けた縦方向の排気送風路Bと、給気送風路Aの還気の風量制御と排気送風路Bの外気の風量制御を行うダンパ機構12と、を備えている。
【0006】
給気送風路Aと排気送風路Bの間には、還気取入口2から取入れた還気を凝縮器9へも導く第一連通路Cと、外気取入口4から取入れた外気を蒸発器6へも導く第二連通路Dと、を設け、吹出位置移動自在な送風用ホース11を、給気口5に接続する。このホース11を室内の任意の場所へ持ち運んだりして、室内全体を空調したり、室内を局所的に空調する。排気口3と外気取入口4はダクトやがらり等を介して屋外に通じさせる。実線及び点線の白抜き矢印は風向を示す。
【0007】
冷媒循環回路13は、蒸発器6、凝縮器9、再熱器7、圧縮機14、図示省略の受液器、膨張弁及び冷媒循環方向の正逆の切換弁等を配管接続して成り、蒸発器6及び凝縮器9の吸熱と放熱を切換自在に構成する。再熱器7は蒸発器6の風下に設け、凝縮器9に流れる冷媒(ホットガス)の一部を再熱器7にバイパスさせて過冷却・除湿・再熱自在に構成する。蒸発器6と凝縮器9と再熱器7の各々のフィンチューブは楕円管にするのが好ましいが円形管でもよい。
【0008】
給気送風路Aと排気送風路Bは並列に配置し、蒸発器6及び再熱器7と凝縮器9は隣接させ、蒸発器6及び再熱器7の風下に吸込式の給気ファン8を設けるとともに凝縮器9の風下に吸込式の排気ファン10を設け、凝縮器9の風上に圧縮機14や受液器などの冷媒循環回路13の部品を設けて、スペースを有効活用しコンパクト化を図る。なお、蒸発器6、再熱器7、給気ファン8、凝縮器9、排気ファン10、圧縮機14などの配置は図例以外のものとするも自由である。冷媒循環回路13は、図示省略のフレームなどに一体に設けて、ケーシング1に対して取出・収納自在に構成するも自由であり、ケーシング全体を取り外すことなく冷媒循環回路13のみをケーシング1から取出して冷媒回収作業やメンテナンスを容易に行え、取付け収納にも手間がかからない。また、冷媒循環回路13だけ交換することにより、リニューアル時のコストダウンも図れる。
【0009】
ケーシング1には、還気取入口2から蒸発器6への還気風量を制御するダンパ15と、外気取入口4から凝縮器9への外気風量を制御するダンパ16と、を設けてダンパ機構12を構成し、各種の運転制御装置等により風量制御を行う。各ダンパ15、16は、全閉・全開切換のみ又は任意風量可変自在の何れの構造であってもよい。なお、図示省略するが、例えば還気取入口2から凝縮器9への還気風量を制御するダンパと、外気取入口4から蒸発器6への外気風量を制御するダンパを設けて、給気送風路Aの外気と還気の風量制御と排気送風路Bの外気と還気の風量制御を行うダンパ機構としてもよい。
【0010】
このエアコンの運転例を説明すると、換気冷暖房運転では、還気取入口2からの還気と外気取入口4からの外気を所定割合で混合して蒸発器6で熱交換し、冷風又は暖風を給気口5から給気し、同時に還気取入口2からの還気と外気取入口4からの外気で凝縮器9の循環冷媒を熱交換して吸熱又は放熱し、排熱回収しつつ排気口3から屋外へ室内空気を所定量排気する。
【0011】
過冷却・除湿・再熱運転では、給気送風路Aの空気を蒸発器2で過冷却・除湿した後、再熱器7で再熱していわゆるドライエアーを給気し、排気送風路Bの空気で凝縮器9の循環冷媒を熱交換し屋外へ排気する。このとき、再熱のために別個に加熱源が不要でかつ凝縮器負荷が下がり省エネとなる。なお過冷却・除湿する空気は、還気のみ、外気のみ、還気と外気の混合空気、の何れであっても良い。換気運転及び外気冷房運転では、圧縮機14を止めてダンパ15とダンパ16を全閉し、外気のみを室内へ給気し還気のみを屋外へ排気する。なお、図例ではエアコンを壁の屋内側に設置しているが屋外側に設置するも自由である。また、給気口5とホース11の数の増減は自由である。
【0012】
図3と図4は他の実施例で、横に薄い扁平箱状のケーシング1の上端部に還気取入口2を形成するとともにこのケーシング1の下端部に外気取入口4と給気口5と排気口3を形成し、ケーシング1内に、還気取入口2と給気口5を連通連結し蒸発器6と再熱器7と給気ファン8を設けた縦方向の給気送風路Aと、外気取入口4と排気口3を連通連結し凝縮器9と排気ファン10を設けた倒立U字状の排気送風路Bと、を備え、還気取入口2から取入れた還気を凝縮器9へも導く第一連通路Cと、外気取入口4から取入れた外気を蒸発器6へも導く第二連通路Dと、を設け、吹出位置移動自在な送風用ホース11を、給気口5に接続したものである。その他の構成は前記実施例と同様であるので説明は省略する。
【0013】
【発明の効果】
請求項1と2の発明では、送風用ホースの吹出位置を自由に変えて、局所的に空調したり、床面や床下に風を吹出して床材や床下空間を熱媒体や蓄熱体にした空調や、アンダーフロア空調など各種方式の空調に容易に変更・対応できる。給気口がケーシングの下側にあるので床に送風用ホースを容易にもっていける。外気取入口が下に向いているので雨などを吸込まず安全である。1台の一体形エアコンで、換気冷暖房運転、外気冷房運転、換気運転、過冷却・除湿・再熱運転などの全空調運転ができる。給気送風路への外気取入と排気送風路への外気取入を一つの外気取入口で共用できかつ給気送風路への還気取入と排気送風路への還気取入を一つの還気取入口で共用できるので、部品点数が減少しコンパクト化とコスト削減を図れ施工が容易となる。
請求項3の発明では、換気運転の際、還気を給気送風路に取入れずに外気のみを給気し、外気を排気送風路に取入れずに還気のみを排気できるので、余分な送風動力を使わずにすみ、省エネを図れる。また、給気送風路の外気と還気の風量制御と排気送風路の外気と還気の風量制御を行うダンパ機構とすれば、蒸発器で熱交換をしながら還気のみを室内とエアコンの間で循環させてウォーミングアップ運転も行える。
請求項4の発明では、圧力損失が減少して熱交換効率が向上するので小型のファンを用いることができ騒音低減を図れる。蒸発器と凝縮器と再熱器も小型化できエアコンをコンパクト化できる。
【図面の簡単な説明】
【図1】本発明の一実施例を示す正面図である。
【図2】図1の側面図である。
【図3】他の実施例を示す正面図である。
【図4】図3の側面図である。
【符号の説明】
1 ケーシング
2 還気取入口
3 排気口
4 外気取入口
5 給気口
6 蒸発器
7 再熱器
8 給気ファン
9 凝縮器
10 排気ファン
11 ホース
12 ダンパ機構
13 冷媒循環回路
A 給気送風路
B 排気送風路
C 第一連通路
D 第二連通路
[0001]
BACKGROUND OF THE INVENTION
The present invention relates to an integrated air conditioner for wall installation.
[0002]
[Prior art]
[Patent Document 1]
JP, 2002-267202, A The wind blower outlet in the conventional air-conditioner has the structure which cannot move the position.
[0003]
[Problems to be solved by the invention]
Therefore, even when it is desired to air-condition the room locally, the entire room must be air-conditioned, which is uneconomical. Then, it aims at providing the integrated air conditioner for wall installation which solves these problems.
[0004]
[Means for Solving the Problems]
In order to achieve the above object, the wall-mounted integrated air conditioner of the present invention forms a return air inlet and an exhaust port at the upper end portion of the casing, and forms an outside air intake port and an air supply port at the lower end portion of the casing. A vertical air supply air passage in which the return air intake port and the air supply port are connected to each other in the casing and an evaporator, a reheater, and an air supply fan are provided; the outside air intake port and the exhaust gas A vertical exhaust air passage provided with a condenser and an exhaust fan, the return air taken in from the return air inlet between the supply air passage and the exhaust air passage. A first series passage that leads also to a condenser and a second communication passage that leads outside air taken in from the outside air inlet also to the evaporator are provided, and a blowing hose that is freely movable at the blowing position is provided at the air supply port. Connected. Further, a return air intake is formed at the upper end of the casing, and an outside air intake, an air supply port, and an exhaust port are formed at the lower end of the casing, and the return air intake and the air supply port are formed in the casing. Inverted U-shape in which a vertical air supply air passage provided with an evaporator, a reheater, and an air supply fan, and the outside air intake port and the exhaust port are connected and a condenser and an exhaust fan are provided. A second series of passages for leading the return air taken in from the return air intake to the condenser, and a second series for guiding the outside air taken in from the outside air intake to the evaporator. And a blower hose that is freely movable at the blowing position, and was connected to the air supply port. Further, a damper mechanism that controls the air volume control of the return air in the air supply air passage and the air volume control of the outside air in the exhaust air air passage, or the air volume control of the outside air and the return air in the air supply air air passage and the outside air and the return air in the exhaust air air passage. A damper mechanism for controlling the air volume was provided. Furthermore, the fin tubes of the evaporator, the condenser, and the reheater were made into elliptical tubes.
[0005]
DETAILED DESCRIPTION OF THE INVENTION
FIG. 1 and FIG. 2 show an embodiment of an integrated air conditioner for wall installation according to the present invention. This air conditioner is returned to the upper end portion (upper end surface in the illustrated example) of a flat box-shaped casing 1 that is thin on the side. An air intake port 2 and an exhaust port 3 are formed, and an outer air intake port 4 and an air supply port 5 are formed at a lower end portion (lower end surface in the illustrated example) of the casing 1, and a refrigerant circulation circuit 13 is formed in the casing 1. The return air intake 2 and the air supply port 5 are connected in communication, and the vertical air supply air passage A provided with the evaporator 6, the reheater 7, and the air supply fan 8, and the outside air intake 4 and the exhaust port 3 are connected. A vertical exhaust air passage B that is connected and provided with a condenser 9 and an exhaust fan 10, and a damper mechanism 12 that controls the return air amount of the supply air passage A and the outside air amount of the exhaust air passage B. I have.
[0006]
Between the supply air supply passage A and the exhaust air supply passage B, a first series passage C that leads the return air taken in from the return air intake 2 to the condenser 9 and the outside air taken in from the outside air intake 4 are evaporators. And a second hose 11 that is also movable to the blowing position is connected to the air supply port 5. The hose 11 is carried to an arbitrary place in the room to air-condition the entire room or to locally air-condition the room. The exhaust port 3 and the outside air intake port 4 are communicated with the outside through a duct or a gargle. Solid and dotted white arrows indicate the wind direction.
[0007]
The refrigerant circulation circuit 13 is formed by connecting an evaporator 6, a condenser 9, a reheater 7, a compressor 14, a liquid receiver (not shown), an expansion valve, a forward / reverse switching valve in the refrigerant circulation direction, and the like. The heat absorption and heat dissipation of the evaporator 6 and the condenser 9 are configured to be switchable. The reheater 7 is provided leeward of the evaporator 6, and a part of the refrigerant (hot gas) flowing through the condenser 9 is bypassed to the reheater 7 so as to be freely cooled, dehumidified, and reheated. The fin tubes of the evaporator 6, the condenser 9, and the reheater 7 are preferably elliptical tubes, but may be circular tubes.
[0008]
The supply air passage A and the exhaust air passage B are arranged in parallel, the evaporator 6, the reheater 7, and the condenser 9 are adjacent to each other, and the suction type air supply fan 8 is placed downstream of the evaporator 6 and the reheater 7. In addition, a suction exhaust fan 10 is provided on the lee of the condenser 9 and components of the refrigerant circulation circuit 13 such as a compressor 14 and a liquid receiver are provided on the wind of the condenser 9 to make effective use of space and compactness. Plan In addition, arrangement | positioning of the evaporator 6, the reheater 7, the air supply fan 8, the condenser 9, the exhaust fan 10, the compressor 14, etc. can also be made into things other than the example of a figure. The refrigerant circuit 13 can be provided integrally with a frame (not shown) so that it can be taken out and stored in the casing 1, and only the refrigerant circuit 13 can be taken out from the casing 1 without removing the entire casing. Refrigerant recovery work and maintenance can be performed easily, and installation and storage are not time-consuming. Further, by replacing only the refrigerant circulation circuit 13, it is possible to reduce the cost at the time of renewal.
[0009]
The casing 1 is provided with a damper 15 for controlling the amount of return air from the return air inlet 2 to the evaporator 6 and a damper 16 for controlling the amount of outside air from the outside air inlet 4 to the condenser 9 to provide a damper mechanism. 12 and performs air volume control by various operation control devices. Each of the dampers 15 and 16 may have any structure in which only the full-close / full-open switching or the arbitrary air volume can be varied. Although not shown in the figure, for example, a damper for controlling the return air flow rate from the return air intake 2 to the condenser 9 and a damper for controlling the outside air flow rate from the outside air intake 4 to the evaporator 6 are provided. It is good also as a damper mechanism which controls the air volume control of the external air and return air of the ventilation path A, and the air volume control of the external air and return air of the exhaust ventilation path B.
[0010]
An example of the operation of this air conditioner will be described. In the ventilation / cooling / heating operation, the return air from the return air inlet 2 and the outside air from the outside air inlet 4 are mixed at a predetermined ratio, and heat is exchanged by the evaporator 6 to obtain cold air or warm air. Is supplied from the intake port 5, and at the same time, the circulating refrigerant in the condenser 9 is heat-exchanged with the return air from the return air intake 2 and the outside air from the outside air intake 4 to absorb heat or dissipate heat and recover exhaust heat. A predetermined amount of room air is exhausted from the exhaust port 3 to the outside.
[0011]
In the supercooling / dehumidification / reheating operation, the air in the supply air passage A is supercooled / dehumidified by the evaporator 2 and then reheated by the reheater 7 to supply so-called dry air. The circulating refrigerant in the condenser 9 is heat exchanged with air and exhausted outdoors. At this time, a separate heating source is not required for reheating, and the condenser load is reduced to save energy. The air to be supercooled / dehumidified may be only return air, only outside air, or mixed air of return air and outside air. In the ventilation operation and the outside air cooling operation, the compressor 14 is stopped, the damper 15 and the damper 16 are fully closed, only the outside air is supplied into the room, and only the return air is exhausted outside. In the example shown in the figure, the air conditioner is installed on the indoor side of the wall, but it can also be installed on the outdoor side. Further, the number of air supply ports 5 and hoses 11 can be increased or decreased.
[0012]
3 and 4 show another embodiment, in which a return air intake 2 is formed at the upper end of a flat box-like casing 1 which is thin on the side, and an outside air intake 4 and an air supply port 5 are formed at the lower end of the casing 1. And the exhaust air outlet 3, the return air intake 2 and the air inlet 5 are connected in the casing 1, and the evaporator 6, the reheater 7, and the air supply fan 8 are provided. A, and an inverted U-shaped exhaust air passage B provided with a condenser 9 and an exhaust fan 10 in communication between the outside air intake 4 and the exhaust port 3, and the return air taken in from the return air intake 2 A first series passage C that leads also to the condenser 9 and a second communication passage D that guides outside air taken in from the outside air intake 4 to the evaporator 6 are provided, and a blowing hose 11 that can freely move the blowing position is provided. It is connected to the mouth 5. Since other configurations are the same as those in the above embodiment, description thereof is omitted.
[0013]
【The invention's effect】
In the first and second aspects of the invention, the blowing position of the blowing hose can be freely changed to locally air-condition, or the wind can be blown to the floor surface or under the floor to make the flooring material or underfloor space a heat medium or heat storage body. Easily change and adapt to various types of air conditioning such as air conditioning and underfloor air conditioning. Since the air supply port is on the lower side of the casing, the hose for blowing air can be easily brought to the floor. Because the outside air intake is facing down, it is safe without sucking rain. A single integrated air conditioner can perform all air conditioning operations such as ventilation / heating / cooling operation, outdoor air cooling operation, ventilation operation, supercooling / dehumidification / reheat operation. The outside air intake to the air supply air passage and the outside air intake to the exhaust air passage can be shared by one outside air inlet, and the return air intake to the air supply air passage and the return air intake to the exhaust air passage are unified. Since it can be shared by two return air intakes, the number of parts is reduced, making it possible to reduce the size and cost and make the installation easier.
In the third aspect of the invention, during the ventilation operation, only the return air can be supplied without taking the return air into the supply air passage, and only the return air can be exhausted without taking the outside air into the exhaust air passage. It saves energy without using power. In addition, if a damper mechanism is used to control the air volume of the outside air and return air in the supply air passage and the air volume control of the outside air and return air in the exhaust air passage, only the return air is exchanged between the room and the air conditioner while exchanging heat with the evaporator. It can also be warmed up by circulating between them.
In the invention of claim 4, since the pressure loss is reduced and the heat exchange efficiency is improved, a small fan can be used and noise can be reduced. The evaporator, condenser, and reheater can also be miniaturized and the air conditioner can be made compact.
[Brief description of the drawings]
FIG. 1 is a front view showing an embodiment of the present invention.
FIG. 2 is a side view of FIG.
FIG. 3 is a front view showing another embodiment.
4 is a side view of FIG. 3. FIG.
[Explanation of symbols]
DESCRIPTION OF SYMBOLS 1 Casing 2 Return air intake 3 Exhaust port 4 Outside air intake 5 Air supply port 6 Evaporator 7 Reheater 8 Supply fan 9 Condenser 10 Exhaust fan 11 Hose 12 Damper mechanism 13 Refrigerant circuit A Supply air ventilation path B Exhaust air passage C First series passage D Second communication passage

Claims (4)

ケーシング1の上端部に還気取入口2と排気口3を形成するとともにこのケーシング1の下端部に外気取入口4と給気口5を形成し、前記ケーシング1内に、前記還気取入口2と前記給気口5を連通連結し蒸発器6と再熱器7と給気ファン8を設けた縦方向の給気送風路Aと、前記外気取入口4と前記排気口3を連通連結し凝縮器9と排気ファン10を設けた縦方向の排気送風路Bと、を備え、前記給気送風路Aと前記排気送風路Bの間に、前記還気取入口2から取入れた還気を前記凝縮器9へも導く第一連通路Cと、前記外気取入口4から取入れた外気を前記蒸発器6へも導く第二連通路Dと、を設け、吹出位置移動自在な送風用ホース11を、前記給気口5に接続したことを特徴とする壁設置用一体形エアコン。A return air intake 2 and an exhaust port 3 are formed at the upper end of the casing 1, and an outside air intake 4 and an air supply port 5 are formed at the lower end of the casing 1, and the return air intake is formed in the casing 1. 2 and the air supply port 5 are connected in communication, and the vertical air supply air passage A provided with the evaporator 6, the reheater 7 and the air supply fan 8, and the outside air intake 4 and the exhaust port 3 are connected in communication. A vertical exhaust air passage B provided with a condenser 9 and an exhaust fan 10, and the return air introduced from the return air inlet 2 between the air supply air passage A and the exhaust air passage B And a second communication passage D for guiding the outside air taken in from the outside air inlet 4 to the evaporator 6, and a blowing hose that is movable in the blowing position. An air conditioner for wall installation, characterized in that 11 is connected to the air supply port 5. ケーシング1の上端部に還気取入口2を形成するとともにこのケーシング1の下端部に外気取入口4と給気口5と排気口3を形成し、前記ケーシング1内に、前記還気取入口2と前記給気口5を連通連結し蒸発器6と再熱器7と給気ファン8を設けた縦方向の給気送風路Aと、前記外気取入口4と前記排気口3を連通連結し凝縮器9と排気ファン10を設けた倒立U字状の排気送風路Bと、を備え、前記還気取入口2から取入れた還気を前記凝縮器9へも導く第一連通路Cと、前記外気取入口4から取入れた外気を前記蒸発器6へも導く第二連通路Dと、を設け、吹出位置移動自在な送風用ホース11を、前記給気口5に接続したことを特徴とする壁設置用一体形エアコン。A return air intake 2 is formed at the upper end of the casing 1, and an outside air intake 4, an air supply port 5 and an exhaust port 3 are formed at the lower end of the casing 1, and the return air intake is formed in the casing 1. 2 and the air supply port 5 are connected in communication, and the vertical air supply air passage A provided with the evaporator 6, the reheater 7 and the air supply fan 8, and the outside air intake 4 and the exhaust port 3 are connected in communication. An inverted U-shaped exhaust air passage B provided with a condenser 9 and an exhaust fan 10, and a first series passage C for leading the return air taken in from the return air inlet 2 to the condenser 9, A second communication path D for guiding outside air taken in from the outside air inlet 4 to the evaporator 6, and a blowing hose 11 that is freely movable in the blowing position is connected to the air inlet 5. Integrated air conditioner for wall installation. 給気送風路Aの還気の風量制御と排気送風路Bの外気の風量制御を行うダンパ機構12、又は、給気送風路Aの外気と還気の風量制御と排気送風路Bの外気と還気の風量制御を行うダンパ機構、を設けた請求項1又は2記載の壁設置用一体形エアコン。The damper mechanism 12 that controls the air volume control of the return air in the supply air passage A and the air volume control of the outside air in the exhaust air passage B, or the air volume control of the outside air and the return air in the air supply air passage A and the outside air in the exhaust air passage B The wall-mounted integrated air conditioner according to claim 1 or 2, further comprising a damper mechanism for controlling the air volume of the return air. 蒸発器6と凝縮器9と再熱器7の各々のフィンチューブを楕円管にした請求項1、2又は3記載の壁設置用一体形エアコン。The wall-mounted integrated air conditioner according to claim 1, 2, or 3, wherein the fin tubes of the evaporator 6, the condenser 9 and the reheater 7 are elliptical tubes.
JP2002307053A 2002-10-22 2002-10-22 Integrated air conditioner for wall installation Expired - Fee Related JP3726796B2 (en)

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