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JP2013035484A - Air conditioner for vehicle - Google Patents

Air conditioner for vehicle Download PDF

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Publication number
JP2013035484A
JP2013035484A JP2011174734A JP2011174734A JP2013035484A JP 2013035484 A JP2013035484 A JP 2013035484A JP 2011174734 A JP2011174734 A JP 2011174734A JP 2011174734 A JP2011174734 A JP 2011174734A JP 2013035484 A JP2013035484 A JP 2013035484A
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air
vehicle
heat exchanger
air passage
outside
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JP2011174734A
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Masahide Fukumoto
将秀 福本
Yoshimasa Katsumi
佳正 勝見
Takuya Murayama
拓也 村山
Hiroyuki Kondo
広幸 近藤
Wakana Nogami
若菜 野上
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Panasonic Corp
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Panasonic Corp
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Abstract

PROBLEM TO BE SOLVED: To provide an air conditioner for a vehicle, performing dehumidification during heating by suppressing power consumption of a heating means for regeneration.SOLUTION: Outside air having passed through a sensible heat exchanger 30 and inside air dehumidified by a dehumidifier 24 are mixed, and heated by a second cabin heat exchanger 9, at least a part of thus heated air is caused to flow in a regeneration air passage 28 by a second air passage switching means 10 and passes through a regeneration part 25. The heat of the air having passed through the regeneration part 25 is recovered to air to be diffused to the cabin, using a sensible heat exchanger 30, and thus dehumidification heating is performed. As a result, another heating means is not required by using a part of the heated dehumidified air for heating the cabin is used for regeneration of a dehumidification means 26, and since the dehumidified air is used for regeneration of the dehumidification means 26, the regeneration is possible at lower temperature compared with the non-dehumidified air, and power consumption of a heat pump is reduced. Moreover, heat is recovered from the air exhausted to outside to air to be diffused into the cabin, heating load of the second cabin heat exchanger 9 is reduced.

Description

本発明は、車室内を暖房可能にする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 can heat a vehicle interior.

従来、ガソリン車の暖房ではエンジンの廃熱を利用したものが主流であり、暖房時の課題である窓等の曇りを防止する除湿装置が考案されている(例えば、特許文献1参照)。   2. Description of the Related Art Conventionally, the heating of gasoline vehicles uses the waste heat of the engine as the mainstream, and a dehumidifying device for preventing fogging of windows and the like, which is a problem during heating, has been devised (for example, see Patent Document 1).

この除湿装置は図7に示すように、車両用除湿装置として構成されており、車室内後方のトランクルーム内に空調装置の通風系とは独立に設置されるもので、除湿装置101の室内空気の吸入口102は車室内後方のリアパッセージトレーの開口部(図示せず)を通して車室内後方部に連通している。   As shown in FIG. 7, this dehumidifier is configured as a vehicle dehumidifier, and is installed in the trunk room at the rear of the passenger compartment independently of the ventilation system of the air conditioner. The suction port 102 communicates with the rear portion of the vehicle interior through an opening (not shown) of a rear passage tray at the rear of the vehicle interior.

この吸入口102の下方部に送風機103を配置している。この送風機103は周知の遠心多翼ファン103aと、この遠心多翼ファン103aを回転自在に収容しているスクロールケース103bとを有し、この空気出口部にケース104が接続されている。このケース104の内部の通風路は、仕切り板105により除湿用の第一通風路106と再生用の第2通風路107とに仕切られている。   A blower 103 is disposed below the suction port 102. The blower 103 has a well-known centrifugal multiblade fan 103a and a scroll case 103b in which the centrifugal multiblade fan 103a is rotatably accommodated, and a case 104 is connected to the air outlet portion. The ventilation path inside the case 104 is partitioned by a partition plate 105 into a first ventilation path 106 for dehumidification and a second ventilation path 107 for regeneration.

そして、除湿用の第一通風路106の入口部には、冷却手段としての第一通風路106内の室内空気と低温外気との間で熱交換を行う第1顕熱交換器108が配置されている。この第1顕熱交換器108の下流側に乾燥剤を有する乾燥剤ユニット109が配置され、さらに、その下流側に第2顕熱交換器110が配置されている。   A first sensible heat exchanger 108 for exchanging heat between the indoor air in the first ventilation path 106 as a cooling means and the low temperature outside air is disposed at the inlet of the first ventilation path 106 for dehumidification. ing. A desiccant unit 109 having a desiccant is disposed downstream of the first sensible heat exchanger 108, and a second sensible heat exchanger 110 is disposed downstream thereof.

このため、第1顕熱交換器108は外気用通路111に接続されており、この外気用通路111の一端部111aは車室外に開口しており、冬期暖房時の低温外気を吸入する。また、外気用通路111の他端部側は送風機103のモータ103cの外周側に形成された補助吸入口112を介して遠心多翼ファン103aの負圧部に連通している。これにより、遠心多翼ファン103aが回転駆動されると、低温外気が外気用通路111および第1顕熱交換器108を通して遠心多翼ファン103aの負圧部に向かって流れる。   For this reason, the first sensible heat exchanger 108 is connected to the outside air passage 111, and one end 111a of the outside air passage 111 opens to the outside of the passenger compartment, and sucks low temperature outside air during heating in winter. Further, the other end portion side of the outside air passage 111 communicates with the negative pressure portion of the centrifugal multiblade fan 103a through an auxiliary suction port 112 formed on the outer peripheral side of the motor 103c of the blower 103. Thereby, when the centrifugal multiblade fan 103a is rotationally driven, the low temperature outside air flows toward the negative pressure portion of the centrifugal multiblade fan 103a through the outside air passage 111 and the first sensible heat exchanger.

乾燥剤ユニット109は除湿用の第一通風路106だけでなく、再生用の第2通風路107にわたって設置されており、図示しないモータ等の駆動手段によりケース体109bを回転駆動するようになっている。また、再生用の第2通風路107において、乾燥剤ユニット109の上流側には電気発熱体113が設置され、第2顕熱交換器110は、再生用の第2通風路107の高温空気により除湿用の第一通風路106の空気を加熱する。除湿用の第一通風路106において、第2顕熱交換器110の下流側には車室内への吹出口114が設けられ、第2顕熱交換器110からの再生空気の出口115は車室外に開口している。   The desiccant unit 109 is installed not only in the first ventilation path 106 for dehumidification but also in the second ventilation path 107 for regeneration, and the case body 109b is driven to rotate by driving means such as a motor (not shown). Yes. In addition, in the second ventilation path 107 for regeneration, an electric heating element 113 is installed on the upstream side of the desiccant unit 109, and the second sensible heat exchanger 110 is heated by the high-temperature air in the second ventilation path 107 for regeneration. The air in the first ventilation path 106 for dehumidification is heated. In the first ventilation path 106 for dehumidification, an outlet 114 to the vehicle interior is provided on the downstream side of the second sensible heat exchanger 110, and the outlet 115 of the regenerated air from the second sensible heat exchanger 110 is outside the vehicle interior. Is open.

上記のように、この車両用除湿装置は空調装置の通風系とは独立しており、空調装置の通風系内には前記の再生用の電気発熱体113とは別に暖房用の加熱手段が設置されている。   As described above, this vehicle dehumidifier is independent of the ventilation system of the air conditioner, and heating means for heating is installed in the ventilation system of the air conditioner separately from the electric heating element 113 for regeneration. Has been.

特開2000−108655号公報JP 2000-108655 A

このような車両用除湿装置では、再生空気としては内気と外気を混合した空気を使用しているため、再生用の第2通風路内に加熱手段を設置して再生空気を高温に加熱しなければならず、そのための電力消費が増大するという課題があった。   In such a vehicle dehumidifier, air that is a mixture of inside air and outside air is used as the regeneration air. Therefore, heating means must be installed in the regeneration second ventilation path to heat the regeneration air to a high temperature. Therefore, there is a problem that power consumption for that purpose increases.

そこで本発明は、上記従来の課題を解決するものであり、再生用の加熱手段の電力消費を抑えて、暖房時の除湿が行える車両用空調装置を提供することを目的とする。   SUMMARY OF THE INVENTION The present invention solves the above-described conventional problems, and an object of the present invention is to provide a vehicle air conditioner capable of dehumidifying during heating while suppressing power consumption of a heating means for regeneration.

そして、この目的を達成するために、本発明は、外気を導入する外気導入口から車内に空調風を吹出す空調吹出口にかけての車外吸気風路と、この車外吸気風路内に、前記外気導入口側から順に、車内に吹出す上流側の空気流を切替える第一の風路切替手段、前記外気導入口から前記空調吹出口に向かう空気流を発生させる送風手段、車内に吹出す空気を冷却または加熱する第一車内熱交換器および第二車内熱交換器、車内に吹出す下流側の空気流を切替える第二の風路切替手段を備え、内気を導入する内気導入口から前記第一の風路切替手段へ接続される車内吸気風路と、前記内気導入口と前記第一の風路切替手段の間から分岐して前記第一の風路切替手段へと接続される除湿風路と、前記除湿風路内の空気を冷却する第三車内熱交換器を備え、前記第二の風路切替手段から分岐し、前記送風手段によって吹出す空気の少なくとも一部を車外へ吹出す車外吹出口を接続する再生風路と、前記除湿風路内の前記第三車内熱交換器と前記第一の風路切替手段の間に除湿部、前記再生風路内に再生部を有する除湿手段と、外気と冷媒を熱交換する車外熱交換器と、冷媒を圧縮する圧縮機と、冷媒を膨張させて減圧する減圧手段と、前記第一車内熱交換器、前記第二車内熱交換器、前記第三車内熱交換器、前記車外熱交換器、前記圧縮機、および前記減圧手段の間で冷媒を循環させるヒートポンプとを備えたものであって、前記車外吸気口と前記第一の風路切替手段の間から分岐して前記第一の風路切替手段へと接続される熱回収風路と、前記熱回収風路と前記再生部より下流側の前記再生風路との交差部に顕熱交換器を配置し、前記再生風路内の空気から車内へ吹出す空気へ熱を回収し除湿暖房を行うものであり、これにより所期の目的を達成するものである。   In order to achieve this object, the present invention provides an outside intake air passage from an outside air introduction port through which outside air is introduced to an air conditioning outlet that blows out conditioned air into the vehicle, and the outside air in the outside intake air passage. In order from the inlet side, first air path switching means for switching the upstream air flow blown into the vehicle, air blowing means for generating an air flow from the outside air inlet to the air conditioning outlet, and air blown into the vehicle The first in-vehicle heat exchanger and the second in-vehicle heat exchanger for cooling or heating, the second air path switching means for switching the downstream air flow blown into the vehicle, and the first air from the inside air introduction port for introducing the inside air An in-vehicle intake air path connected to the air path switching means, and a dehumidifying air path branched from the inside air inlet and the first air path switching means and connected to the first air path switching means And a third in-vehicle heat exchanger for cooling the air in the dehumidifying air passage A regenerative air passage that branches off from the second air passage switching means and connects at least a part of the air blown out by the air blowing means to the outside of the vehicle, and the third air passage in the dehumidifying air passage. A dehumidifying unit between the in-vehicle heat exchanger and the first air path switching unit, a dehumidifying unit having a regenerating unit in the regeneration air path, an in-vehicle heat exchanger for exchanging heat between the outside air and the refrigerant, and compressing the refrigerant A compressor, decompression means for expanding and reducing the refrigerant, the first in-vehicle heat exchanger, the second in-vehicle heat exchanger, the third in-vehicle heat exchanger, the outside heat exchanger, the compressor, and A heat pump that circulates refrigerant between the decompression means, and is branched from between the outside air intake and the first air path switching means and connected to the first air path switching means The heat recovery air path, the heat recovery air path and the regenerator downstream of the regeneration unit. A sensible heat exchanger is disposed at the intersection with the air passage, and heat is recovered from the air in the regeneration air passage to the air blown into the vehicle to perform dehumidification heating, thereby achieving the intended purpose. Is.

本発明によれば、車内の暖房用に加熱され除湿された空気の一部を除湿手段の再生に用いることにより、除湿手段の再生用に別の加熱手段を設けなくてもよく、除湿された空気を除湿手段の再生に用いているので、除湿しない空気に比べより低温での再生が可能となり、ヒートポンプの電力消費を抑えて、省エネ効果のある車両用空調装置を提供することができる効果を得ることができる。   According to the present invention, by using a part of air heated and dehumidified for heating in the vehicle for regeneration of the dehumidifying means, it is not necessary to provide another heating means for regeneration of the dehumidifying means, and the dehumidified air is removed. Since air is used for regeneration of the dehumidifying means, it is possible to regenerate at a lower temperature than air that is not dehumidified, reducing the power consumption of the heat pump, and providing an energy-saving vehicle air conditioner. Can be obtained.

さらに、前記再生風路の前記再生部より下流側の部分と前記熱回収風路との交差部に顕熱交換器を配置することで、前記再生風路を通り前記再生部を介して車外へ吹出される空気から、前記熱回収風路を通り車内へ吹出される空気へ熱を回収できるので、前記第二車内熱交換器の加熱負荷を低減させることができ、省エネ効果のある車両空調装置を提供することができる。   Furthermore, by disposing a sensible heat exchanger at the intersection of the portion of the regeneration air passage downstream of the regeneration portion and the heat recovery air passage, it passes through the regeneration air passage and through the regeneration portion to the outside of the vehicle. Since heat can be recovered from the blown air to the air blown into the vehicle through the heat recovery air passage, the heating load of the second in-vehicle heat exchanger can be reduced, and the vehicle air conditioner has an energy saving effect Can be provided.

本発明の実施の形態1の車両用空調装置の風路構成図FIG. 1 is an air path configuration diagram of the vehicle air conditioner according to the first embodiment of the present invention. 同除湿暖房時運転の風路構成図Airway configuration diagram of the dehumidifying and heating operation 同除湿暖房時運転における凍結防止モード風路構成図Freezing prevention mode air passage configuration diagram during operation in the same dehumidifying heating mode 同冷房時運転の風路構成図Airway configuration diagram for cooling operation 本発明の実施の形態2の車両用空調装置の風路構成図Airway configuration diagram of vehicle air conditioner of Embodiment 2 of the present invention 同除湿暖房時運転の風路構成図Airway configuration diagram of the dehumidifying and heating operation 従来の車両用除湿装置の概略構成図Schematic configuration diagram of a conventional vehicle dehumidifier

以下、本発明の実施の形態について図面を参照しながら説明する。   Hereinafter, embodiments of the present invention will be described with reference to the drawings.

(実施の形態1)
図1は本発明の実施の形態1の車両用空調装置の除湿暖房運転時の風路構成図である。図1に示すように、車両用空調装置は空調システムおよび除湿システムによって構成されている。
(Embodiment 1)
FIG. 1 is an air path configuration diagram of the vehicle air conditioner according to Embodiment 1 of the present invention during a dehumidifying heating operation. As shown in FIG. 1, the vehicle air conditioner includes an air conditioning system and a dehumidifying system.

空調システムには、送風路として、車外から外気を導入する外気導入口1から車内に空調風を吹き出す空調吹出口2にかけての車外吸気風路3と、車内から内気を導入する内気導入口4から空調吹出口2にかけての車内吸気風路5が設けられている。車外吸気風路3と車内吸気風路5は第一の風路切替手段6から空調吹出口2にかけて同一風路となっている。ここでは、この同一部分を代表して車外吸気風路3と呼ぶ。   In the air conditioning system, there are an air intake passage 3 from the outside air inlet 1 for introducing outside air from the outside of the vehicle to the air conditioning outlet 2 for blowing the conditioned air into the vehicle, and an inside air introduction port 4 for introducing the inside air from the inside of the vehicle. An in-vehicle intake air passage 5 extending to the air conditioning outlet 2 is provided. The outside intake air passage 3 and the inside intake air passage 5 are the same air passage from the first air passage switching means 6 to the air conditioning outlet 2. Here, this same portion is representatively referred to as an outside air intake air passage 3.

車外吸気風路3内には、外気導入口1側から順に、車内に吹出す上流側の空気を切替える第一の風路切替手段6、外気導入口1から空調吹出口2に向かう空気流を発生させる送風手段7、車内に吹出す空気を冷却または加熱する第一車内熱交換器8および第二車内熱交換器9、車内に吹出す下流側の空気流を切替える第二の風路切替手段10が配置され、第一車内熱交換器8と第二車内熱交換器9との間には第二車内熱交換器9を通過させる風量を調整して温度を調整する温度調整手段11を配置している。また、後述する除湿風路12内に、除湿風路12内の空気を冷却する第三車内熱交換器13を配置している。この第一車内熱交換器8、第二車内熱交換器9および第三車内熱交換器13は、次に述べるヒートポンプサイクルの一部を形成するものであり、ヒートポンプサイクルの作用によって車室内に吹出される空気の冷却または加熱を行うものである。また、外気と冷媒との熱交換を行う車外熱交換器14と、車外熱交換器14に外気を送風する車外送風手段15が車室外に配置されている。   In the outside air intake air passage 3, the first air passage switching means 6 that switches the upstream air blown out into the vehicle in order from the outside air inlet 1 side, and the air flow from the outside air inlet 1 to the air conditioning outlet 2. Blowing means 7 to be generated, first in-vehicle heat exchanger 8 and second in-vehicle heat exchanger 9 for cooling or heating the air blown into the vehicle, second air path switching means for switching the downstream air flow blown into the vehicle 10 is arranged, and between the first in-vehicle heat exchanger 8 and the second in-vehicle heat exchanger 9, a temperature adjusting means 11 for adjusting the temperature by adjusting the amount of air passing through the second in-vehicle heat exchanger 9 is arranged. doing. Further, a third in-vehicle heat exchanger 13 for cooling the air in the dehumidifying air passage 12 is disposed in the dehumidifying air passage 12 described later. The first in-vehicle heat exchanger 8, the second in-vehicle heat exchanger 9, and the third in-vehicle heat exchanger 13 form part of the heat pump cycle described below, and are blown into the vehicle interior by the action of the heat pump cycle. The air to be cooled or heated. Further, an outside heat exchanger 14 that performs heat exchange between the outside air and the refrigerant, and an outside air blowing means 15 that blows outside air to the outside heat exchanger 14 are arranged outside the vehicle interior.

ヒートポンプサイクルは、冷媒を圧縮する圧縮機16と、冷媒を膨張させて減圧する減圧手段と、冷媒の流れ方向を切り替える四方弁17と、第一車内熱交換器8、第二車内熱交換器9、第三車内熱交換器13、車外熱交換器14とこれらの間に冷媒を循環させる冷媒配管で構成されている。そして、圧縮機16の高圧冷媒吐出側に四方弁17が、四方弁17と車外熱交換器14の間に冷媒の流れを一方向に制限する逆止弁18が、第三車内熱交換器13と第一車内熱交換器8の間に減圧手段としての絞り弁19(図に示すように膨張弁19aと電磁弁19bを内蔵)と、第二車内熱交換器9と車外熱交換器14の間に逆止弁20と減圧手段としての絞り弁21(図に示すように膨張弁21aと電磁弁21bを内蔵)と、車外熱交換器14と第三車内熱交換器13との間から分岐し第三車内熱交換器13と絞り弁19との間に接続される電磁弁31が配置されている。   The heat pump cycle includes a compressor 16 that compresses the refrigerant, a decompression unit that expands and decompresses the refrigerant, a four-way valve 17 that switches the flow direction of the refrigerant, a first in-vehicle heat exchanger 8, and a second in-vehicle heat exchanger 9. The third in-vehicle heat exchanger 13 and the out-of-vehicle heat exchanger 14 and the refrigerant pipe for circulating the refrigerant between them. Further, a four-way valve 17 on the high-pressure refrigerant discharge side of the compressor 16, and a check valve 18 that restricts the flow of refrigerant in one direction between the four-way valve 17 and the vehicle exterior heat exchanger 14, are arranged in the third vehicle interior heat exchanger 13. A throttle valve 19 (a built-in expansion valve 19a and an electromagnetic valve 19b as shown in the figure), a second in-vehicle heat exchanger 9 and an outside heat exchanger 14 between the first and second in-vehicle heat exchangers 8 Between the check valve 20 and the throttle valve 21 as a pressure reducing means (with an expansion valve 21a and a solenoid valve 21b as shown in the figure), and between the outside heat exchanger 14 and the third inside heat exchanger 13 are branched. An electromagnetic valve 31 connected between the third in-vehicle heat exchanger 13 and the throttle valve 19 is disposed.

内気導入口4には、車内の空気温度および湿度を検知する内気温湿度検知手段としての内気温湿度センサ22が、また、外気導入口1には、車外の空気温度および湿度を検知する外気温湿度検知手段としての外気温湿度センサ23が設けられている。   The inside air introduction port 4 has an inside air temperature / humidity sensor 22 as an inside air temperature / humidity detecting means for detecting the air temperature and humidity inside the vehicle, and the outside air introduction port 1 has an outside air temperature for detecting the air temperature and humidity outside the vehicle. An outside air temperature / humidity sensor 23 is provided as a humidity detecting means.

温度調整手段11は、ダンパ機構によって第二車内熱交換器9を通過させる風量を調整して温度調整を行うものであり、第一車内熱交換器8と第二車内熱交換器9との間に配置されている。   The temperature adjusting means 11 adjusts the temperature by adjusting the amount of air passing through the second in-vehicle heat exchanger 9 by means of a damper mechanism, and between the first in-vehicle heat exchanger 8 and the second in-vehicle heat exchanger 9. Is arranged.

上記した構成によって空調システムが構成されている。   An air conditioning system is configured by the configuration described above.

一方、除湿システムは、内気を除湿するための、後述する除湿部24と再生部25を有する除湿手段26と、車内吸気風路5の内気導入口4と第一の風路切替手段6の間から分岐して第一の風路切替手段6へと接続される除湿風路12と、除湿風路12内に凝縮器として熱交換する第三車内熱交換器13と、第二の風路切替手段10から分岐して、車外吹出口27へと接続される再生風路で構成されている。   On the other hand, the dehumidifying system includes a dehumidifying means 26 having a dehumidifying part 24 and a regenerating part 25 described later for dehumidifying the inside air, and an inside air inlet 4 of the vehicle intake air path 5 and the first air path switching means 6. Dehumidifying air path 12 branched from the first air path switching means 6, third in-vehicle heat exchanger 13 exchanging heat as a condenser in the dehumidifying air path 12, and second air path switching The regenerative air passage is branched from the means 10 and connected to the outside air outlet 27.

そして、除湿風路12内の第三車内熱交換器13と第一の風路切替手段6との間に除湿手段26の除湿部24が配置され、再生風路28内に除湿手段26の再生部25が配置されている。   A dehumidifying part 24 of the dehumidifying means 26 is arranged between the third in-vehicle heat exchanger 13 in the dehumidifying air path 12 and the first air path switching means 6, and the regeneration of the dehumidifying means 26 is performed in the regeneration air path 28. Part 25 is arranged.

除湿手段26は、吸湿材料を有し、吸湿材料への吸湿によって通過する空気を除湿する除湿部24と、吸湿材料からの通過する空気への放湿によって吸湿材料を再生する再生部25によって構成されている。   The dehumidifying means 26 includes a moisture absorbing material, and includes a dehumidifying unit 24 that dehumidifies the air that passes by absorbing moisture to the moisture absorbing material, and a regeneration unit 25 that regenerates the moisture absorbing material by releasing moisture from the moisture absorbing material to the passing air. Has been.

また、車外吸気風路3の外気導入口1と第一の風路切替手段6の間から分岐して第一の風路切替手段6へと接続される熱回収風路29が設けられ、再生風路28の再生部25から下流側の部分、すなわち、再生風路28の再生部25から車外吹出口27にかけての部分と、前述した熱回収風路29との交差部に顕熱交換器30が配置されている。   In addition, a heat recovery air passage 29 that branches from between the outside air inlet 1 of the outside air intake air passage 3 and the first air passage switching means 6 and is connected to the first air passage switching means 6 is provided. A sensible heat exchanger 30 is provided at the intersection of the portion of the air passage 28 downstream from the regeneration portion 25, that is, the portion of the regeneration air passage 28 extending from the regeneration portion 25 to the vehicle outlet 27 and the heat recovery air passage 29 described above. Is arranged.

また、内気温湿度センサ22および外気温湿度センサ23で検知されるそれぞれの温湿度によって、空調装置の冷暖房を切替える図示しない制御手段を備え、予め設定した所定の温度または温湿度になるように運転制御を行う構成となっている。   In addition, control means (not shown) for switching the air conditioning of the air conditioner according to the temperature and humidity detected by the inside air temperature and humidity sensor 22 and the outside air temperature and humidity sensor 23 is provided so as to operate at a predetermined temperature or temperature and humidity set in advance. It is the structure which performs control.

また、第一の風路切替手段6および第二の風路切替手段10は、接続されるそれぞれの風路の開口部にダンパ機構と、そのダンパを開閉するモータによって構成されている。そして、制御手段から送信される信号によってダンパの開閉などを行い、連通させる風路の組合せの制御を行う構成となっている。   Moreover, the 1st air path switching means 6 and the 2nd air path switching means 10 are comprised by the motor which opens and closes a damper mechanism in the opening part of each connected air path. The damper is opened and closed by a signal transmitted from the control means, and the combination of the air paths to be communicated is controlled.

以上述べた構成において、その運転動作について図2〜4を参照しながら説明する。本構成において、除湿暖房運転とは除湿手段26の作用によって除湿しながら暖房する運転をいい、また、暖房運転とは除湿手段26を作用させないで暖房を行う運転のことをいう。   In the above-described configuration, the operation will be described with reference to FIGS. In this configuration, the dehumidifying and heating operation refers to an operation that performs heating while dehumidifying by the action of the dehumidifying means 26, and the heating operation refers to an operation that performs heating without causing the dehumidifying means 26 to act.

初めに、除湿暖房運転時の動作について、図2を参照しながら説明する。除湿暖房運転時には、第一の風路切替手段6の動作によって、外気導入口1から熱回収風路29を通って第一の風路切替手段6に至る風路と、内気導入口4から除湿風路12を通って第一の風路切替手段6に至る風路とが形成される。送風手段7の運転により、外気および内気がこれらの風路から第一の風路切替手段6を介して混合され、送風手段7に吸引される。   First, the operation during the dehumidifying and heating operation will be described with reference to FIG. During the dehumidifying heating operation, the operation of the first air path switching means 6 dehumidifies the air path from the outside air inlet 1 through the heat recovery air path 29 to the first air path switching means 6 and the inside air inlet 4. An air path that reaches the first air path switching means 6 through the air path 12 is formed. By the operation of the air blowing means 7, the outside air and the inside air are mixed from these air paths through the first air path switching means 6 and sucked into the air blowing means 7.

このとき、除湿風路12を通る内気は第三車内熱交換器13内の冷媒と熱交換することによって冷却されて相対湿度が上昇する。一方、第三車内熱交換器13内の冷媒は内気から吸熱する。   At this time, the inside air passing through the dehumidifying air passage 12 is cooled by exchanging heat with the refrigerant in the third in-vehicle heat exchanger 13, and the relative humidity increases. On the other hand, the refrigerant in the third in-vehicle heat exchanger 13 absorbs heat from the inside air.

第三車内熱交換器13によって冷却されて相対湿度が上昇した内気は除湿手段26の除湿部24へと送風され、除湿部24で除湿されて乾燥する。そして除湿手段26での除湿に伴い、吸湿材料の水分吸着熱を受け取って加熱されその温度が上昇する。   The inside air whose relative humidity has been increased by being cooled by the third in-vehicle heat exchanger 13 is blown to the dehumidifying section 24 of the dehumidifying means 26, and is dehumidified by the dehumidifying section 24 and dried. As the dehumidifying means 26 dehumidifies, the moisture adsorption heat of the hygroscopic material is received and heated to increase its temperature.

またこのとき、熱回収風路29を通る外気と後述する再生風路28を通り車外へ吹出される空気とが、顕熱交換器30の作用によって熱交換され、熱回収風路29を通る外気の温度が上昇する。   At this time, the outside air passing through the heat recovery air passage 29 and the air blown out of the vehicle through the regeneration air passage 28 described later are heat-exchanged by the action of the sensible heat exchanger 30, and the outside air passing through the heat recovery air passage 29. Temperature rises.

除湿部24を通過して乾燥および温度上昇した内気と、顕熱交換器30を通過して温度上昇した外気は、第一の風路切替手段6を通じて混合され、送風手段7に吸引される。   The inside air that has been dried and has risen in temperature through the dehumidifying unit 24 and the outside air that has passed through the sensible heat exchanger 30 and has been raised in temperature are mixed through the first air path switching unit 6 and sucked into the blowing unit 7.

このとき、ヒートポンプサイクルは、制御手段によって冷媒が圧縮機16、四方弁17、第二車内熱交換器9、絞り弁21、逆止弁20、車外熱交換器14、第三車内熱交換器13、圧縮機16の順に流れるように動作し、第二車内熱交換器9が凝縮器、車外熱交換器14および第三車内熱交換器13が蒸発器として作用する。また、第一車内熱交換器8には冷媒は流さない。さらに、車外送風手段15が作動して車外熱交換器14で外気と冷媒が熱交換する。   At this time, in the heat pump cycle, the refrigerant is controlled by the control means in the compressor 16, the four-way valve 17, the second in-vehicle heat exchanger 9, the throttle valve 21, the check valve 20, the outside heat exchanger 14, and the third in-vehicle heat exchanger 13. The second in-vehicle heat exchanger 9 operates as a condenser, the outside heat exchanger 14 and the third in-vehicle heat exchanger 13 function as an evaporator. Further, no refrigerant flows through the first in-vehicle heat exchanger 8. Further, the outside air blowing means 15 is activated and the outside air and the refrigerant exchange heat with the outside heat exchanger 14.

第二車内熱交換器9が凝縮器として作用することで、送風手段7から吐出された空気は、温度調整手段11によってその一部または全部が第二車内熱交換器9で加熱され、所望の温度に調整されて第二の風路切替手段10へ送風される。   When the second in-vehicle heat exchanger 9 acts as a condenser, a part or all of the air discharged from the air blowing means 7 is heated by the second in-vehicle heat exchanger 9 by the temperature adjusting means 11, and the desired air is discharged. The temperature is adjusted and the air is sent to the second air path switching means 10.

第二の風路切替手段10に送風された空気は、第二の風路切替手段10の動作によって、その一部が除湿風路12へと分配され、その残りは空調吹出口2から車内各所、例えば窓、顔、足元へと分配される。   A part of the air blown to the second air path switching means 10 is distributed to the dehumidifying air path 12 by the operation of the second air path switching means 10, and the rest is supplied from the air conditioning outlet 2 to various locations in the vehicle. For example, it is distributed to windows, faces, and feet.

再生風路28へ送風された加熱空気は除湿手段26の再生部25へと送風される。再生部25において、除湿手段26の吸湿材料は再生風路28内の空気から熱を受け取って水分を空気中に放湿する。このようにして除湿手段26の再生が行われる。また、再生風路28と前述した熱回収風路29との交差部に配置される顕熱交換器30の作用によって、再生風路28を通る空気と、熱回収風路29を通る外気とが熱交換される。   The heated air sent to the regeneration air passage 28 is sent to the regeneration unit 25 of the dehumidifying means 26. In the regeneration unit 25, the moisture absorbing material of the dehumidifying means 26 receives heat from the air in the regeneration air passage 28 and releases moisture into the air. In this way, the dehumidifying means 26 is regenerated. Further, due to the action of the sensible heat exchanger 30 disposed at the intersection of the regeneration air passage 28 and the heat recovery air passage 29 described above, air passing through the regeneration air passage 28 and outside air passing through the heat recovery air passage 29 are generated. Heat exchanged.

ここで、本発明の構成では、車内暖房用に除湿され加熱された空気を第二の風路切替手段10によって再生風路28に分配し、除湿手段26の再生にこの空気を用いる構成となっている。   Here, in the configuration of the present invention, air that has been dehumidified and heated for heating inside the vehicle is distributed to the regeneration air passage 28 by the second air passage switching means 10, and this air is used for regeneration of the dehumidification means 26. ing.

このように構成することで、再生のための別の加熱手段を設ける必要がなく、除湿された空気の一部を用いて再生を行うので、相対湿度を再生に必要な値まで下げるために昇温する空気の温度を、除湿されていない状態の空気よりも低温にすることが可能となるので、ヒートポンプの電力消費が抑えられ、省エネ効果のある車両用空調装置を提供することができる。   With this configuration, it is not necessary to provide another heating means for regeneration, and regeneration is performed using a part of the dehumidified air, so that the relative humidity is increased to lower it to a value necessary for regeneration. Since the temperature of the air to be heated can be made lower than that of the air that has not been dehumidified, the power consumption of the heat pump can be suppressed, and an air conditioner for vehicles with an energy saving effect can be provided.

また、本発明の構成では、熱回収風路29と再生部25より下流側の再生風路28との交差部に顕熱交換器30を配置する構成となっている。   In the configuration of the present invention, the sensible heat exchanger 30 is disposed at the intersection of the heat recovery air passage 29 and the regeneration air passage 28 downstream from the regeneration portion 25.

このように構成することで,再生風路28を通り再生部25を介して車外へ吹出される空気から、熱回収風路29を通り車内へ吹出される空気へ熱を回収できるので、第二車内熱交換器9の加熱負荷を低減させることができ、省エネ効果のある車両空調装置を提供することができる。   With this configuration, heat can be recovered from the air blown out of the vehicle through the regeneration air passage 28 through the regeneration unit 25 to the air blown out through the heat recovery air passage 29 into the vehicle. The heating load of the in-vehicle heat exchanger 9 can be reduced, and a vehicle air conditioner having an energy saving effect can be provided.

なお、除湿風路12内の除湿手段26と車外吹出口27との間に、第三車内熱交換器13を配置し、第三車内熱交換器13で除湿風路12内の空気を冷却除湿してから除湿手段26へと流れる構成としている。   A third in-vehicle heat exchanger 13 is disposed between the dehumidifying means 26 in the dehumidifying air passage 12 and the outside air outlet 27, and the air in the dehumidifying air passage 12 is cooled and dehumidified by the third in-vehicle heat exchanger 13. Then, it is configured to flow to the dehumidifying means 26.

このように構成することで、除湿風路12内の内気は第三車内熱交換器13によって冷却され相対湿度が上昇するので、除湿手段26の吸湿材料に水分が吸湿されやすくなる。そのため、内気と外気を混合させてから除湿する場合、もしくは、内気を冷却せずに除湿する場合と比較して相対湿度を高くできるので、より多くの水分を除湿することができる。   With this configuration, the inside air in the dehumidifying air passage 12 is cooled by the third in-vehicle heat exchanger 13 and the relative humidity increases, so that moisture is easily absorbed by the moisture absorbing material of the dehumidifying means 26. For this reason, the relative humidity can be increased when dehumidification is performed after mixing the inside air and the outside air, or when the inside air is dehumidified without cooling, so that more water can be dehumidified.

さらに、第三車内熱交換器13によって内気を露点以下まで冷却させると、第三車内熱交換器13でも結露除湿を行うことが可能となり、除湿手段26のみでの除湿作用と比較して、さらに除湿効果の高い車両空調装置を提供することができる。   Further, when the inside air is cooled to the dew point or lower by the third in-vehicle heat exchanger 13, it is possible to perform dehumidification and dehumidification in the third in-vehicle heat exchanger 13 as well, compared with the dehumidifying action only by the dehumidifying means 26. A vehicle air conditioner having a high dehumidifying effect can be provided.

加えて、外気温が氷点下の場合、車外熱交換器14による外気から冷媒への吸熱が不足しやすいが、第三車内熱交換器13によって除湿風路12を通る内気から吸熱できるので、不足分の吸熱を補うことによってヒートポンプサイクルを継続して作用させることが可能となる。   In addition, when the outside air temperature is below the freezing point, the heat absorption from the outside air to the refrigerant by the outside heat exchanger 14 tends to be insufficient, but the third inside heat exchanger 13 can absorb the heat from the inside air passing through the dehumidifying air passage 12, so the shortage It is possible to continue the heat pump cycle by supplementing the endothermic heat.

次に、極寒冷地での使用など、外気温が氷点下であり、車内気温に比べて非常に低い温度である場合の動作について、図3を参照しながら説明する。この場合、除湿暖房運転中に顕熱交換器30が凍結する可能性がある。本実施の形態では、外気温湿度センサ23および内気温湿度センサ22が所定の値以下の温度および湿度を検知すると、除湿暖房運転の凍結防止モードとなり、制御手段によって第一の風路切替手段6が外気を導入する風路を熱回収風路29から車外吸気風路3へと切替える。また、再生風路28を通り車外へ排気される空気はそのまま顕熱交換器30を通過させる。このように変更すると、顕熱交換器30に導入される空気が再生風路28を通過する空気のみとなり、外気が導入されなくなるので、顕熱交換器30の温度が上昇して表面に着氷しにくくなる、もしくは氷が付着してもそれを融かすことができる。よって、顕熱交換器30の凍結を抑制できるので、極寒冷地でも連続的な除湿暖房を行うことができる。   Next, the operation in the case where the outside air temperature is below freezing point and the temperature is very low as compared with the in-vehicle temperature, such as use in an extremely cold region, will be described with reference to FIG. In this case, the sensible heat exchanger 30 may freeze during the dehumidifying heating operation. In the present embodiment, when the outside air temperature / humidity sensor 23 and the inside air temperature / humidity sensor 22 detect a temperature and humidity below a predetermined value, the anti-freezing mode of the dehumidifying heating operation is set, and the first air path switching means 6 is controlled by the control means. Switches the air path for introducing outside air from the heat recovery air path 29 to the outside air intake air path 3. Further, the air exhausted outside the vehicle through the regeneration air passage 28 passes through the sensible heat exchanger 30 as it is. If changed in this way, the air introduced into the sensible heat exchanger 30 becomes only the air passing through the regenerative air passage 28, and the outside air is not introduced. Therefore, the temperature of the sensible heat exchanger 30 rises and the surface is iced. It becomes difficult to melt or even if ice adheres, it can be melted. Therefore, since freezing of the sensible heat exchanger 30 can be suppressed, continuous dehumidifying heating can be performed even in a very cold region.

次に、夏季など、車内気温よりも車外気温が高い場合の動作について図4を参照しながら説明する。外気温湿度センサ23および内気温湿度センサ22によって車内気温よりも車外気温が高いと検知した場合には、冷房運転に切り替わる。   Next, the operation when the outside air temperature is higher than the inside air temperature, such as in summer, will be described with reference to FIG. When the outside air temperature / humidity sensor 23 and the inside air temperature / humidity sensor 22 detect that the outside air temperature is higher than the inside air temperature, the operation is switched to the cooling operation.

冷房運転に切り替わると、第一の風路切替手段6が動作し、外気導入口1から車外吸気風路3を通過して第一の風路切替手段6に至る風路と、内気導入口4から車内吸気風路5を通過して第一の風路切替手段6に至る風路が形成される。また、第二の風路切替手段10が動作し、再生風路28への連通が遮断される。   When switching to the cooling operation, the first air passage switching means 6 operates, the air passage from the outside air introduction port 1 through the outside intake air passage 3 to the first air passage switching means 6, and the inside air introduction port 4 To the first air passage switching means 6 through the in-vehicle intake air passage 5 is formed. Further, the second air path switching means 10 operates, and the communication with the regeneration air path 28 is blocked.

送風手段7が運転開始すると、外気および内気がこれらの風路および第一の風路切替手段6を介して混合されて送風手段7に吸引される。   When the air blowing means 7 starts operation, the outside air and the inside air are mixed through these air paths and the first air path switching means 6 and sucked into the air blowing means 7.

このときヒートポンプサイクルは、制御手段によって電磁弁31が開放され、冷媒が圧縮機16、四方弁17、逆止弁18、車外熱交換器14、電磁弁31、絞り弁19、第一車内熱交換器8、圧縮機16の順に流れるように動作し、車外熱交換器14が凝縮器、第一車内熱交換器8が蒸発器として作用する。またこのとき、第二車内熱交換器9および第三車内熱交換器13には冷媒は流さない。また、車外送風手段15が作動し、車外熱交換器14で冷媒は外気に放熱する。   At this time, in the heat pump cycle, the electromagnetic valve 31 is opened by the control means, and the refrigerant is the compressor 16, the four-way valve 17, the check valve 18, the external heat exchanger 14, the electromagnetic valve 31, the throttle valve 19, and the first in-vehicle heat exchange. The external heat exchanger 14 functions as a condenser, and the first in-vehicle heat exchanger 8 functions as an evaporator. At this time, no refrigerant flows through the second in-vehicle heat exchanger 9 and the third in-vehicle heat exchanger 13. In addition, the outside air blowing means 15 is operated, and the outside heat exchanger 14 radiates the refrigerant to the outside air.

第一車内熱交換器8が蒸発器として作用することにより、送風手段7から吹出された空気は、この第一車内熱交換器8によって冷却され第二の風路切替手段10へ送風される。   When the first in-vehicle heat exchanger 8 acts as an evaporator, the air blown out from the blowing means 7 is cooled by the first in-vehicle heat exchanger 8 and is blown to the second air path switching means 10.

第二の風路切替手段10では、再生風路28は遮断されているため、冷却された空気は空調吹出口2へと送風され、車内各所へ吹出され、冷房運転が行われる。   In the second air path switching means 10, since the regenerative air path 28 is blocked, the cooled air is blown to the air conditioning outlet 2 and blown out to various locations in the vehicle to perform a cooling operation.

以上述べたように、本発明における実施の形態1の構成および動作によれば、車内の暖房用に加熱され除湿された空気の一部を除湿手段26の再生に用いることにより、除湿手段26の再生に別の加熱手段を設ける必要がない。また、除湿された空気を除湿手段26の再生に用いているので、除湿しない空気に比べより低温での再生が可能となり、ヒートポンプの電力消費を抑え、省エネ効果のある車両用空調装置を提供するという効果を得ることができる。   As described above, according to the configuration and operation of the first embodiment of the present invention, a part of the air heated and dehumidified for heating in the vehicle is used for the regeneration of the dehumidifying means 26, so that the dehumidifying means 26 There is no need to provide separate heating means for regeneration. Further, since the dehumidified air is used for the regeneration of the dehumidifying means 26, it is possible to regenerate at a lower temperature than the air that is not dehumidified, thereby suppressing the power consumption of the heat pump and providing a vehicle air conditioner having an energy saving effect. The effect that can be obtained.

(実施の形態2)
図5は本発明の実施の形態2の車両用空調装置の除湿暖房運転時の風路構成図である。以下、その構成について図5及び図6を参照しながら説明するが、実施の形態1と同等の構成及び同じ作用となる部分についてはその詳細な説明を省略する。
(Embodiment 2)
FIG. 5 is an air path configuration diagram during the dehumidifying and heating operation of the vehicle air conditioner according to the second embodiment of the present invention. Hereinafter, the configuration will be described with reference to FIG. 5 and FIG. 6, but detailed description of the same configuration and the same operation as those of the first embodiment will be omitted.

説明に先立って、本実施の形態では、実施の形態1と同様の構成とした車外吸気風路3のうち、第一の風路切替手段6と温度調整手段11を連通する部分を混合風路32と呼ぶこととする。   Prior to the description, in the present embodiment, a portion of the outside intake air passage 3 having the same configuration as that of the first embodiment that communicates the first air passage switching means 6 and the temperature adjusting means 11 is a mixed air passage. It will be called 32.

図5に示すように、本実施の形態では、再生部25よりも下流側の再生風路28、すなわち、再生風路28のうち再生部25から車外吹出口27へと接続される部分と混合風路32との交差部に顕熱交換器30を配置している。その他の構成部分は上記実施の形態1の同等の構成及び同じ作用である。   As shown in FIG. 5, in the present embodiment, the regeneration air passage 28 downstream of the regeneration portion 25, that is, the portion of the regeneration air passage 28 that is connected from the regeneration portion 25 to the vehicle outlet 27 is mixed. A sensible heat exchanger 30 is arranged at the intersection with the air passage 32. The other components are the same as the first embodiment and the same operation.

以上述べた実施の形態2の構成において、その運転動作について図6を参照しながら説明する。図6に示すように、暖房運転時には、第一の風路切替手段6の動作によって、外気導入口1から車外吸気風路3を通って第一の風路切替手段6に至る風路と、内気導入口4から除湿風路12を通って第一の風路切替手段6に至る風路が形成される。送風手段7の運転により、外気および内気がこれらの風路から第一の風路切替手段6を介して混合され、混合風路32を通り顕熱交換器30を介して送風手段7に吸引される。   The operation of the configuration of the second embodiment described above will be described with reference to FIG. As shown in FIG. 6, during the heating operation, by the operation of the first air path switching means 6, the air path from the outside air inlet 1 through the outside air intake air path 3 to the first air path switching means 6, An air passage is formed from the inside air inlet 4 through the dehumidifying air passage 12 to the first air passage switching means 6. Due to the operation of the air blowing means 7, the outside air and the inside air are mixed from these air passages via the first air passage switching means 6, passed through the mixed air passage 32 and sucked into the air blowing means 7 via the sensible heat exchanger 30. The

送風手段7から吹出された空気は温度調整手段11によってその一部または全部が第二車内熱交換器9によって加熱され、所望の温度に調整されて第二の風路切替手段10に送風される。第二の風路切替手段10に送風された空気は、第二の風路切替手段10の作用によって、再生風路28に送風される空気と空調吹出口2から吹出される空気とに分流される。   A part or all of the air blown out from the air blowing means 7 is heated by the temperature adjusting means 11 by the second in-vehicle heat exchanger 9, adjusted to a desired temperature, and blown to the second air path switching means 10. . The air blown to the second air path switching means 10 is divided into air blown to the regeneration air path 28 and air blown from the air conditioning outlet 2 by the action of the second air path switching means 10. The

再生風路28へ送風された加熱空気は除湿手段26の再生部25へと送風される。再生部25において、実施の形態1と同様の作用によって除湿手段26の吸湿材料は再生風路28内の空気から熱を受け取って水分を空気中に放湿する。除湿手段26を通過し吸湿材料の再生を行った空気は顕熱交換器30を介して車外へ吹出される。   The heated air sent to the regeneration air passage 28 is sent to the regeneration unit 25 of the dehumidifying means 26. In the regeneration unit 25, the moisture absorbing material of the dehumidifying means 26 receives heat from the air in the regeneration air passage 28 and releases moisture into the air by the same operation as in the first embodiment. The air that has passed through the dehumidifying means 26 and has regenerated the hygroscopic material is blown out of the vehicle through the sensible heat exchanger 30.

ここで、実施の形態2における構成では、再生部25より下流側の再生風路28と混合風路32との交差部に顕熱交換器30を配置し、再生風路28を通って車外へ吹出す空気から混合風路32を通って車内へ吹出す空気へ熱回収する構成となっている。   Here, in the configuration according to the second embodiment, the sensible heat exchanger 30 is disposed at the intersection of the regeneration air path 28 and the mixed air path 32 on the downstream side of the regeneration unit 25 and passes through the regeneration air path 28 to the outside of the vehicle. Heat is recovered from the blown air to the air blown into the vehicle through the mixed air passage 32.

このような構成とすることで、極寒冷地での使用など、暖房時の外気温が氷点下であり、外気温が車内気温に比べて非常に低く、除湿暖房運転中に顕熱交換器30が凍結する可能性のある場合でも、第一の風路切替手段6で外気に内気を混合して昇温させた混合空気と再生風路28内の空気とを熱交換することで、混合により顕熱交換器30内の再生風路28の空気温度を凍結温度以上にすることができる。よって、極寒冷地であっても顕熱交換器30内部での凍結を抑制しつつ、熱回収を行うことができるので、第二車内熱交換器9の加熱負荷を抑制した省エネ効果のある車両用空調装置を提供することができる。   With such a configuration, the outside air temperature during heating is below freezing, such as when used in a very cold region, the outside air temperature is very low compared to the inside air temperature, and the sensible heat exchanger 30 is operated during the dehumidifying heating operation. Even in the case where there is a possibility of freezing, the first air path switching means 6 performs heat exchange between the mixed air that has been heated by mixing the inside air with the outside air and the air in the regenerative air path 28, so The air temperature of the regeneration air passage 28 in the heat exchanger 30 can be set to the freezing temperature or higher. Therefore, since heat recovery can be performed while suppressing freezing inside the sensible heat exchanger 30 even in an extremely cold region, the vehicle having an energy saving effect by suppressing the heating load of the second in-vehicle heat exchanger 9 An air conditioner can be provided.

本発明にかかる車両用空調装置は、車内の暖房用に加熱され除湿された空気の一部を除湿手段の再生に用い、また、車外への排気から熱を回収することができるため、暖房のためのヒートポンプの電力消費が抑えられて省エネ効果のあるもので、暖房の熱源の得られにくい電気自動車やハイブリッド車等に使用される車両用空調装置として有用である。   The vehicle air conditioner according to the present invention uses part of the air heated and dehumidified for heating in the vehicle for regeneration of the dehumidifying means, and can recover heat from the exhaust to the outside of the vehicle. Therefore, it is useful as an air conditioner for vehicles used in electric vehicles, hybrid vehicles, and the like, in which the power consumption of the heat pump is suppressed and has an energy saving effect, and it is difficult to obtain a heat source for heating.

1 外気導入口
2 空調吹出口
3 車外吸気風路
4 内気導入口
5 車内吸気風路
6 第一の風路切替手段
7 送風手段
8 第一車内熱交換器
9 第二車内熱交換器
10 第二の風路切替手段
12 除湿風路
13 第三車内熱交換器
14 車外熱交換器
16 圧縮機
19 絞り弁
21 絞り弁
24 除湿部
25 再生部
26 除湿手段
27 車外吹出口
28 再生風路
29 熱回収風路
30 顕熱交換器
32 混合風路
DESCRIPTION OF SYMBOLS 1 Outside air introduction port 2 Air-conditioning blower outlet 3 Outside air intake passage 4 Inside air introduction port 5 Inside air intake passage 6 First air passage switching means 7 Air blow means 8 First in-vehicle heat exchanger 9 Second in-vehicle heat exchanger 10 Second Air path switching means 12 Dehumidifying air path 13 Third in-vehicle heat exchanger 14 Outside heat exchanger 16 Compressor 19 Throttle valve 21 Throttle valve 24 Dehumidifying section 25 Regenerating section 26 Dehumidifying section 27 Outlet outlet 28 Regenerating air path 29 Heat recovery Air passage 30 Sensible heat exchanger 32 Mixed air passage

Claims (2)

外気を導入する外気導入口から車内に空調風を吹き出す空調吹出口にかけての車外吸気風路と、
この車外吸気風路内に、前記外気導入口側から順に、
車内に吹出す上流側の空気流を切替える第一の風路切替手段、
前記外気導入口から前記空調吹出口に向かう空気流を発生させる送風手段、
車内に吹出す空気を冷却または加熱する第一車内熱交換器および第二車内熱交換器、
車内に吹出す下流側の空気流を切替える第二の風路切替手段を備え、
内気を導入する内気導入口から前記第一の風路切替手段へ接続される車内吸気風路と、
前記内気導入口と前記第一の風路切替手段の間から分岐して前記第一の風路切替手段へと接続される除湿風路と、
前記除湿風路内の空気を冷却する第三車内熱交換器を備え、
前記第二の風路切替手段から分岐し前記送風手段によって吹出す空気の少なくとも一部を車外へ吹出す車外吹出口を接続する再生風路と、
前記除湿風路内の前記第三車内熱交換器と前記第一の風路切替手段の間に除湿部、前記再生風路内に再生部を有する除湿手段と、
外気と冷媒を熱交換する車外熱交換器と、
冷媒を圧縮する圧縮機と、
冷媒を膨張させて減圧する減圧手段と、
前記第一車内熱交換器、前記第二車内熱交換器、前記第三車内熱交換器、前記車外熱交換器、前記圧縮機、および前記減圧手段の間で冷媒を循環させるヒートポンプとを備えたものであって、
前記外気導入口と前記第一の風路切替手段の間から分岐して前記第一の風路切替手段へと接続される熱回収風路と、
前記熱回収風路と前記再生部から下流側の前記再生風路との交差部に顕熱交換器を配置し、
前記再生風路内の空気から車内へ吹出す空気へ熱を回収し除湿暖房を行うことを特徴とする車両用空調装置。
An outside air intake air passage from an outside air inlet that introduces outside air to an air conditioning outlet that blows out the conditioned air into the vehicle;
In this outside air intake air passage, in order from the outside air inlet side,
First air path switching means for switching the upstream air flow blown into the vehicle;
Blower means for generating an air flow from the outside air inlet to the air conditioning outlet,
A first in-vehicle heat exchanger and a second in-vehicle heat exchanger for cooling or heating the air blown into the vehicle,
Comprising a second air path switching means for switching the downstream air flow blown into the vehicle,
An in-vehicle intake air passage connected to the first air passage switching means from an inside air introduction port for introducing inside air;
A dehumidifying air passage branched from between the inside air inlet and the first air passage switching means and connected to the first air passage switching means;
A third in-vehicle heat exchanger for cooling the air in the dehumidifying air passage;
A regenerative air passage that branches from the second air passage switching means and connects an outside air outlet that blows out at least part of the air blown out by the air blowing means to the outside of the vehicle;
A dehumidifying unit between the third in-vehicle heat exchanger in the dehumidifying air path and the first air path switching unit, and a dehumidifying unit having a regenerating unit in the regenerating air path;
An external heat exchanger for exchanging heat between the outside air and the refrigerant;
A compressor for compressing the refrigerant;
Decompression means for expanding the refrigerant to reduce the pressure;
A heat pump for circulating refrigerant between the first in-vehicle heat exchanger, the second in-vehicle heat exchanger, the third in-vehicle heat exchanger, the out-of-vehicle heat exchanger, the compressor, and the pressure reducing means. And
A heat recovery air passage branched from the outside air inlet and the first air passage switching means and connected to the first air passage switching means;
A sensible heat exchanger is arranged at the intersection of the heat recovery air passage and the regeneration air passage downstream from the regeneration portion,
A vehicle air conditioner that recovers heat from air in the regeneration air passage to air blown into the vehicle and performs dehumidification heating.
外気を導入する外気導入口から車内に空調風を吹き出す空調吹出口にかけての車外吸気風路と、
この車外吸気風路内に、前記外気導入口側から順に、
車内に吹出す上流側の空気流を切替える第一の風路切替手段、
前記外気導入口から前記空調吹出口に向かう空気流を発生させる送風手段、
車内に吹出す空気を冷却または加熱する第一車内熱交換器および第二車内熱交換器、
車内に吹出す下流側の空気流を切替える第二の風路切替手段を備え、
内気を導入する内気導入口から前記第一の風路切替手段へ接続される車内吸気風路と、
前記内気導入口と前記第一の風路切替手段の間から分岐して前記第一の風路切替手段へと接続される除湿風路と、
前記除湿風路内の空気を冷却する第三車内熱交換器を備え、
前記第二の風路切替手段から分岐し前記送風手段によって吹出す空気の少なくとも一部を車外へ吹出す車外吹出口を接続する再生風路と、
前記除湿風路内の前記第三車内熱交換器と前記第一の風路切替手段の間に除湿部、前記再生風路内に再生部を有する除湿手段と、
外気と冷媒を熱交換する車外熱交換器と、
冷媒を圧縮する圧縮機と、
冷媒を膨張させて減圧する減圧手段と、
前記第一車内熱交換器、前記第二車内熱交換器、前記第三車内熱交換器、前記車外熱交換器、前記圧縮機、および前記減圧手段の間で冷媒を循環させるヒートポンプとを備えたものであって、
第一の風路切替手段と温度調整手段を連通する混合風路を備え、
再生部より下流側の再生風路と前記混合風路との交差部に顕熱交換器を配置し、前記再生風路を通って車外へ吹出す空気から前記混合風路を通って車内へ吹出す空気へ熱回収し除湿暖房を行うことを特徴とする車両用空調装置。
An outside air intake air passage from an outside air inlet that introduces outside air to an air conditioning outlet that blows out the conditioned air into the vehicle;
In this outside air intake air passage, in order from the outside air inlet side,
First air path switching means for switching the upstream air flow blown into the vehicle;
Blower means for generating an air flow from the outside air inlet to the air conditioning outlet,
A first in-vehicle heat exchanger and a second in-vehicle heat exchanger for cooling or heating the air blown into the vehicle,
Comprising a second air path switching means for switching the downstream air flow blown into the vehicle,
An in-vehicle intake air passage connected to the first air passage switching means from an inside air introduction port for introducing inside air;
A dehumidifying air passage branched from between the inside air inlet and the first air passage switching means and connected to the first air passage switching means;
A third in-vehicle heat exchanger for cooling the air in the dehumidifying air passage;
A regenerative air passage that branches from the second air passage switching means and connects an outside air outlet that blows out at least part of the air blown out by the air blowing means to the outside of the vehicle;
A dehumidifying unit between the third in-vehicle heat exchanger in the dehumidifying air path and the first air path switching unit, and a dehumidifying unit having a regenerating unit in the regenerating air path;
An external heat exchanger for exchanging heat between the outside air and the refrigerant;
A compressor for compressing the refrigerant;
Decompression means for expanding the refrigerant to reduce the pressure;
A heat pump for circulating refrigerant between the first in-vehicle heat exchanger, the second in-vehicle heat exchanger, the third in-vehicle heat exchanger, the out-of-vehicle heat exchanger, the compressor, and the pressure reducing means. And
Comprising a mixed air passage communicating the first air passage switching means and the temperature adjusting means;
A sensible heat exchanger is disposed at the intersection of the regenerative air passage downstream of the regenerator and the mixed air passage, and the air blown out of the vehicle through the regenerative air passage is blown into the vehicle through the mixed air passage. A vehicle air conditioner that recovers heat to air to be discharged and performs dehumidification heating.
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Cited By (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN105300079A (en) * 2015-11-20 2016-02-03 浙江大学 Dehumidifying device with vortex tube
JP2020192915A (en) * 2019-05-29 2020-12-03 国立大学法人 岡山大学 Vehicle air-conditioning system
CN115122870A (en) * 2022-07-26 2022-09-30 董胜龙 Energy recovery device of electric automobile

Cited By (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN105300079A (en) * 2015-11-20 2016-02-03 浙江大学 Dehumidifying device with vortex tube
JP2020192915A (en) * 2019-05-29 2020-12-03 国立大学法人 岡山大学 Vehicle air-conditioning system
WO2020240886A1 (en) * 2019-05-29 2020-12-03 国立大学法人 岡山大学 Vehicle air-conditioning system
CN113631401A (en) * 2019-05-29 2021-11-09 渡边裕 Air conditioning system for vehicle
CN115122870A (en) * 2022-07-26 2022-09-30 董胜龙 Energy recovery device of electric automobile
CN115122870B (en) * 2022-07-26 2023-05-05 董胜龙 Energy recovery device of electric automobile

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