JP6456456B1 - Air conditioner for vehicles - Google Patents

Air conditioner for vehicles Download PDF

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JP6456456B1
JP6456456B1 JP2017210030A JP2017210030A JP6456456B1 JP 6456456 B1 JP6456456 B1 JP 6456456B1 JP 2017210030 A JP2017210030 A JP 2017210030A JP 2017210030 A JP2017210030 A JP 2017210030A JP 6456456 B1 JP6456456 B1 JP 6456456B1
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air
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outside air
inside air
vehicle
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JP2019081460A (en
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昌和 谷
昌和 谷
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Mitsubishi Electric Corp
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    • BPERFORMING OPERATIONS; TRANSPORTING
    • B60VEHICLES IN GENERAL
    • B60HARRANGEMENTS OF HEATING, COOLING, VENTILATING OR OTHER AIR-TREATING DEVICES SPECIALLY ADAPTED FOR PASSENGER OR GOODS SPACES OF VEHICLES
    • B60H1/00Heating, cooling or ventilating [HVAC] devices
    • B60H1/02Heating, cooling or ventilating [HVAC] devices the heat being derived from the propulsion plant
    • B60H1/03Heating, cooling or ventilating [HVAC] devices the heat being derived from the propulsion plant and from a source other than the propulsion plant
    • B60H1/039Heating, cooling or ventilating [HVAC] devices the heat being derived from the propulsion plant and from a source other than the propulsion plant from air leaving the interior of the vehicle, i.e. heat recovery

Abstract

【課題】車室外に排出される内気と車室内に導入される外気との間で熱交換させる熱回収器に対して内気を均一に流し、高い熱回収効率を実現することができる車両用空調装置を得る。【解決手段】エアコンユニット10は、外気導入口61及び車室外吹出口65が形成された車両壁81と、仕切板19を介して同軸に配置された第1のファン16及び第2のファン17により内気又は外気をそれぞれ送風するシロッコファン15と、内気又は外気を車室内に吹き出す車室内吹出口63、64と、内気と外気との間で熱交換させる熱回収器11と、外気導入口71を開閉する第1の仕切弁71と、車室外吹出口65を開閉するとともに、外気導入口61から流入する外気の流れと車室外吹出口65から流出する内気の流れとを仕切る第2の仕切弁72とを備え、熱回収器11は、シロッコファン15の上流側に配置されている。【選択図】図1An air conditioner for a vehicle capable of realizing high heat recovery efficiency by flowing the inside air uniformly to a heat recovery device for exchanging heat between the inside air discharged outside the vehicle interior and the outside air introduced into the vehicle interior. Get the device. An air conditioner unit (10) includes a first wall (16) and a second fan (17) arranged coaxially with a vehicle wall (81) in which an outside air introduction port (61) and a vehicle exterior air outlet (65) are formed, and a partition plate (19). The sirocco fan 15 for blowing the inside air or the outside air respectively, the vehicle interior outlets 63 and 64 for blowing the inside air or the outside air into the vehicle interior, the heat recovery device 11 for exchanging heat between the inside air and the outside air, and the outside air introduction port 71 A first partition valve 71 that opens and closes the vehicle, and a second partition that opens and closes the passenger compartment outside air outlet 65 and separates the flow of outside air flowing in from the outside air inlet 61 and the flow of inside air flowing out of the outside air outlet 65 of the vehicle interior. The heat recovery device 11 is disposed on the upstream side of the sirocco fan 15. [Selection] Figure 1

Description

この発明は、プラグインハイブリッド車等のハイブリッド車両、電気自動車等の電動車両に搭載され、車室内の空調を行う車両用空調装置に関するものである。   The present invention relates to a vehicle air conditioner that is mounted on a hybrid vehicle such as a plug-in hybrid vehicle or an electric vehicle such as an electric vehicle and performs air conditioning in a vehicle interior.

ハイブリッド車両や電動車両は車両の駆動に電力を利用するため、空調による消費電力が大きいと車両の電費が低下する。また、空調に伴う換気によって生じる熱損失は大きく、空調の消費電力に大きな影響を与えるため、可能な限り換気による熱損失を低減する必要がある。従来の車両用空調装置では、内気送風手段及び外気送風手段と内気排出口及び外気導入口との間に熱回収器を設け、車外に排出される内気と車内に導入される外気との間で熱交換させることで熱損失の低減を図っている(例えば、特許文献1参照)。   Since hybrid vehicles and electric vehicles use electric power to drive the vehicle, the power consumption of the vehicle decreases if the power consumption by air conditioning is large. Further, heat loss caused by ventilation accompanying air conditioning is large and greatly affects power consumption of the air conditioning. Therefore, it is necessary to reduce heat loss due to ventilation as much as possible. In the conventional vehicle air conditioner, a heat recovery device is provided between the inside air blowing means and the outside air blowing means, the inside air discharge port, and the outside air introduction port, and between the inside air discharged outside the vehicle and the outside air introduced into the vehicle. The heat loss is reduced by heat exchange (for example, refer to Patent Document 1).

特開2012−1036号公報(図1)Japanese Patent Laying-Open No. 2012-1036 (FIG. 1)

車両用空調装置では、最大静圧が高く静穏性に優れるシロッコファン等の遠心式送風機を用いることが望ましいとされている。一方、遠心式送風機は吹き出し部において径方向の風速分布が大きいという特徴があるため、特許文献1の車両用空調装置のように内気を排気する風路において内気送風手段の下流側に熱回収器を設けると、熱回収器に内気が均一に流れず熱回収効率が低下する虞があるという問題点がある。   In a vehicle air conditioner, it is desirable to use a centrifugal blower such as a sirocco fan having a high maximum static pressure and excellent quietness. On the other hand, since the centrifugal blower has a feature that the radial wind speed distribution is large in the blowout portion, the heat recovery device is provided downstream of the inside air blowing means in the air passage that exhausts the inside air as in the vehicle air conditioner of Patent Document 1. If this is provided, there is a problem in that the inside air does not flow uniformly in the heat recovery device and the heat recovery efficiency may be reduced.

この発明は、上記のような問題点を解決するためになされたもので、車室外に排出される内気と車室内に導入される外気との間で熱交換させる熱回収器に対して内気を均一に流し、高い熱回収効率を実現することができる車両用空調装置を得るものである。   The present invention has been made to solve the above-described problems, and is designed to reduce the inside air with respect to a heat recovery device that exchanges heat between the inside air discharged outside the vehicle interior and the outside air introduced into the vehicle interior. A vehicle air conditioner capable of flowing uniformly and realizing high heat recovery efficiency is obtained.

この発明の車両用空調装置は、車室外の空気である外気を導入する外気導入口、及び車室内の空気である内気を車室外に排出する内気排出口が形成された外壁と、仕切板を介して同軸に配置された第1のファン及び第2のファンを有し、内気又は外気を第1のファン及び第2のファンによりそれぞれ送風する遠心式送風機と、遠心式送風機により送風された内気又は外気を車室内に吹き出す車室内吹出口と、内気用の風路と外気用の風路を交互に形成しながら積層された複数の間隔板によって構成され、内気用の風路を流れる内気と外気用の風路を流れる外気との間で熱交換させる第1の熱交換器と、内部を冷媒が流通する配管を有し、内気又は外気と冷媒との間で熱交換させる第2の熱交換器と、外気導入口を開閉する第1の仕切弁と、外気導入口と内気排出口との間で回動可能に支持されて、内気排出口を開閉するとともに、外気導入口から流入する外気の流れと内気排出口から流出する内気の流れとを仕切る第2の仕切弁と、外気導入口から第1の熱交換器に延び、外気導入口から流入した外気を第1の熱交換器に導く外気導入路を第2の仕切弁との間に形成する第1の風路構成部材と、車室内から内気を導入する内気導入口から流入した内気を導く内気導入路を前記外壁との間に形成する第2の風路構成部材とを備え、第1の熱交換器は、遠心式送風機の上流側に配置されているものである。   An air conditioner for a vehicle according to the present invention includes an outer wall formed with an outside air introduction port for introducing outside air, which is air outside the vehicle compartment, an inside air discharge port for discharging inside air, which is air inside the vehicle compartment, to the outside of the vehicle compartment, and a partition plate. A centrifugal fan that has a first fan and a second fan that are coaxially arranged, and blows the inside air or outside air by the first fan and the second fan, respectively, and the inside air blown by the centrifugal fan Alternatively, the interior air outlet that blows outside air into the vehicle interior, and a plurality of interval plates that are stacked while alternately forming the air passage for the inside air and the air passage for the outside air, and the inside air that flows through the air passage for the inside air, A first heat exchanger for exchanging heat with the outside air flowing through the air passage for outside air, and a second heat having a pipe through which the refrigerant circulates and exchanging heat between the inside air or outside air and the refrigerant An exchanger, a first gate valve for opening and closing the outside air inlet, and an outside A second opening that opens and closes the inside air discharge port and that separates the flow of outside air flowing in from the outside air introduction port and the flow of inside air flowing out of the inside air discharge port while being supported rotatably between the introduction port and the inside air discharge port. A gate valve extending from the outside air introduction port to the first heat exchanger, and forming an outside air introduction path between the second gate valve and the outside air introduced from the outside air introduction port to the first heat exchanger. A first air passage constituent member and a second air passage constituent member that forms an inside air introduction passage for guiding the inside air flowing in from the inside air introduction port for introducing the inside air from the vehicle interior between the outer wall and the first air passage constituting member. The heat exchanger is disposed on the upstream side of the centrifugal blower.

この発明によれば、車室外に排出される内気と車室内に導入される外気との間で熱交換させる熱回収器に対して内気を均一に流し、高い熱回収効率を実現することができる。   According to the present invention, it is possible to flow the inside air uniformly to the heat recovery device that exchanges heat between the inside air discharged outside the vehicle interior and the outside air introduced into the vehicle interior, thereby realizing high heat recovery efficiency. .

この発明の実施の形態1における車両用空調装置の第1の風路形態を示す概略構成図である。It is a schematic block diagram which shows the 1st air path form of the vehicle air conditioner in Embodiment 1 of this invention. この発明の実施の形態1に係るヒートポンプシステムを示す概略構成図である。It is a schematic block diagram which shows the heat pump system which concerns on Embodiment 1 of this invention. この発明の実施の形態1における車両用空調装置の第2の風路形態を示す概略構成図である。It is a schematic block diagram which shows the 2nd wind path form of the vehicle air conditioner in Embodiment 1 of this invention. この発明の実施の形態1における車両用空調装置の第3の風路形態を示す概略構成図である。It is a schematic block diagram which shows the 3rd wind path form of the vehicle air conditioner in Embodiment 1 of this invention. この発明の実施の形態1における車両用空調装置の第4の風路形態を示す概略構成図である。It is a schematic block diagram which shows the 4th air path form of the vehicle air conditioner in Embodiment 1 of this invention. この発明の実施の形態2に係る熱回収器を示す概略構成図である。It is a schematic block diagram which shows the heat recovery device which concerns on Embodiment 2 of this invention.

実施の形態1.
<全体構成>
以下に、この発明の実施の形態1を図1から図5に基づいて説明する。図1は、実施の形態1における車両用空調装置の第1の風路形態を示す概略構成図である。なお、以下では車室外の空気を「外気」、車室内の空気を「内気」とし、単に「空気」と記載する場合は、内気又は外気を指すとする。エアコンユニット10、すなわち車両用空調装置は、例えば車両の前方部分、フロントガラスの下方に搭載され、ヒートポンプシステムを用いて車室内の空調を行うものである。エアコンユニット10は、その外周部分が車両壁81、すなわち外壁により構成されており、車両壁81の上部においては車室外の空気である外気をエアコンユニット10内に導入する外気導入口61、及び車室内の空気である内気を排出する車室外吹出口65、すなわち内気排出口がフロントガラス82との間に形成されている。また、車両壁81の車室内側の側部においては内気をエアコンユニット10内に導入する内気導入口62、エアコンユニット10内の空気を車室内に導入する第1の車室内吹出口63及び第2の車室内吹出口64がそれぞれ設けられている。第1の車室内吹出口63はフロントガラス82に対向しており、第1の車室内吹出口63から吹き出された空気が直接フロントガラス82に吹き付けられるようになっている。
Embodiment 1 FIG.
<Overall configuration>
Embodiment 1 of the present invention will be described below with reference to FIGS. FIG. 1 is a schematic configuration diagram showing a first air path configuration of the vehicle air conditioner in the first embodiment. In the following description, air outside the passenger compartment is referred to as “outside air”, air inside the passenger compartment is referred to as “inside air”, and simply “air” refers to inside air or outside air. The air conditioner unit 10, that is, the vehicle air conditioner, is mounted, for example, in the front portion of the vehicle, below the windshield, and performs air conditioning of the vehicle interior using a heat pump system. The air conditioner unit 10 has an outer peripheral portion constituted by a vehicle wall 81, that is, an outer wall. In the upper part of the vehicle wall 81, an outside air introduction port 61 that introduces outside air, which is air outside the passenger compartment, into the air conditioner unit 10 A vehicle exterior air outlet 65 that discharges indoor air, which is indoor air, that is, an indoor air outlet is formed between the windshield 82 and the vehicle. Further, at the side of the vehicle wall 81 on the vehicle interior side, an inside air introduction port 62 for introducing the inside air into the air conditioner unit 10, a first vehicle interior outlet 63 for introducing the air inside the air conditioner unit 10 into the vehicle interior, and a Two vehicle interior outlets 64 are provided. The first vehicle interior air outlet 63 faces the windshield 82, and the air blown from the first vehicle interior air outlet 63 is directly blown onto the windshield 82.

エアコンユニット10の内部には、内気と外気とを熱交換させる熱回収器11、すなわち第1の熱交換器と、冷媒が流通する金属製の配管をそれぞれ内蔵し、冷媒の蒸発に伴う吸熱によりエアコンユニット10内の空気を冷却する冷媒蒸発器12と、冷媒の凝縮に伴う放熱によりエアコンユニット10内の空気を加熱昇温する冷媒凝縮器13と、シロッコファン15、すなわち遠心式送風機が設けられている。冷媒蒸発器12及び冷媒凝縮器13は、内気又は外気と冷媒との間で熱交換させるものであり、第2の熱交換器に相当する。   The air conditioner unit 10 includes a heat recovery unit 11 for exchanging heat between the inside air and the outside air, that is, a first heat exchanger and a metal pipe through which the refrigerant flows, and absorbs heat due to evaporation of the refrigerant. There are provided a refrigerant evaporator 12 that cools the air in the air conditioner unit 10, a refrigerant condenser 13 that heats and raises the temperature of the air in the air conditioner unit 10 by heat radiation accompanying the condensation of the refrigerant, and a sirocco fan 15, that is, a centrifugal fan. ing. The refrigerant evaporator 12 and the refrigerant condenser 13 exchange heat between the inside air or outside air and the refrigerant, and correspond to a second heat exchanger.

図2は、実施の形態1に係るヒートポンプシステムを示す概略構成図である。図1において、エアコンユニット10については冷媒蒸発器12及び冷媒凝縮器13以外の図示を省略している。エアコンユニット10のようにハイブリッド車両や電動車両に搭載される空調システムのヒートポンプシステムは、冷媒を圧縮する圧縮機92、エアコンユニット10に搭載された冷媒蒸発器12及び冷媒凝縮器13、冷媒を膨張させる膨張弁94a、95a及び冷媒の流れを制御する電磁弁94b、95bをそれぞれ有する絞り弁94、96、車外に搭載される車外熱交換器93が一巡して配管されている。また、圧縮機92の高圧吐出側、すなわち冷媒蒸発器12及び冷媒凝縮器13と圧縮機92との間には四方弁91が設けられている。また、四方弁91と車外熱交換器93との間、及び冷媒凝縮器13と車外熱交換器93との間には逆止弁96、97がそれぞれ設けられている。   FIG. 2 is a schematic configuration diagram illustrating the heat pump system according to the first embodiment. In FIG. 1, the air conditioner unit 10 other than the refrigerant evaporator 12 and the refrigerant condenser 13 is not shown. A heat pump system of an air conditioning system mounted on a hybrid vehicle or an electric vehicle like the air conditioner unit 10 includes a compressor 92 that compresses the refrigerant, a refrigerant evaporator 12 and a refrigerant condenser 13 that are mounted on the air conditioner unit 10, and expands the refrigerant. Expansion valves 94a and 95a to be operated, throttle valves 94 and 96 having electromagnetic valves 94b and 95b for controlling the flow of the refrigerant, respectively, and an outside heat exchanger 93 mounted outside the vehicle are provided in a circuit. A four-way valve 91 is provided on the high-pressure discharge side of the compressor 92, that is, between the refrigerant evaporator 12 and the refrigerant condenser 13 and the compressor 92. Further, check valves 96 and 97 are provided between the four-way valve 91 and the external heat exchanger 93 and between the refrigerant condenser 13 and the external heat exchanger 93, respectively.

図2に示すヒートポンプシステムでは、配管内を流れる冷媒が凝縮と蒸発を繰り返しながら循環することで車室内から車外に熱輸送する冷房及び車室外から車室内に熱輸送する暖房が行われる。より具体的には、冷房時においては四方弁91を介して圧縮機92から車外熱交換器93に冷媒を供給して、車外熱交換器93にて放熱させた冷媒を絞り弁94で減圧し、冷媒蒸発器12で蒸発させてエアコンユニット10内の空気から吸熱させることで空気を冷却する。暖房時においては、冷房時から経路を切り換えた四方弁91を介して圧縮機92から冷媒凝縮器13に冷媒を供給し、冷媒凝縮器13にて放熱させることで空気を加熱昇温する。暖房時において、車外熱交換器93は蒸発器として動作する。また、除湿時においては冷媒凝縮器13、絞り弁95、車外熱交換器93、絞り弁94、冷媒蒸発器12の順に冷媒を流すなどして空気を冷却除湿した後に加熱昇温を行う。   In the heat pump system shown in FIG. 2, the refrigerant flowing in the piping circulates while repeating condensation and evaporation, thereby performing cooling for transporting heat from the vehicle interior to the outside of the vehicle and heating for transporting heat from outside the vehicle interior to the vehicle interior. More specifically, during cooling, the refrigerant is supplied from the compressor 92 to the external heat exchanger 93 via the four-way valve 91, and the refrigerant radiated by the external heat exchanger 93 is decompressed by the throttle valve 94. Then, the air is cooled by evaporating with the refrigerant evaporator 12 and absorbing heat from the air in the air conditioner unit 10. During heating, the refrigerant is supplied from the compressor 92 to the refrigerant condenser 13 via the four-way valve 91 whose path has been switched from the time of cooling, and the air is heated to raise the temperature by causing the refrigerant condenser 13 to dissipate heat. During heating, the outside heat exchanger 93 operates as an evaporator. Further, at the time of dehumidification, the temperature is raised by heating after cooling and dehumidifying the air by flowing the refrigerant in the order of the refrigerant condenser 13, the throttle valve 95, the outside heat exchanger 93, the throttle valve 94, and the refrigerant evaporator 12.

第1の車室内吹出口63及び第2の車室内吹出口64のいずれか一方又は両方には、上述した冷房時等における車室内の温度をモニタリングするための温度センサ(図示なし)が設置されている。温度センサの設置場所は第1の車室内吹出口63又は第2の車室内吹出口64に限られるものではないが、温度センサのモニター値と実際の車室内温度との乖離を抑制するため、できるだけ第1の車室内吹出口63又は第2の車室内吹出口64に近い位置に温度センサを設けることが望ましい。   One or both of the first vehicle interior outlet 63 and the second vehicle interior outlet 64 is provided with a temperature sensor (not shown) for monitoring the temperature in the vehicle interior during the cooling described above. ing. The installation location of the temperature sensor is not limited to the first vehicle interior air outlet 63 or the second vehicle interior air outlet 64, but in order to suppress the difference between the monitored value of the temperature sensor and the actual vehicle interior temperature, It is desirable to provide a temperature sensor as close to the first vehicle interior outlet 63 or the second vehicle interior outlet 64 as possible.

熱回収器11は、紙素材、樹脂などからなる複数の正方形状の間隔板を、図中紙面に垂直な方向を積層方向として積層したものであり、互いに隣接する間隔板の間には所定の間隔を保持するスペーサ(図示なし)が設けられ、間隔板の積層方向と垂直な方向に空気が流れる風路が複数形成されている。また、熱回収器11には外気導入口61及び車室外吹出口65に対向する側に外気口部11b及び排気口部11dが設けられ、外気口部11b及び排気口部11dの反対側に給気口部11c及び還気口部11aが設けられている。外気口部11bは、外気を熱回収器11内に流入させ、給気口部11cは、外気口部11bから熱回収器11内に流入した外気を熱回収器11の外に流出させる。還気口部11aは、内気を熱回収器11内に流入させ、排気口部11dは、還気口部11aから熱回収器11内に流入した内気を熱回収器11の外に流出させる。   The heat recovery unit 11 is formed by stacking a plurality of square interval plates made of paper material, resin, etc., with the direction perpendicular to the paper surface in the drawing as the stacking direction, and a predetermined interval between adjacent interval plates. A holding spacer (not shown) is provided, and a plurality of air passages through which air flows in a direction perpendicular to the stacking direction of the spacing plates are formed. Further, the heat recovery device 11 is provided with an outside air port portion 11b and an exhaust port portion 11d on the side facing the outside air introduction port 61 and the vehicle exterior air outlet 65, and is supplied to the opposite side of the outside air port portion 11b and the exhaust port portion 11d. An air port 11c and a return air port 11a are provided. The outside air port portion 11 b allows outside air to flow into the heat recovery device 11, and the air supply port portion 11 c causes the outside air flowing into the heat recovery device 11 from the outside air port portion 11 b to flow out of the heat recovery device 11. The return air port portion 11 a causes the inside air to flow into the heat recovery device 11, and the exhaust port portion 11 d causes the inside air that has flowed into the heat recovery device 11 from the return air port portion 11 a to flow out of the heat recovery device 11.

熱回収器11内の風路は、外気口部11bから給気口部11cに通じる外気用の風路と還気口部11aから排気口部11dに通じる内気用の風路が間隔板の積層方向に沿って交互に形成されており、互いに隣接する内気用の風路及び外気用の風路では、内気と外気が間隔板を介して熱交換しながら交差して流れるように構成されており、内気と外気が熱回収器11内で混合することはない。なお、間隔板及びスペーサの素材として、臭い成分を吸着する吸着消臭素材、粉じんを集塵する集塵素材、又はこれらの組み合わせを含む素材を用いてもよい。この場合、熱回収器11の内部に内気及び外気を流通させることで内気及び外気の空気質を改善することができる。
なお、実施の形態1の熱回収器11では、外気口部11bと給気口部11cを接続する風路と還気口部11aと排気口部11dを接続する風路の長さがの向きが直交している。すなわち、熱回収器11において、内気用の風路の向きと外気用の風路の向きは直交している。また、熱回収器11を構成する間隔板が正方形状であるので、内気用の風路の長さと外気用の風路の長さは等しい。
The air path in the heat recovery unit 11 is a stack of interval plates, which is an outside air path leading from the outside air port portion 11b to the air supply port portion 11c and an inside air air channel leading from the return air port portion 11a to the exhaust port portion 11d. The inside air passage and the outside air passage adjacent to each other are formed along the direction so that the inside air and the outside air flow through each other while exchanging heat through the interval plate. The inside air and the outside air are not mixed in the heat recovery unit 11. In addition, as a material of a space | interval board and a spacer, you may use the adsorption | suction deodorizing material which adsorb | sucks an odor component, the dust collection material which collects dust, or the material containing these combination. In this case, the air quality of the inside air and the outside air can be improved by circulating the inside air and the outside air inside the heat recovery unit 11.
In the heat recovery device 11 of the first embodiment, the length of the air path connecting the outside air port portion 11b and the air supply port portion 11c, and the length of the air path connecting the return air port portion 11a and the exhaust port portion 11d is the direction. Are orthogonal. That is, in the heat recovery device 11, the direction of the air path for the inside air and the direction of the air path for the outside air are orthogonal. Further, since the interval plate constituting the heat recovery unit 11 is square, the length of the air passage for the inside air is equal to the length of the air passage for the outside air.

シロッコファン15は、図中上方向に延びる回転軸が設けられた回転機18と、図中右側に吹き出し部を持つダクト(図示なし)を備えたケースにそれぞれ収納され、同軸に配置されて中心がそれぞれ回転機18の回転軸に貫通された第1のファン16及び第2のファン17と、第1のファン16と第2のファン17との間に配置された仕切板19とを有する。第1のファン16は、図中仕切板19の上方、すなわち仕切板19よりも外気導入口61側に配置されており、第2のファン17は、外気導入口61とは反対側に配置されている。第1のファン16及び第2のファン17は、回転機18によって回転駆動されることにより上方及び下方の空気をそれぞれ取り込み、取り込んだ空気を径方向に流すものである。第1のファン16及び第2のファン17によってそれぞれ径方向に流された空気は、上記したダクトによって導かれ図中右方向へ吹き出されて送風される。ダクトから吹き出される空気は、第1のファン16及び第2のファン17の径方向に対して風速に偏りがあり、回転軸から遠い側ほど風速が大きくなる。一方、第1のファン16及び第2のファン17にそれぞれ取り込まれる空気の流れには偏りがなく、シロッコファンの上流側では空気の流れが均一となっている。
なお、第1のファン16及び第2のファン17の径は、外気及び内気の流路抵抗に応じて設定すればよく、特に限られるものではない。
The sirocco fan 15 is housed in a case provided with a rotating machine 18 provided with a rotating shaft extending upward in the drawing and a duct (not shown) having a blowing portion on the right side in the drawing, and is coaxially arranged and centered. Are respectively provided with a first fan 16 and a second fan 17 that are passed through the rotation shaft of the rotating machine 18, and a partition plate 19 disposed between the first fan 16 and the second fan 17. The first fan 16 is disposed above the partition plate 19 in the drawing, that is, on the outside air introduction port 61 side with respect to the partition plate 19, and the second fan 17 is disposed on the side opposite to the outside air introduction port 61. ing. The first fan 16 and the second fan 17 are driven to rotate by a rotating machine 18 to take in upper and lower air, respectively, and flow the taken air in the radial direction. The air flowed in the radial direction by the first fan 16 and the second fan 17 is guided by the duct described above, blown out in the right direction in the drawing, and blown. The air blown out of the duct is biased in the wind speed with respect to the radial direction of the first fan 16 and the second fan 17, and the wind speed increases toward the side farther from the rotation axis. On the other hand, the flow of air taken into the first fan 16 and the second fan 17 is not biased, and the air flow is uniform on the upstream side of the sirocco fan.
The diameters of the first fan 16 and the second fan 17 may be set according to the flow resistance of the outside air and the inside air, and are not particularly limited.

エアコンユニット10内は、それぞれ樹脂成型品で構成された第1の風路壁41〜第5の風路壁45及び第1の仕切弁71〜第4の仕切弁74により内部に空気が流通する複数の風路が形成される。これらの風路は、一方の端部に回転軸がそれぞれ設けられ、アクチュエータなどの駆動装置により回転軸回りに回転駆動される第1の仕切弁71〜第4の仕切弁74の開閉動作により複数の風路形態に切り換えられる。   In the air conditioner unit 10, air flows through the first air passage wall 41 to the fifth air passage wall 45 and the first gate valve 71 to the fourth gate valve 74, which are each formed of a resin molded product. A plurality of air paths are formed. A plurality of these air passages are provided by opening and closing operations of the first gate valve 71 to the fourth gate valve 74, each of which has a rotary shaft at one end and is driven to rotate around the rotary shaft by a driving device such as an actuator. Can be switched to

第1の風路壁41、すなわち第1の風路構成部材は、外気導入口61から熱回収器11の方向に延びるもので、一方の端部が熱回収器11の外気口部11bと排気口部11dの接点部に接続されている。第1の風路壁41の他方の端部、すなわち外気導入口61側端部には、第1の仕切弁71の回転軸が設けられ、第1の仕切弁71を回動可能に支持している。   The first air passage wall 41, that is, the first air passage constituent member extends from the outside air inlet 61 in the direction of the heat recovery unit 11, and one end thereof is exhausted from the outside air port 11 b of the heat recovery unit 11. It is connected to the contact portion of the mouth portion 11d. A rotating shaft of the first gate valve 71 is provided at the other end of the first air passage wall 41, that is, the end on the outside air inlet 61 side, and supports the first gate valve 71 so as to be rotatable. ing.

第2の風路壁42、すなわち第2の風路構成部材は、熱回収器11から第2の車室内吹出口64の方向に延びるもので、内気を導入する内気導入口62及び内気導入口62から流入した内気を導く内気導入路52を車両壁81の底部との間に形成している。また、第2の風路壁42の一方の端部、すなわち内気導入口62とは反対側の端部には、第3の仕切弁73の回転軸が設けられ、第3の仕切弁73を回動可能に支持している。第3の仕切弁73は、熱回収器11と第2の風路壁42との間の開閉状態を切り換えるものである。熱回収器11と第2の風路壁42との間が開放されているとき、内気導入路52を流通する内気の流れは2つに分かれ、それぞれ熱回収器11の還気口11aと第2のファン17に向かって流れる。熱回収器11と第2の風路壁42との間が第3の仕切弁73により仕切られているとき、内気導入路52を流通する内気は全て熱回収器11の還気口11aに向かって流れる。   The second air passage wall 42, that is, the second air passage constituent member extends in the direction from the heat recovery device 11 to the second vehicle interior air outlet 64, and the inside air inlet 62 and the inside air inlet for introducing the inside air. An inside air introduction path 52 that guides inside air flowing in from 62 is formed between the bottom of the vehicle wall 81. A rotating shaft of the third gate valve 73 is provided at one end of the second air passage wall 42, that is, the end opposite to the inside air introduction port 62, and the third gate valve 73 is connected to the second air passage wall 42. It is pivotally supported. The third gate valve 73 switches the open / close state between the heat recovery device 11 and the second air passage wall 42. When the space between the heat recovery device 11 and the second air passage wall 42 is open, the flow of the internal air flowing through the internal air introduction passage 52 is divided into two, and the return air port 11a of the heat recovery device 11 and the second air flow passage respectively. It flows toward the second fan 17. When the space between the heat recovery device 11 and the second air passage wall 42 is partitioned by the third gate valve 73, all the internal air flowing through the internal air introduction passage 52 is directed toward the return air port 11a of the heat recovery device 11. Flowing.

シロッコファン15の仕切板19と第2の風路壁42との間には、熱回収器11の給気口部11cから流出した空気を第2のファン17によって冷媒蒸発器12に導く送風路53が形成されている。すなわち、送風路53において、熱回収器11はシロッコファン15の上流側、冷媒蒸発器12はシロッコファン15の下流側となっている。   Between the partition plate 19 of the sirocco fan 15 and the second air passage wall 42, an air passage that guides the air flowing out from the air supply port 11 c of the heat recovery device 11 to the refrigerant evaporator 12 by the second fan 17. 53 is formed. That is, in the air blowing path 53, the heat recovery unit 11 is on the upstream side of the sirocco fan 15, and the refrigerant evaporator 12 is on the downstream side of the sirocco fan 15.

第4の風路壁44は、冷媒凝縮器13から第1の車室内吹出口63と車室外吹出口65の境界の方向に延びるもので、一方の端部が冷媒凝縮器13に接続されており、他方の端部がフロントガラス82の下端に接続されている。   The fourth air passage wall 44 extends from the refrigerant condenser 13 in the direction of the boundary between the first vehicle interior outlet 63 and the vehicle exterior outlet 65, and has one end connected to the refrigerant condenser 13. The other end is connected to the lower end of the windshield 82.

第3の風路壁43は、冷媒凝縮器13から第1の車室内吹出口63の方向に延びるもので、一方の端部が冷媒凝縮器13に接続され、他方の端部がフロントガラス82に接続されている。   The third air passage wall 43 extends from the refrigerant condenser 13 in the direction of the first vehicle interior outlet 63, and has one end connected to the refrigerant condenser 13 and the other end windshield 82. It is connected to the.

第5の風路壁45は、一方の端部が冷媒蒸発器12に接続され、他方の端部が冷媒凝縮器13に接続されている。   The fifth air passage wall 45 has one end connected to the refrigerant evaporator 12 and the other end connected to the refrigerant condenser 13.

外気導入口61と車室外吹出口65との間には、第2の仕切弁72の回転軸が設けられており、第2の仕切弁72が回動可能に支持されている。第2の仕切弁72は、車室外吹出口65の開閉状態を切り換えるものである。   A rotating shaft of the second gate valve 72 is provided between the outside air inlet 61 and the vehicle exterior air outlet 65, and the second gate valve 72 is rotatably supported. The second gate valve 72 switches the open / close state of the vehicle exterior air outlet 65.

シロッコファン15の仕切板19は、シロッコファン15の上流側の端部が熱回収器11の排気口部11dと給気口部11cの接点に接続されている。下流側の端部には第4の仕切弁74の回転軸が設けられており、第4の仕切弁74を回動可能に支持している。第4の仕切弁74は、第1のファン16によって送風される空気と第2のファン17によって送風される空気との間を下流側で仕切るものである。また第4の仕切弁74は、回転駆動されることで第1のファン16によって送風される空気の流れを切り換える。   The partition plate 19 of the sirocco fan 15 has an upstream end of the sirocco fan 15 connected to a contact point between the exhaust port 11d and the air supply port 11c of the heat recovery unit 11. A rotary shaft of the fourth gate valve 74 is provided at the downstream end, and the fourth gate valve 74 is rotatably supported. The fourth gate valve 74 partitions the air blown by the first fan 16 and the air blown by the second fan 17 on the downstream side. In addition, the fourth gate valve 74 is rotationally driven to switch the flow of air blown by the first fan 16.

第4の風路壁44と第5の風路壁45との間、及び第4の風路壁44と第3の風路壁43との間には、冷媒凝縮器13を通して空気を第1の車室内吹出口63に導く第1の車室内給気路55が形成されている。また、第2の風路壁42と第5の風路壁45との間、及び第2の風路壁42と第3の風路壁43との間には、冷媒凝縮器13を通して空気を第2の車室内吹出口64に導く第2の車室内給気路56が形成されている。
上記は、以下で説明する各風路形態について共通である。
Between the fourth air passage wall 44 and the fifth air passage wall 45, and between the fourth air passage wall 44 and the third air passage wall 43, the air is passed through the refrigerant condenser 13 for the first time. A first vehicle interior air supply passage 55 that leads to the vehicle interior air outlet 63 is formed. Further, air is passed through the refrigerant condenser 13 between the second air passage wall 42 and the fifth air passage wall 45 and between the second air passage wall 42 and the third air passage wall 43. A second vehicle interior air supply path 56 that leads to the second vehicle interior air outlet 64 is formed.
The above is common for each air path configuration described below.

次に、それぞれの風路形態について説明する。   Next, each air path form is demonstrated.

<第1の風路形態>
図1は、第1の風路形態を示しており、図中黒塗りの矢印が内気の流れを表し、白抜きの矢印が外気の流れを表している。第1の風路形態は、換気において車室内に取り込まれる外気と車室外に排出される内気との間で熱交換させることにより、車室外に排出される内気から熱回収するもので、第1の仕切弁71の先端部(回転軸が設けられている側とは反対側の端部、他の仕切弁についても同様)を第2の仕切弁72から離間させることで外気導入口61を開放し、外気をエアコンユニット10内に導入可能とする。また、第2の仕切弁72の先端部を第4の風路壁44から離間させ、熱回収器11に当接させることで車室外吹出口65を開放してエアコンユニット10内の内気を車室外に排出可能とするとともに、外気導入口61から流入する外気の流れと車室外吹出口65から排出される内気の流れとが、第2の仕切弁72により仕切られるようにする。また、第3の仕切弁73の先端部を熱回収器11に当接させることで内気導入路52と送風路53との間を仕切る。また、第4の仕切弁74の先端部を第4の風路壁44に当接させる。
<First air path configuration>
FIG. 1 shows a first air path configuration, in which black arrows represent the flow of inside air and white arrows represent the flow of outside air. In the first air path configuration, heat is recovered from the inside air exhausted outside the vehicle interior by exchanging heat between the outside air taken into the vehicle interior and the inside air exhausted outside the vehicle interior during ventilation. The outside air inlet 61 is opened by separating the tip of the gate valve 71 (the end opposite to the side where the rotation shaft is provided, the same for other gate valves) from the second gate valve 72. Thus, outside air can be introduced into the air conditioner unit 10. Further, the front end portion of the second gate valve 72 is separated from the fourth air passage wall 44 and is brought into contact with the heat recovery unit 11 to open the outside air outlet 65 and to remove the inside air in the air conditioner unit 10 from the vehicle. The air can be discharged to the outside, and the flow of outside air flowing in from the outside air introduction port 61 and the flow of inside air discharged from the vehicle interior outside air outlet 65 are partitioned by the second gate valve 72. Further, the tip of the third gate valve 73 is brought into contact with the heat recovery device 11 to partition the inside air introduction path 52 and the air blowing path 53. Further, the tip of the fourth gate valve 74 is brought into contact with the fourth air passage wall 44.

上記のように第1の仕切弁71〜第4の仕切弁74を設定することにより、外気導入口61から流入した外気を熱回収器11の外気口部11bに導く外気導入路51が第2の仕切弁72と第1の風路壁41との間に形成され、熱回収器11の排気口部11dから流出した内気を第1のファン16を通して車室外吹出口65に導く内気排出路541が第2の仕切弁72と第4の風路壁44との間に形成される。   By setting the first gate valve 71 to the fourth gate valve 74 as described above, the outside air introduction path 51 that guides the outside air flowing from the outside air introduction port 61 to the outside air port portion 11b of the heat recovery device 11 is the second. The inside air discharge path 541 is formed between the gate valve 72 and the first air passage wall 41 and guides the inside air flowing out from the exhaust port 11d of the heat recovery device 11 to the outside air outlet 65 through the first fan 16. Is formed between the second gate valve 72 and the fourth air passage wall 44.

第1の風路形態において、外気導入口61からエアコンユニット10内に流入した外気は、外気導入路51を通って外気口部11bから熱回収器11内に流入する。熱回収器11に流入した外気は、内気と熱交換しながら熱回収器11内を給気口部11cに向かって流れ、給気口部11cから流出した後、第2のファン17に取り込まれる。第2のファン17に取り込まれた外気は、第2のファン17によって送風路53を図中右方向に流れ、そのまま冷媒蒸発器12を通過する。冷媒蒸発器12を通過した外気の一部は、第1の車室内給気路55を通って冷媒凝縮器13を通過し、第1の車室内吹出口63から車室内に流入する。残りの外気は、第2の車室内給気路56を通って冷媒凝縮器13を通過し、第2の車室内吹出口64から車室内に流入する。   In the first air path configuration, outside air that has flowed into the air conditioner unit 10 from the outside air introduction port 61 flows into the heat recovery device 11 from the outside air port portion 11 b through the outside air introduction passage 51. The outside air that has flowed into the heat recovery device 11 flows through the heat recovery device 11 toward the air supply port portion 11c while exchanging heat with the internal air, flows out of the air supply port portion 11c, and then is taken into the second fan 17. . The outside air taken into the second fan 17 flows in the right direction in the figure by the second fan 17 and passes through the refrigerant evaporator 12 as it is. A portion of the outside air that has passed through the refrigerant evaporator 12 passes through the refrigerant condenser 13 through the first vehicle interior air supply passage 55 and flows into the vehicle interior from the first vehicle interior outlet 63. The remaining outside air passes through the refrigerant condenser 13 through the second vehicle interior air supply path 56 and flows into the vehicle interior from the second vehicle interior outlet 64.

内気導入口62からエアコンユニット10内に流入した内気は、内気導入路52を通って還気口部11aから熱回収器11内に流入し、外気と熱交換しながら熱回収器11内を流れて排気口部11dから流出した後、第1のファン16に取り込まれる。第1のファン16に取り込まれた内気は、第1のファン16によって内気排出路541を流れ、車室外吹出口65から車室外に排出される。   The inside air that has flowed into the air conditioner unit 10 from the inside air introduction port 62 flows into the heat recovery device 11 from the return air port portion 11a through the inside air introduction path 52, and flows through the heat recovery device 11 while exchanging heat with the outside air. Then, after flowing out from the exhaust port 11d, the air is taken into the first fan 16. The inside air taken in by the first fan 16 flows through the inside air discharge passage 541 by the first fan 16 and is discharged from the passenger compartment outside outlet 65 to the outside of the passenger compartment.

第1の風路形態では、熱回収器11内で内気と外気が交差するが、熱回収器11内の内気用の風路と外気用の風路は、上述したように間隔板により仕切られているので、熱回収器11内で内気と外気が混合することはない。また、熱回収器11外でも、第2の仕切弁72、仕切板19及び第4の仕切弁74により内気の流れと外気の流れとの間が仕切られているため、内気と外気が混合することはない。   In the first air path configuration, the inside air and the outside air intersect in the heat recovery unit 11, but the inside air path and the outside air path in the heat recovery unit 11 are partitioned by the spacing plate as described above. Therefore, the inside air and the outside air are not mixed in the heat recovery unit 11. Also, outside the heat recovery unit 11, since the flow of the internal air and the flow of the external air are partitioned by the second gate valve 72, the partition plate 19, and the fourth gate valve 74, the internal air and the external air are mixed. There is nothing.

<第2の風路形態>
図3は、第2の風路形態を示している。第2の風路形態は、外気導入口61の車外側に設けた空気汚れ検出センサ(図示なし)により、窒素酸化物(NOx)、硫黄酸化物(SOx)、不快な臭い、粉じんなどを検知した場合に、外気による汚染が車室内に流入することを防ぎながら内気を循環して車室内の快適性を維持するもので、第1の仕切弁71の先端部を第2の仕切弁72の回転軸に当接させて外気導入口61を閉じるとともに、第2の仕切弁72の先端部を第4の風路壁44に当接させて車室外吹出口65を閉じる。また、第3の仕切弁73の先端部を熱回収器11から離間させ、熱回収器11と第2の風路壁42との間を開放する。また、第4の仕切弁74の先端部を冷媒蒸発器12に当接させる。
<Second air path configuration>
FIG. 3 shows a second air path configuration. The second air path configuration detects nitrogen oxides (NOx), sulfur oxides (SOx), unpleasant odors, dust, etc. by an air dirt detection sensor (not shown) provided outside the outside air inlet 61. In this case, the inside air is circulated while maintaining the comfort in the passenger compartment while preventing the contamination by the outside air from flowing into the passenger compartment, and the tip of the first gate valve 71 is connected to the second gate valve 72. The outside air inlet 61 is closed by making contact with the rotation shaft, and the front end portion of the second gate valve 72 is brought into contact with the fourth air passage wall 44 to close the vehicle interior outside outlet 65. Further, the tip of the third gate valve 73 is separated from the heat recovery device 11 to open the space between the heat recovery device 11 and the second air passage wall 42. Further, the tip of the fourth gate valve 74 is brought into contact with the refrigerant evaporator 12.

上記のように第1の仕切弁71〜第4の仕切弁74を設定することにより、仕切板19及び第4の仕切弁74と、第2の仕切弁72及び第4の風路壁44との間には、熱回収器11の給気口部11cから流出した内気を第1のファン16を通して冷媒蒸発器12に導く送風路542が形成される。また、内気導入路52と送風路53との間で空気が流通することが可能となる。また、送風路542及び送風路53は、それぞれ第1の車室内給気路55及び第2の車室内給気路56に接続される。送風路542と送風路53の間は、仕切板19及び第4の仕切弁74により仕切られている。   By setting the first gate valve 71 to the fourth gate valve 74 as described above, the partition plate 19 and the fourth gate valve 74, the second gate valve 72 and the fourth air passage wall 44, In between, an air passage 542 is formed that guides the inside air flowing out from the air supply port 11 c of the heat recovery unit 11 to the refrigerant evaporator 12 through the first fan 16. Further, air can flow between the inside air introduction path 52 and the air blowing path 53. The air supply path 542 and the air supply path 53 are connected to the first vehicle interior air supply path 55 and the second vehicle interior air supply path 56, respectively. The air passage 542 and the air passage 53 are partitioned by the partition plate 19 and the fourth gate valve 74.

第2の風路形態において、内気導入口62からエアコンユニット10内に流入した内気は、内気導入路52を通った後に2つに分かれ、一部が還気口部11aから熱回収器11内に流入し、残りが送風路53に流入する。熱回収器11内に流入した内気は、排気口部11dから流出して第1のファン16に取り込まれ、第1のファン16によって送風路542を図中右方向に流れて冷媒蒸発器12を通過する。冷媒蒸発器12を通過した内気は第1の車室内給気路55を通って冷媒凝縮器13を通過し、第1の車室内吹出口63から車室内に流入する。内気導入路52から送風路53に流入した内気は、送風路53を流れて第2のファン17に取り込まれ、第2のファン17によって送風路53を図中右方向に流れて冷媒蒸発器12を通過する。冷媒蒸発器12を通過した内気は第2の車室内給気路56を通って冷媒凝縮器13を通過し、第2の車室内吹出口64から車室内に流入する。このように、第2の風路形態では外気を遮断しながらエアコンユニット10と車室内との間で内気を循環させる。なお、第2の風路形態における内気の循環量は、第3の仕切弁73の開度(第3の仕切弁73の先端部と熱回収器11との間の距離)により調整可能である。   In the second air path configuration, the inside air that has flowed into the air conditioner unit 10 from the inside air introduction port 62 is divided into two after passing through the inside air introduction passage 52, and a part of the inside air is returned from the return air port portion 11a to the heat recovery device 11. And the remainder flows into the air passage 53. The inside air that has flowed into the heat recovery unit 11 flows out of the exhaust port 11d and is taken into the first fan 16, and flows through the air passage 542 in the right direction in the drawing by the first fan 16 and passes through the refrigerant evaporator 12. pass. The inside air that has passed through the refrigerant evaporator 12 passes through the first vehicle interior air supply passage 55, passes through the refrigerant condenser 13, and flows into the vehicle interior from the first vehicle interior outlet 63. The inside air that has flowed into the air passage 53 from the inside air introduction passage 52 flows through the air passage 53 and is taken into the second fan 17, and flows through the air passage 53 in the right direction in the drawing by the second fan 17 and flows into the refrigerant evaporator 12. Pass through. The inside air that has passed through the refrigerant evaporator 12 passes through the second vehicle interior air supply passage 56, passes through the refrigerant condenser 13, and flows into the vehicle interior from the second vehicle interior outlet 64. As described above, in the second air path configuration, the inside air is circulated between the air conditioner unit 10 and the passenger compartment while blocking the outside air. In addition, the circulation amount of the inside air in the second air path configuration can be adjusted by the opening degree of the third gate valve 73 (the distance between the tip of the third gate valve 73 and the heat recovery device 11). .

<第3の風路形態>
図4は、第3の風路形態を示している。第3の風路形態は、フロントガラス82の曇りを除去する防曇デフロスト運転のためのもので、第1の仕切弁71の先端部を第2の仕切弁72の回転軸から離間させることで外気導入口61を開放し、外気をエアコンユニット10内に導入可能とする一方で、第2の仕切弁72の先端部を第4の風路壁44に当接させて車室外吹出口65を閉じる。また、第3の仕切弁73の先端部を熱回収器11から離間させ、熱回収器11と第2の風路壁42との間を開放する。また、第4の仕切弁74の先端部を冷媒蒸発器12に当接させる。
<Third wind form>
FIG. 4 shows a third air path configuration. The third air path configuration is for an anti-fogging defrost operation that removes fogging of the windshield 82, and by separating the tip of the first gate valve 71 from the rotating shaft of the second gate valve 72. The outside air inlet 61 is opened to allow outside air to be introduced into the air conditioner unit 10, while the front end of the second gate valve 72 is brought into contact with the fourth air passage wall 44 to open the outside air outlet 65. close up. Further, the tip of the third gate valve 73 is separated from the heat recovery device 11 to open the space between the heat recovery device 11 and the second air passage wall 42. Further, the tip of the fourth gate valve 74 is brought into contact with the refrigerant evaporator 12.

上記のように第1の仕切弁71〜第4の仕切弁74を設定することにより、仕切板19及び第4の仕切弁74と、第2の仕切弁72及び第4の風路壁44との間には、外気導入口61から流入した外気を冷媒蒸発器12に導く送風路543が形成される。また、内気導入路52と送風路53との間で空気が流通することが可能となる。また、送風路543及び送風路53は、それぞれ第1の車室内給気路55及び第2の車室内給気路56に接続される。送風路543と送風路53の間は、仕切板19及び第4の仕切弁74により仕切られている。   By setting the first gate valve 71 to the fourth gate valve 74 as described above, the partition plate 19 and the fourth gate valve 74, the second gate valve 72 and the fourth air passage wall 44, In between, the ventilation path 543 which leads the external air which flowed in from the external air inlet 61 to the refrigerant | coolant evaporator 12 is formed. Further, air can flow between the inside air introduction path 52 and the air blowing path 53. The air supply path 543 and the air supply path 53 are connected to the first vehicle interior air supply path 55 and the second vehicle interior air supply path 56, respectively. The air passage 543 and the air passage 53 are partitioned by the partition plate 19 and the fourth gate valve 74.

第3の風路形態において、外気導入口61からエアコンユニット10内に流入した外気は、第1のファン16に取り込まれ、第1のファン16によってより送風路543を図中右側に流れて冷媒蒸発器12を通過する。冷媒蒸発器12を通過した外気は、第1の車室内給気路55を通って冷媒凝縮器13を通過し、第1の車室内吹出口63から車室内に流入する。   In the third air path configuration, the outside air that has flowed into the air conditioner unit 10 from the outside air inlet 61 is taken into the first fan 16, and flows through the air passage 543 to the right side in the drawing by the first fan 16 to generate refrigerant. Pass through the evaporator 12. The outside air that has passed through the refrigerant evaporator 12 passes through the first vehicle interior air supply passage 55, passes through the refrigerant condenser 13, and flows into the vehicle interior from the first vehicle interior outlet 63.

第1の車室内吹出口63から車室内に流入する外気は、冷媒蒸発器12を通過する際に冷却除湿され、冷媒凝縮器13を通過する際に加熱昇温される。このため、フロントガラス82の車室内側には湿度が低く、温度が車外温度以上である空気が直接吹き付けられることとなり、フロントガラス82の曇りが除去される。なお、第1の風路形態でも外気を除湿してフロントガラス82に吹き付けることが可能であるが、第3の風路形態では熱回収器11を通さずに外気を車室内に取り入れるため、流路抵抗が第1の風路形態よりも小さい。このため、第3の風路形態ではより多くの外気を除湿して車室内に送ることができ、防曇効果が大きい。   The outside air flowing into the vehicle interior from the first vehicle interior outlet 63 is cooled and dehumidified when passing through the refrigerant evaporator 12, and heated and heated when passing through the refrigerant condenser 13. For this reason, air having a low humidity and a temperature equal to or higher than the temperature outside the vehicle is directly blown to the vehicle interior side of the windshield 82, and fogging of the windshield 82 is removed. It is possible to dehumidify the outside air and blow it onto the windshield 82 even in the first air path configuration. However, in the third air path configuration, since the outside air is taken into the vehicle interior without passing through the heat recovery device 11, The road resistance is smaller than that of the first air path configuration. For this reason, in the 3rd airway form, more external air can be dehumidified and sent to a vehicle interior, and an anti-fogging effect is large.

内気導入口62からエアコンユニット10内に流入した内気は、内気導入路52を通った後、送風路53に流入する。送風路53に流入した内気は、送風路53を流れて第2のファン17に取り込まれ、第2のファン17によって送風路53を流れて、冷媒蒸発器12を通過する。冷媒蒸発器12を通過した内気は第2の車室内給気路56を通って冷媒凝縮器13を通過し、第2の車室内吹出口64から車室内に流入する。このように、第3の風路形態では、車室内の空調を内気の循環により行う。   The inside air that has flowed into the air conditioner unit 10 from the inside air introduction port 62 passes through the inside air introduction path 52 and then flows into the air blowing path 53. The inside air that has flowed into the air passage 53 flows through the air passage 53 and is taken into the second fan 17, flows through the air passage 53 by the second fan 17, and passes through the refrigerant evaporator 12. The inside air that has passed through the refrigerant evaporator 12 passes through the second vehicle interior air supply passage 56, passes through the refrigerant condenser 13, and flows into the vehicle interior from the second vehicle interior outlet 64. As described above, in the third air path configuration, the air conditioning in the passenger compartment is performed by circulating the inside air.

第3の風路形態において、エアコンユニット10内における外気の風路と内気の風路が仕切板19や第4の仕切弁74により遮断されている。また、内気と外気の間で熱交換が行われて熱損失が発生することもないため、省エネルギーで空調を行うことが可能である。なお、第3の風路形態における内気の循環量は、第2の風路形態の場合と同様に第3の仕切弁73の開度により調整可能である。   In the third air path configuration, the air path of the outside air and the air path of the inside air in the air conditioner unit 10 are blocked by the partition plate 19 and the fourth gate valve 74. Further, heat exchange is not performed between the inside air and the outside air, and no heat loss occurs, so that air conditioning can be performed with energy saving. Note that the amount of the inside air in the third air path configuration can be adjusted by the opening of the third gate valve 73 as in the second air channel configuration.

<第4の風路形態>
図5は、第4の風路形態を示している。第4の風路形態は、外気の温度が0℃以下となる環境下などにおいて、熱回収器11に発生する結氷を解氷するためのもので、第1の仕切弁71の先端部を第2の仕切弁72の回転軸に当接させて外気導入口61を閉じるとともに、第2の仕切弁72の先端部を第4の風路壁44に当接させて車室外吹出口65を閉じる。また、第3の仕切弁73の先端部を熱回収器11に当接させることで内気導入路52と送風路53との間を仕切る。また、第4の仕切弁74の先端部を冷媒蒸発器12に当接させる。
<Fourth wind form>
FIG. 5 shows a fourth air path configuration. The fourth air path configuration is for defrosting the icing generated in the heat recovery device 11 in an environment where the temperature of the outside air is 0 ° C. or less. The outside air inlet 61 is closed by abutting against the rotating shaft of the second gate valve 72, and the vehicle exterior air outlet 65 is closed by bringing the tip of the second gate valve 72 into contact with the fourth air passage wall 44. . Further, the tip of the third gate valve 73 is brought into contact with the heat recovery device 11 to partition the inside air introduction path 52 and the air blowing path 53. Further, the tip of the fourth gate valve 74 is brought into contact with the refrigerant evaporator 12.

上記のように第1の仕切弁71〜第4の仕切弁74を設定することにより、仕切板19及び第4の仕切弁74と、第2の仕切弁72及び第4の風路壁44との間には、熱回収器11の給気口部11cから流出した内気を第1のファン16を通して冷媒蒸発器12に導く送風路544が形成される。また、送風路544及び送風路53は、それぞれ第1の車室内給気路55及び第2の車室内給気路56に接続される。送風路542と送風路53の間は、仕切板19及び第4の仕切弁74により仕切られている。   By setting the first gate valve 71 to the fourth gate valve 74 as described above, the partition plate 19 and the fourth gate valve 74, the second gate valve 72 and the fourth air passage wall 44, In the meantime, an air passage 544 that guides the inside air flowing out from the air supply port 11 c of the heat recovery device 11 to the refrigerant evaporator 12 through the first fan 16 is formed. Further, the air passage 544 and the air passage 53 are connected to the first vehicle interior air supply passage 55 and the second vehicle interior air supply passage 56, respectively. The air passage 542 and the air passage 53 are partitioned by the partition plate 19 and the fourth gate valve 74.

第4の風路形態において、内気導入口62からエアコンユニット10内に流入した内気は、内気導入路52を通った後、還気口部11aから熱回収器11内に流入する。熱回収器11内に流入した内気は、排気口部11dから流出して第1のファン16に取り込まれ、第1のファン16によって送風路542を図中右方向に流れて冷媒蒸発器12を通過する。冷媒蒸発器12を通過した内気は第1の車室内給気路55を通って冷媒凝縮器13を通過し、第1の車室内吹出口63から車室内に流入する。このように第4の風路形態では、第2風路形態と同様に外気を遮断しながらエアコンユニット10と車室内との間で内気を循環させるが、循環させる内気を全て熱回収器11に通す点が第2の風路形態と異なる。   In the fourth air path configuration, the inside air that has flowed into the air conditioner unit 10 from the inside air introduction port 62 passes through the inside air introduction passage 52 and then flows into the heat recovery device 11 from the return air port portion 11a. The inside air that has flowed into the heat recovery unit 11 flows out of the exhaust port 11d and is taken into the first fan 16, and flows through the air passage 542 in the right direction in the drawing by the first fan 16 and passes through the refrigerant evaporator 12. pass. The inside air that has passed through the refrigerant evaporator 12 passes through the first vehicle interior air supply passage 55, passes through the refrigerant condenser 13, and flows into the vehicle interior from the first vehicle interior outlet 63. As described above, in the fourth air path configuration, the inside air is circulated between the air conditioner unit 10 and the passenger compartment while blocking the outside air as in the second air path configuration, but all the inside air to be circulated is transferred to the heat recovery unit 11. The point which lets it pass differs from the 2nd wind form.

上記のようにして循環する内気は、冷媒凝縮器13により加熱昇温されながら循環し、加熱昇温された内気が熱回収器11内を流通させることにより熱回収器11の結氷が解氷される。なお、熱回収器11の結氷は、熱回収器11に結氷検出手段を設けて検出してもよいし、車室外吹出口65や冷媒凝縮器13などに風速センサを設けて、計測される風速が所定の風速以下である場合に、熱回収器11に結氷が発生したと判断する構成としてもよい。   The inside air circulated as described above circulates while being heated and heated by the refrigerant condenser 13, and the heated and heated inside air is circulated through the heat recovery device 11, so that the ice in the heat recovery device 11 is defrosted. The The icing of the heat recovery unit 11 may be detected by providing icing detection means in the heat recovery unit 11 or by measuring the wind speed by providing a wind speed sensor at the outside air outlet 65 or the refrigerant condenser 13. It is good also as a structure which judges that icing has generate | occur | produced in the heat recovery device 11, when is below a predetermined wind speed.

実施の形態1によれば、車室外に排出される内気と車室内に導入される外気との間で熱交換させる熱回収器をシロッコファンの上流側に配置したので、熱回収器に対して内気を均一に流し高い熱回収効率を実現することができる。   According to the first embodiment, the heat recovery device for exchanging heat between the inside air exhausted outside the vehicle interior and the outside air introduced into the vehicle interior is arranged on the upstream side of the sirocco fan. High heat recovery efficiency can be realized by flowing the inside air uniformly.

また、エアコンユニット内に風路を形成する風路壁の端部に回動可能に支持され、アクチュエータなどの駆動装置により回転駆動される複数の仕切弁を設けているため、車室外に排出される内気と車室内に導入される外気との間で熱交換させながら換気を行う第1の風路形態と、外気の遮断しながら内気を循環させる第2の風路形態と、外気を利用してフロントガラスの曇りを除去する防曇デフロスト運転を行う第3の風路形態と、内気を加熱昇温しながら循環させることにより、熱回収器に発生した結氷を解氷する第4の風路形態とを容易に切り換えることができる。   In addition, a plurality of gate valves that are rotatably supported at the end of the air passage wall that forms the air passage in the air conditioner unit and that are driven to rotate by a drive device such as an actuator are provided. A first air passage form that ventilates while exchanging heat between the inside air and the outside air that is introduced into the vehicle interior, a second air passage form that circulates the inside air while blocking outside air, and outside air. A third air passage form for performing anti-fogging defrost operation to remove the fog on the windshield and a fourth air passage for defrosting the ice formed in the heat recovery device by circulating the inside air while heating and raising the temperature. The form can be easily switched.

また、熱回収器と第2の風路壁との間を開閉する第3の仕切弁を、第2の風路壁の内気導入口とは反対側の端部に回動可能に設けたため、第2の風路形態及び第3の風路形態における内気の循環量を容易に調節することができる。   In addition, since the third gate valve that opens and closes between the heat recovery unit and the second air passage wall is rotatably provided at the end of the second air passage wall opposite to the inside air inlet, It is possible to easily adjust the circulation amount of the inside air in the second air path form and the third air path form.

また、シロッコファンの第1のファンにより送風される内気又は外気の流れを切り換える第4の仕切弁を、シロッコファンの2つのファンを仕切る仕切板の下流側端部に回動可能に設けたため、第1の風路形態では第1のファンから送風された外気を車外吹出口にスムーズに導くことができ、第2の風路形態〜第4の風路形態では第1のファンから送風された内気又は外気を第1の車内吹出口にスムーズに導くことができる。   In addition, since the fourth gate valve for switching the flow of the inside air or the outside air blown by the first fan of the sirocco fan is provided at the downstream end of the partition plate that partitions the two fans of the sirocco fan, In the first air path configuration, the outside air blown from the first fan can be smoothly guided to the outside air outlet, and in the second air path configuration to the fourth air path configuration, the air is blown from the first fan. The inside air or outside air can be smoothly guided to the first vehicle outlet.

また、車室内吹出口をフロントガラスに対向させ、除湿された空気を直接フロントガラスに吹き付けるようにしたため、防曇デフロスト運転における防曇効果をより高くすることができる。   Moreover, since the vehicle interior air outlet is opposed to the windshield and the dehumidified air is blown directly onto the windshield, the anti-fogging effect in the anti-fogging defrost operation can be further enhanced.

また、熱回収器において内気用の風路と外気用の風路の長さを等しくしているため、熱回収効率をさらに高めることができる。   Moreover, since the length of the air path for inside air and the air path for outside air are made equal in the heat recovery device, the heat recovery efficiency can be further increased.

なお、実施の形態1では各仕切弁の回転軸をそれぞれの一方の端部に設けたが、回転軸を設ける位置はこれに限られるものではない。   In the first embodiment, the rotary shafts of the gate valves are provided at one end of each, but the position where the rotary shafts are provided is not limited to this.

実施の形態2.
以下に、この発明の実施の形態2を図6に基づいて説明する。実施の形態2は、熱回収器内の外気及び内気の流れが実施の形態1と異なる。図6は、実施の形態2に係る熱回収器を示す概略構成図である。図1と同一又は相当部分については同一の符号を付し、その説明を省略する。また、図示省略しているが、図6では図面左上方向に外気導入路が、図面右下方向に車室内給気路が位置し、図面左下方向に内気導入路が、図面右上方向に内気排出路が位置するように熱回収器21を配置しているものとする。
Embodiment 2. FIG.
The second embodiment of the present invention will be described below with reference to FIG. The second embodiment is different from the first embodiment in the flow of outside air and inside air in the heat recovery unit. FIG. 6 is a schematic configuration diagram illustrating a heat recovery device according to the second embodiment. The same reference numerals are given to the same or corresponding parts as in FIG. 1, and the description thereof is omitted. Although not shown in FIG. 6, the outside air introduction path is located in the upper left direction of the drawing, the air supply path in the vehicle interior is located in the lower right direction of the drawing, the inside air introduction path is located in the lower left direction of the drawing, and the inside air discharge is performed in the upper right direction of the drawing. It is assumed that the heat recovery device 21 is arranged so that the path is located.

熱回収器21は、図6に示すように三角形部21Aと、三角形部21Aと上下反転した逆三角形部21Cと、三角形部21A及び逆三角形部21Cとの間に配置された正方形部21Bを有する。正方形部21Bの一辺、三角形部21Aの底辺及び逆三角形部21Cの底辺の長さは等しく、三角形部21Aの底辺と正方形部21Bの上辺、及び逆三角形部21Cの底辺と正方形部21Bの下辺がそれぞれ接続されることにより熱回収器21が構成されている。三角形部21A、正方形部21B及び逆三角形部21Cは、実施の形態1の熱回収器11と同様に紙素材、樹脂などからなる複数の間隔板を、図中紙面に垂直な方向を積層方向として積層したもので、互いに隣接する間隔板の間には所定の間隔を保持して風路を形成するスペーサ(図示なし)が設けられ、間隔板の積層方向と垂直な方向に空気が流れる風路が複数形成されている。   As shown in FIG. 6, the heat recovery device 21 includes a triangular portion 21A, an inverted triangular portion 21C that is upside down from the triangular portion 21A, and a square portion 21B that is disposed between the triangular portion 21A and the inverted triangular portion 21C. . The lengths of one side of the square part 21B, the base of the triangular part 21A, and the base of the inverted triangular part 21C are equal, and the base of the triangular part 21A and the upper side of the square part 21B, The heat recovery device 21 is configured by being connected to each other. The triangular portion 21A, the square portion 21B, and the inverted triangular portion 21C have a plurality of spacing plates made of paper material, resin, etc., as in the heat recovery device 11 of Embodiment 1, with the direction perpendicular to the paper surface in the figure as the stacking direction. A spacer (not shown) is provided between the adjacent spacing plates to maintain a predetermined distance to form an air passage, and there are a plurality of air passages through which air flows in a direction perpendicular to the stacking direction of the spacing plates. Is formed.

三角形部21Aの左側斜辺には、外気が流入する外気口部21bが設けられ、右側斜辺には熱回収器21内の内気が流出する排気口部21dが設けられている。逆三角形部21Cの左側斜辺には、内気が流入する還気口部21aが設けられ、右側斜辺には熱回収器21内の外気が流出する給気口部21cが設けられている。熱回収器21内の風路は、実施の形態1の場合と同様に、外気口部21bから給気口部21cに通じる外気用の風路と還気口部21aから排気口部21dに通じる内気用の風路と外気用の風路が、間隔板の積層方向に沿って交互に形成されている。   An outside air port portion 21b through which outside air flows is provided on the left oblique side of the triangular portion 21A, and an exhaust port portion 21d through which the inside air in the heat recovery unit 21 flows out is provided on the right oblique side. A return air port 21a through which the inside air flows is provided on the left oblique side of the inverted triangular part 21C, and an air supply port 21c through which the outside air in the heat recovery unit 21 flows out is provided on the right oblique side. As in the case of the first embodiment, the air path in the heat recovery unit 21 communicates from the outside air port 21b to the air supply port 21c and from the return air port 21a to the exhaust port 21d. The air path for inside air and the air path for outside air are alternately formed along the stacking direction of the interval plates.

外気口部21bから三角形部21A内に流入した外気は、三角形部21A、正方形部21B及び逆三角形部21Cの内部を順に流通した後、給気口部21cから流出する。還気口部21aから逆三角形部21C内に流入した内気は、逆三角形部21C、正方形部21B及び三角形部21Aの内部を順に流通した後、排気口部21dから流出する。熱回収器21内の内気及び外気は、正方形部21B内で互いに対向する方向にそれぞれ流通しながら内気及び外気の間で熱交換する。内気と外気が交差する正方形部21Bにおいて、内気用の風路と外気用の風路の向きは平行であり、内気及び外気は互いに対向して流れる。
その他については実施の形態1と同様であるので、その説明を省略する。
The outside air that has flowed into the triangular portion 21A from the outside air port portion 21b flows in order from the inside of the triangular portion 21A, the square portion 21B, and the inverted triangular portion 21C, and then flows out from the air supply port portion 21c. The inside air that has flowed into the inverted triangular portion 21C from the return air port portion 21a flows through the inverted triangular portion 21C, the square portion 21B, and the triangular portion 21A in order, and then flows out from the exhaust port portion 21d. The inside air and the outside air in the heat recovery device 21 exchange heat between the inside air and the outside air while flowing in directions opposite to each other in the square portion 21B. In the square portion 21B where the inside air and the outside air intersect, the directions of the air passage for the inside air and the air passage for the outside air are parallel, and the inside air and the outside air flow to face each other.
Others are the same as those in the first embodiment, and thus the description thereof is omitted.

実施の形態2によれば、実施の形態1と同様の効果を得ることができる。   According to the second embodiment, the same effect as in the first embodiment can be obtained.

なお、この発明は、その発明の範囲内において、各実施の形態を自由に組み合わせたり、各実施の形態を適宜、変形、省略することが可能である。   It should be noted that within the scope of the present invention, the embodiments can be freely combined, or the embodiments can be appropriately modified or omitted.

10 エアコンユニット、11、21 熱回収器、12 冷媒蒸発器、13 冷媒凝縮器、15 シロッコファン、16 第1のファン、17 第2のファン、19 仕切板、41 第1の風路壁、42 第2の風路壁、51 外気導入路、52 内気導入路、53 送風路、541 内気排出路、542、543、544 送風路、55 第1の車室内給気路、56 第2の車室内給気路、61 外気導入口、62 内気導入口、63 第1の車室内吹出口、64 第2の車室内吹出口、65 車室外吹出口、71 第1の仕切弁、72 第2の仕切弁、73 第3の仕切弁、74 第4の仕切弁、81 車両壁、82 フロントガラス DESCRIPTION OF SYMBOLS 10 Air conditioner unit 11, 21 Heat recovery device, 12 Refrigerant evaporator, 13 Refrigerant condenser, 15 Sirocco fan, 16 1st fan, 17 2nd fan, 19 Partition plate, 41 1st air path wall, 42 Second air passage wall, 51 Outside air introduction passage, 52 Inside air introduction passage, 53 Air passage, 541 Inside air discharge passage, 542, 543, 544 Air passage, 55 First vehicle interior air supply passage, 56 Second vehicle interior Air supply path, 61 Outside air introduction port, 62 Inside air introduction port, 63 1st vehicle interior air outlet, 64 2nd vehicle interior air outlet, 65 Vehicle interior air outlet, 71 1st gate valve, 72 2nd partition Valve, 73 third gate valve, 74 fourth gate valve, 81 vehicle wall, 82 windshield

Claims (9)

車室外の空気である外気を導入する外気導入口、及び車室内の空気である内気を車室外に排出する内気排出口が形成された外壁と、
仕切板を介して同軸に配置された第1のファン及び第2のファンを有し、内気又は外気を前記第1のファン及び前記第2のファンによりそれぞれ送風する遠心式送風機と、
前記遠心式送風機により送風された内気又は外気を車室内に吹き出す車室内吹出口と、
内気用の風路と外気用の風路を交互に形成しながら積層された複数の間隔板によって構成され、前記内気用の風路を流れる内気と前記外気用の風路を流れる外気との間で熱交換させる第1の熱交換器と、
内部を冷媒が流通する配管を有し、内気又は外気と冷媒との間で熱交換させる第2の熱交換器と、
前記外気導入口を開閉する第1の仕切弁と、
前記外気導入口と前記内気排出口との間で回動可能に支持されて、前記内気排出口を開閉するとともに、前記外気導入口から流入する外気の流れと内気排出口から流出する内気の流れとを仕切る第2の仕切弁と、
前記外気導入口から前記第1の熱交換器に延び、前記外気導入口から流入した外気を前記第1の熱交換器に導く外気導入路を前記第2の仕切弁との間に形成する第1の風路構成部材と、
車室内から内気を導入する内気導入口から流入した内気を導く内気導入路を前記外壁との間に形成する第2の風路構成部材とを備え、
前記第1の熱交換器は、前記遠心式送風機の上流側に配置されていることを特徴とする車両用空調装置。
An outside wall formed with an outside air introduction port for introducing outside air that is air outside the passenger compartment, and an inside air outlet that discharges inside air that is air inside the passenger compartment to the outside of the cabin;
A centrifugal blower that has a first fan and a second fan arranged coaxially via a partition plate, and blows the inside air or outside air by the first fan and the second fan, respectively;
A vehicle interior outlet for blowing out the inside air or the outside air blown by the centrifugal blower into the vehicle interior;
Consists of a plurality of spaced plates stacked while alternately forming an air passage for inside air and an air passage for outside air, and between the inside air flowing through the air passage for inside air and the outside air flowing through the air passage for outside air A first heat exchanger to exchange heat with
A second heat exchanger having a pipe through which refrigerant flows, and exchanging heat between the inside air or outside air and the refrigerant;
A first gate valve for opening and closing the outside air inlet;
Between the outside air introduction port and the inside air discharge port, it is rotatably supported, opens and closes the inside air discharge port, and flows the outside air flowing in from the outside air introduction port and the flow of inside air flowing out from the inside air discharge port. A second gate valve that partitions
A first outside air passage that extends from the outside air introduction port to the first heat exchanger and guides outside air flowing from the outside air introduction port to the first heat exchanger is formed between the second gate valve and the second heat exchanger. 1 airway component;
A second air passage constituting member that forms an inside air introduction path that guides inside air that has flowed from an inside air introduction port that introduces inside air from the vehicle interior, with the outer wall;
The air conditioner for vehicles, wherein the first heat exchanger is arranged on the upstream side of the centrifugal blower.
前記第2の風路構成部材の前記内気導入口とは反対側の端部に回動可能に支持されて、前記第1の熱交換器と前記第2の風路構成部材との間を開閉する第3の仕切弁をさらに備えたことを特徴とする請求項1に記載の車両用空調装置。   Opening and closing between the first heat exchanger and the second air passage component member is rotatably supported at an end of the second air passage component member opposite to the inside air inlet. The vehicular air conditioner according to claim 1, further comprising a third gate valve that performs the operation. 前記仕切板の前記遠心式送風機の下流側の端部に回動可能に支持されて、前記第1のファンにより送風される内気又は外気の流れを切り換える第4の仕切弁をさらに備えたことを特徴とする請求項1または2に記載の車両用空調装置。   The partition plate further includes a fourth partition valve that is rotatably supported at the downstream end of the centrifugal blower and switches the flow of the inside air or the outside air blown by the first fan. The vehicle air conditioner according to claim 1 or 2, characterized in that 前記第2の熱交換器は、冷媒の蒸発に伴う吸熱により内気又は外気を冷却する冷媒蒸発器、冷媒の凝縮に伴う放熱により内気又は外気を加熱昇温する冷媒凝縮器、又は前記冷媒蒸発器と前記冷媒凝縮器の組み合わせであることを特徴とする請求項1から3のいずれか1項に記載の車両用空調装置。   The second heat exchanger includes a refrigerant evaporator that cools the inside air or the outside air by heat absorption associated with the evaporation of the refrigerant, a refrigerant condenser that heats and heats the inside air or the outside air by heat dissipation due to the condensation of the refrigerant, or the refrigerant evaporator The vehicle air conditioner according to any one of claims 1 to 3, wherein the vehicle air conditioner is a combination of the refrigerant condenser and the refrigerant condenser. 前記車室内吹出口は、フロントガラスに対向し、前記車室内吹出口から吹き出された内気又は外気がフロントガラスに吹き付けられることを特徴とする請求項4に記載の車両用空調装置。   5. The vehicle air conditioner according to claim 4, wherein the vehicle interior air outlet faces the windshield, and the inside air or the outside air blown out from the vehicle interior air outlet is blown onto the windshield. 前記内気用の風路と前記外気用の風路の向きが、直交することを特徴とする請求項1から5のいずれか1項に記載の車両用空調装置。   The vehicle air conditioner according to any one of claims 1 to 5, wherein directions of the inside air wind path and the outside air wind path are orthogonal to each other. 前記内気用の風路と前記外気用の風路の向きが、平行であることを特徴とする請求項1から5のいずれか1項に記載の車両用空調装置。   The vehicle air conditioner according to any one of claims 1 to 5, wherein directions of the inside air wind path and the outside air wind path are parallel to each other. 前記内気用の風路の長さと前記外気用の風路の長さが等しいことを特徴とする請求項1から7のいずれか1項に記載の車両用空調装置。   The vehicle air conditioner according to any one of claims 1 to 7, wherein a length of the air path for the inside air is equal to a length of the air path for the outside air. 前記第1の熱交換器は、臭い成分を吸着する吸着消臭素材、粉じんを集塵する集塵素材、又は前記吸着消臭素材及び前記集塵素材の組み合わせを含むことを特徴とする請求項1から8のいずれか1項に記載の車両用空調装置。   The first heat exchanger includes an adsorption / deodorization material that adsorbs odor components, a dust collection material that collects dust, or a combination of the adsorption / deodorization material and the dust collection material. The vehicle air conditioner according to any one of 1 to 8.
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CN113525022A (en) * 2020-04-18 2021-10-22 康唯特公司 Heating and/or air conditioning installation with improved air treatment and method thereof
CN114643831A (en) * 2022-04-08 2022-06-21 安徽省宁国市天成电气有限公司 Can improve life's new energy automobile heater
WO2023275071A1 (en) * 2021-06-30 2023-01-05 Atlas Technologies Holding B.V. Vehicle cabin climate control system

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CN113525022A (en) * 2020-04-18 2021-10-22 康唯特公司 Heating and/or air conditioning installation with improved air treatment and method thereof
WO2023275071A1 (en) * 2021-06-30 2023-01-05 Atlas Technologies Holding B.V. Vehicle cabin climate control system
NL2028586B1 (en) * 2021-06-30 2023-01-09 Atlas Technologies Holding Bv Vehicle cabin climate control system
CN114643831A (en) * 2022-04-08 2022-06-21 安徽省宁国市天成电气有限公司 Can improve life's new energy automobile heater
CN114643831B (en) * 2022-04-08 2024-02-13 安徽省宁国市天成电气有限公司 New energy automobile heater

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