JP2014194312A - Air conditioner - Google Patents

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JP2014194312A
JP2014194312A JP2013071008A JP2013071008A JP2014194312A JP 2014194312 A JP2014194312 A JP 2014194312A JP 2013071008 A JP2013071008 A JP 2013071008A JP 2013071008 A JP2013071008 A JP 2013071008A JP 2014194312 A JP2014194312 A JP 2014194312A
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heating operation
time
heat exchanger
defrosting
outdoor
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JP6103212B2 (en
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Mitsumasa Enomoto
光将 榎本
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Fujitsu General Ltd
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Fujitsu General Ltd
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Abstract

PROBLEM TO BE SOLVED: To set the rotational speed of an outdoor fan in a heating operation to be performed after the end of a defrosting operation by determining whether a present status is a status in which defrosting can be easily started, and to reduce unnecessary power consumption of the outdoor fan.SOLUTION: If a heating operation is to resume after finishing a defrosting operation, a rotational speed B of an outdoor fan included in an outdoor heat exchanger is set according to whether heating operation time A of a previous heating operation just before starting the defrosting operation (time from start of the heating operation until start of the defrosting operation) is long or short.

Description

本発明は、四方弁により冷房運転と暖房運転とが切替可能な冷凍サイクルを有する空気調和機に関し、さらに詳しく言えば、除霜運転を終了して暖房運転を再開させる際の室外ファンの回転数を制御する技術に関するものである。   The present invention relates to an air conditioner having a refrigeration cycle that can be switched between a cooling operation and a heating operation by a four-way valve, and more specifically, the rotational speed of an outdoor fan when the defrosting operation is ended and the heating operation is restarted. It is related with the technique which controls.

冷房/暖房兼用の空気調和機は、圧縮機、四方弁、室外熱交換器、膨張弁および室内熱交換器を冷媒配管を介して接続してなる冷凍サイクルを有し、冷房運転時には、冷媒が圧縮機→四方弁→室外熱交換器→膨張弁→室内熱交換器→四方弁→圧縮機へと流されて、室外熱交換器が凝縮器、室内熱交換器が蒸発器として作用する。   A cooling / heating combined use air conditioner has a refrigeration cycle in which a compressor, a four-way valve, an outdoor heat exchanger, an expansion valve, and an indoor heat exchanger are connected via a refrigerant pipe. The compressor → four-way valve → outdoor heat exchanger → expansion valve → indoor heat exchanger → four-way valve → compressed to the compressor, the outdoor heat exchanger acts as a condenser and the indoor heat exchanger acts as an evaporator.

これに対して、暖房運転時には、冷媒が圧縮機→四方弁→室内熱交換器→膨張弁→室外熱交換器→四方弁→圧縮機へと流されて、室内熱交換器が凝縮器、室外熱交換器が蒸発器として作用する。この冷房/暖房の切り替えは、リモコン等からの指示に基づいて室外機側の制御部により行われる。   On the other hand, during the heating operation, the refrigerant is flowed to the compressor → four-way valve → indoor heat exchanger → expansion valve → outdoor heat exchanger → four-way valve → compressor. A heat exchanger acts as an evaporator. This switching between cooling and heating is performed by the control unit on the outdoor unit side based on an instruction from a remote controller or the like.

このように、暖房運転時には、室外熱交換器が蒸発器として作用することから、外気温が低い環境下で、暖房運転を続けると、室外熱交換器に付着した凝縮水が結氷して霜付き現象が発生する。そうすると、室外熱交換器の熱交換率が低下する。   In this way, during the heating operation, the outdoor heat exchanger acts as an evaporator, so if the heating operation is continued in an environment where the outside air temperature is low, the condensed water adhering to the outdoor heat exchanger is frozen and frosted. The phenomenon occurs. If it does so, the heat exchange rate of an outdoor heat exchanger will fall.

そこで、暖房運転中、室外機側の制御部は、所定の除霜運転開始条件が成立したかどうかを判定し、除霜条件が成立が成立した場合には、除霜運転を行うようにしている。除霜運転開始条件には、外気温、室外熱交換器の室外熱交温度、暖房運転時間等が含まれる。   Therefore, during the heating operation, the control unit on the outdoor unit side determines whether a predetermined defrosting operation start condition is satisfied, and performs the defrosting operation when the defrosting condition is satisfied. Yes. The defrosting operation start conditions include the outside air temperature, the outdoor heat exchanger temperature of the outdoor heat exchanger, the heating operation time, and the like.

通常、除霜運転は、リバース除霜として、四方弁を冷房運転側に切り換えて行う。すなわち、除霜運転時は、冷房運転と同じく、冷媒が圧縮機からの高温・高圧の冷媒が、室外熱交換器に供給され、これによって室外熱交換器の温度(室外熱交温度)が上昇し、室外熱交換器に付着している霜が溶かされる。   Usually, the defrosting operation is performed by switching the four-way valve to the cooling operation side as reverse defrosting. That is, during the defrosting operation, as in the cooling operation, the high-temperature and high-pressure refrigerant from the compressor is supplied to the outdoor heat exchanger, thereby increasing the temperature of the outdoor heat exchanger (outdoor heat exchange temperature). And the frost adhering to the outdoor heat exchanger is melted.

この除霜運転中、室外機側の制御部は、例えば室外熱交温度Tcと、除霜運転時間RTとを監視し、室外熱交温度Tcが所定の解除温度(一例として15℃)にまで上昇した場合、もしくは室外熱交温度Tcが解除温度にまで上昇せず、除霜運転時間RTがタイムアップ時間(一例として15分)になった場合に、除霜運転を終了し、暖房運転を再開させる。   During the defrosting operation, the control unit on the outdoor unit side monitors, for example, the outdoor heat exchange temperature Tc and the defrosting operation time RT, and the outdoor heat exchange temperature Tc reaches a predetermined release temperature (15 ° C. as an example). When the temperature rises or when the outdoor heat exchange temperature Tc does not rise to the release temperature and the defrosting operation time RT reaches the time-up time (15 minutes as an example), the defrosting operation is terminated and the heating operation is started. Let it resume.

除霜運転中は室内の暖房が途切れるため、除霜運転終了後の暖房運転においては、室外ファンの回転数を最大回転数として室外熱交換器の蒸発温度を高め、室外熱交換器の霜付きをできるだけ少なくして、次の除霜運転に入りづらくするようにしている。   Since the indoor heating is interrupted during the defrosting operation, in the heating operation after the completion of the defrosting operation, the outdoor fan heats up with the maximum number of rotations of the outdoor fan to increase the evaporation temperature of the outdoor heat exchanger. As much as possible, it is difficult to enter the next defrosting operation.

しかしながら、室内機側から高い暖房能力が要求されていない場合には、室外ファンを最大回転数で運転する必要はなく、その分、電力が無駄に消費されることになる。   However, when high heating capacity is not required from the indoor unit side, it is not necessary to operate the outdoor fan at the maximum number of rotations, and power is wasted correspondingly.

なお、特許文献1には、除霜運転時に室内温度が低下しないようにするため、過去に行われた除霜運転条件から、次の除霜開始時期を予測し、その予測時期より所定時間前に室温の設定温度を所定値だけ高くして暖房運転を行って、事前に暖房能力を上げることが提案されている。   In Patent Document 1, in order to prevent the room temperature from decreasing during the defrosting operation, the next defrosting start time is predicted from the defrosting operation conditions performed in the past, and a predetermined time before the predicted time. In addition, it has been proposed to increase the heating capacity in advance by increasing the set temperature of the room temperature by a predetermined value and performing the heating operation.

しかしながら、この場合においても、事前に暖房能力を上げる際に、室外ファンの回転数を、それまでの暖房運転時の回転数よりも高い回転数としており、その分、余計に電力が消費されることになる。   However, even in this case, when the heating capacity is increased in advance, the rotation speed of the outdoor fan is set to be higher than the rotation speed at the time of the heating operation so far, and extra power is consumed accordingly. It will be.

特開平4−257646号公報JP-A-4-257646

したがって、本発明の課題は、空気調和機が除霜運転に入りやすい状況かどうかを判定して、除霜運転終了後に行う暖房運転での室外ファンの回転数を設定することにより、室外ファンの無駄な消費電力を削減することにある。   Therefore, the problem of the present invention is to determine whether the air conditioner is likely to enter the defrosting operation, and by setting the rotation speed of the outdoor fan in the heating operation performed after the defrosting operation is completed, It is to reduce wasteful power consumption.

上記した課題を解決するため、本発明は、圧縮機、四方弁、室外熱交換器、膨張弁および室内熱交換器を冷媒配管を介して接続してなる冷凍サイクルと、上記四方弁により上記冷凍サイクルを暖房運転と冷房運転とに可逆的に切り替える制御部とを含み、上記制御部は、暖房運転中において、所定の除霜運転開始条件下で上記四方弁を暖房運転側から冷房運転側に切り替えて上記室外熱交換器に付着した霜を取り除く除霜運転を開始させ、上記除霜運転開始後において、所定の除霜運転解除条件下で除霜運転を終了させて、上記四方弁を冷房運転側から暖房運転側に切り換えて、暖房運転を再開させる制御を行う空気調和機において、
上記制御部は、除霜運転を終了させて暖房運転を再開させるにあたって、上記除霜運転に入る直前の前回暖房運転で実行された暖房運転時間Aを記憶し、上記室外熱交換器が備えている室外ファンの回転数Bを、上記暖房運転時間Aの長短に応じて設定し、上記暖房運転を再開させることを特徴としている。
In order to solve the above problems, the present invention provides a refrigeration cycle in which a compressor, a four-way valve, an outdoor heat exchanger, an expansion valve, and an indoor heat exchanger are connected via a refrigerant pipe, and the refrigeration by the four-way valve. A control unit that reversibly switches the cycle between heating operation and cooling operation, and the control unit moves the four-way valve from the heating operation side to the cooling operation side under a predetermined defrosting operation start condition during the heating operation. The defrosting operation for removing frost attached to the outdoor heat exchanger is started, and after the defrosting operation is started, the defrosting operation is terminated under a predetermined defrosting operation release condition, and the four-way valve is cooled. In an air conditioner that performs control to switch from the operation side to the heating operation side and resume the heating operation,
The control unit stores the heating operation time A executed in the previous heating operation immediately before entering the defrosting operation when the defrosting operation is ended and the heating operation is restarted, and the outdoor heat exchanger is provided. The rotational speed B of the outdoor fan is set according to the length of the heating operation time A, and the heating operation is restarted.

本発明の好ましい態様によると、上記制御部は、上記暖房運転時間Aが所定時間を超えたかどうかを判定するための基準時間Thを有し、上記暖房運転時間Aが上記基準時間Thよりも短時間である場合には、上記室外ファンの回転数Bを、上記前回暖房運転時の回転数Bfよりも大きくし、上記暖房運転時間Aが上記基準時間Thよりも長時間である場合には、上記室外ファンの回転数Bを、上記前回暖房運転時の回転数Bfと同回転数、もしくはそれよりも低い回転数とする。   According to a preferred aspect of the present invention, the control unit has a reference time Th for determining whether the heating operation time A exceeds a predetermined time, and the heating operation time A is shorter than the reference time Th. If it is time, the rotational speed B of the outdoor fan is made larger than the rotational speed Bf at the time of the previous heating operation, and the heating operation time A is longer than the reference time Th, The rotational speed B of the outdoor fan is set to the same rotational speed as the rotational speed Bf in the previous heating operation or a lower rotational speed.

本発明によれば、除霜運転を終了させて暖房運転を再開させるにあたって、室外ファンの回転数Bを、除霜運転に入る直前の前回暖房運転で行われた暖房運転時間Aの長短に応じて設定することにより、上記従来技術のように、除霜運転終了後の暖房運転時において、室外ファンの回転数を一律に最大回転数とする場合に比べて、室外ファンの無駄な消費電力を削減することができる。   According to the present invention, when the defrosting operation is terminated and the heating operation is restarted, the rotational speed B of the outdoor fan is determined according to the length of the heating operation time A performed in the previous heating operation immediately before entering the defrosting operation. Thus, as in the above-described conventional technology, the wasteful power consumption of the outdoor fan can be reduced compared to the case where the rotational speed of the outdoor fan is uniformly set to the maximum rotational speed during the heating operation after the completion of the defrosting operation. Can be reduced.

本発明の空気調和機が備える冷凍サイクルを示す模式図。The schematic diagram which shows the refrigerating cycle with which the air conditioner of this invention is provided. 除霜運転終了後の暖房運転時の室外ファンの回転数を設定する手順を示すフローチャート。The flowchart which shows the procedure which sets the rotation speed of the outdoor fan at the time of the heating operation after completion | finish of a defrost operation.

次に、図1および図2により、本発明の実施形態について説明するが、本発明はこれに限定されるものではない。   Next, an embodiment of the present invention will be described with reference to FIGS. 1 and 2, but the present invention is not limited to this.

図1に示すように、この実施形態に係る空気調和機は、圧縮機11、四方弁12、室外熱交換器13、膨張弁14、室内熱交換器16およびアキュムレータ17を冷媒配管を介して接続してなる冷凍サイクルと、この冷凍サイクルを制御する制御部20とを備えている。   As shown in FIG. 1, the air conditioner according to this embodiment connects a compressor 11, a four-way valve 12, an outdoor heat exchanger 13, an expansion valve 14, an indoor heat exchanger 16, and an accumulator 17 via a refrigerant pipe. And a control unit 20 that controls the refrigeration cycle.

圧縮機11は、ロータリー式、スクロール式、一定速型、インバータによる可変速型のいずれであってもよいが、圧縮機11の冷媒吐出管11aには、吐出冷媒の温度を検出する吐出温度センサ111が設けられている。   The compressor 11 may be any of a rotary type, a scroll type, a constant speed type, and a variable speed type using an inverter, but a discharge temperature sensor for detecting the temperature of the discharge refrigerant is provided in the refrigerant discharge pipe 11a of the compressor 11. 111 is provided.

室外熱交換器13は、室外ファン131を備えるとともに、室外熱交換器13には、外気温度を検出する外気温センサ132と、室外熱交換器の温度(室外熱交温度)Tcを検出する室外熱交温度センサ133とが設けられている。なお、この室外熱交温度センサ133は、室外熱交換器13の着霜状態を検出するセンサも兼ねている。   The outdoor heat exchanger 13 includes an outdoor fan 131. The outdoor heat exchanger 13 includes an outdoor air temperature sensor 132 that detects an outdoor air temperature, and an outdoor air temperature that detects the temperature (outdoor heat exchange temperature) Tc of the outdoor heat exchanger. A heat exchanger temperature sensor 133 is provided. The outdoor heat exchanger temperature sensor 133 also serves as a sensor that detects the frosting state of the outdoor heat exchanger 13.

この室外熱交温度センサ133は、室外熱交換器13に通されているパス(冷媒配管)のうち、室外熱交換器13の着霜状態を検出し得る位置に配置されているが、このほか、室外熱交換器13には、熱交換の状態を検出するための図示しないセンサが設けられてよい。膨張弁14には、例えばパルスモータにより弁開度が制御される電子膨張弁が用いられている。   The outdoor heat exchanger temperature sensor 133 is disposed at a position where the frosting state of the outdoor heat exchanger 13 can be detected in a path (refrigerant pipe) passed through the outdoor heat exchanger 13. The outdoor heat exchanger 13 may be provided with a sensor (not shown) for detecting the state of heat exchange. As the expansion valve 14, for example, an electronic expansion valve whose valve opening degree is controlled by a pulse motor is used.

室内熱交換器16は、室内ファン161を備えている。また、室内熱交換器16には、室温を検出する室温センサ162、室内熱交換器16の温度を検出する室内熱交温度センサ163が設けられている。   The indoor heat exchanger 16 includes an indoor fan 161. The indoor heat exchanger 16 is provided with a room temperature sensor 162 that detects the room temperature and an indoor heat exchanger temperature sensor 163 that detects the temperature of the indoor heat exchanger 16.

アキュムレータ17は気液分離器で、室外熱交換器13もしくは室内熱交換器16から低圧側の冷媒戻り配管171を介して圧縮機11側に戻される冷媒内に含まれている液冷媒を分離する。液冷媒と分離された気相冷媒は、冷媒吸入管11bを介して圧縮機11に吸入される。   The accumulator 17 is a gas-liquid separator, and separates the liquid refrigerant contained in the refrigerant returned from the outdoor heat exchanger 13 or the indoor heat exchanger 16 to the compressor 11 side via the low-pressure side refrigerant return pipe 171. . The gas-phase refrigerant separated from the liquid refrigerant is sucked into the compressor 11 through the refrigerant suction pipe 11b.

四方弁12は、吐出冷媒が供給される第1ポート121と、室外熱交換器13が接続される第2ポート122と、室内熱交換器16が接続される第2ポート123と、アキュムレータ17に至る冷媒戻り配管171が接続される第4ポート124の4つのポートを備えている。   The four-way valve 12 includes a first port 121 to which discharged refrigerant is supplied, a second port 122 to which the outdoor heat exchanger 13 is connected, a second port 123 to which the indoor heat exchanger 16 is connected, and an accumulator 17. 4 ports of the 4th port 124 to which the refrigerant | coolant return piping 171 to reach is connected are provided.

冷房運転時には、四方弁12が図示実線に示すように切り替えられ、第1ポート121と第2ポート122とが接続されるとともに、第3ポート123と第4ポート124とが接続される。   During the cooling operation, the four-way valve 12 is switched as shown by the solid line in the figure, the first port 121 and the second port 122 are connected, and the third port 123 and the fourth port 124 are connected.

これにより、圧縮機11からの吐出冷媒は、室外熱交換器13→膨張弁14→室内熱交換器16→冷媒戻り配管171→アキュムレータ17→圧縮機11へと循環し、室外熱交換器13が凝縮器、室内熱交換器16が蒸発器として作用する。   Thereby, the refrigerant discharged from the compressor 11 circulates from the outdoor heat exchanger 13 → the expansion valve 14 → the indoor heat exchanger 16 → the refrigerant return pipe 171 → the accumulator 17 → the compressor 11, and the outdoor heat exchanger 13 is circulated. The condenser and the indoor heat exchanger 16 function as an evaporator.

暖房運転時には、四方弁130が図示鎖線に示すように切り替えられ、第1ポート121と第3ポート123とが接続されるとともに、第2ポート122と第4ポート124とが接続される。   During the heating operation, the four-way valve 130 is switched as indicated by the chain line in the figure, and the first port 121 and the third port 123 are connected, and the second port 122 and the fourth port 124 are connected.

これにより、圧縮機11からの吐出冷媒は、室内熱交換器16→膨張弁14→室外熱交換器13→冷媒戻り配管171→アキュムレータ17→圧縮機11へと循環し、室内熱交換器210が凝縮器、室外熱交換器140が蒸発器として作用する。   As a result, the refrigerant discharged from the compressor 11 circulates from the indoor heat exchanger 16 → the expansion valve 14 → the outdoor heat exchanger 13 → the refrigerant return pipe 171 → the accumulator 17 → the compressor 11, and the indoor heat exchanger 210 is circulated. The condenser and the outdoor heat exchanger 140 function as an evaporator.

制御部20には、好ましくはマイクロコンピュータが用いられる。制御部20は、暖房運転や冷房運転、除霜運転等の運転時間を計時するタイマ210を備えている。   The control unit 20 is preferably a microcomputer. The control unit 20 includes a timer 210 that measures the operation time of heating operation, cooling operation, defrosting operation, and the like.

制御部20には、吐出温度センサ111、外気温センサ132、室外熱交温度センサ133、室温センサ162等から信号が入力され、制御部20は、これらの各信号に基づいて、除霜運転を含む冷凍サイクルの運転に必要な制御を行う。   Signals are input to the control unit 20 from the discharge temperature sensor 111, the outside air temperature sensor 132, the outdoor heat exchange temperature sensor 133, the room temperature sensor 162, and the like, and the control unit 20 performs the defrosting operation based on these signals. Control necessary for the operation of the refrigeration cycle.

次に、図2のフローチャートを参照して、この実施形態で行う除霜運転終了後の暖房運転時の室外ファン131の回転数(以下、「室外ファン回転数」と言う)を設定する手順について説明する。   Next, with reference to the flowchart of FIG. 2, about the procedure of setting the rotation speed of the outdoor fan 131 at the time of the heating operation after completion | finish of the defrost operation performed in this embodiment (henceforth "outdoor fan rotation speed"). explain.

まず、ステップST101で、暖房運転を行うにあたって、室外ファン回転数Bを初期値に設定する。なお、この実施形態において、室外ファン131の最大回転数(上限値)は1200rpm,最小回転数(下限値)は600rpmで、回転数を変更する1ステップあたりの回転数は100rpmである。また、このステップST101で設定する初期値は、そのときの外気温や圧縮機の回転数等に基づいて決められ、この例ではB=700rpmとしている。   First, in step ST101, when the heating operation is performed, the outdoor fan rotation speed B is set to an initial value. In this embodiment, the outdoor fan 131 has a maximum rotation speed (upper limit value) of 1200 rpm, a minimum rotation speed (lower limit value) of 600 rpm, and a rotation speed per step for changing the rotation speed is 100 rpm. The initial value set in step ST101 is determined based on the outside air temperature at that time, the rotational speed of the compressor, and the like, and in this example, B = 700 rpm.

上記のように、室外ファン回転数Bが初期値の700rpmに設定されたのち、リモコン等からの暖房運転の指示を受けて、ステップST102で、暖房運転を開始するとともに、タイマ210をスタートさせて、暖房運転時間Aの計時を開始する。   As described above, after the outdoor fan rotation speed B is set to the initial value of 700 rpm, a heating operation instruction is received from a remote controller or the like, and in step ST102, the heating operation is started and the timer 210 is started. Then, the timing of the heating operation time A is started.

その後、制御部20は、ステップST103で、除霜運転を開始するかどうかを判定する。この除霜開始判定には、例えば外気温To、室外熱交温度Tc、室内温度Ti等が用いられ、一例として、外気温To≦−5℃、かつ、室外熱交温度Tc≦−15℃の場合、および/または、室内温度Tiが所定時間経過も設定温度に達しない場合に、制御部20は、除霜開始(Yes)と判定する。   Then, the control part 20 determines whether defrost operation is started by step ST103. For this defrosting start determination, for example, the outside air temperature To, the outdoor heat exchange temperature Tc, the room temperature Ti, and the like are used. As an example, the outside air temperature To ≦ −5 ° C. and the outdoor heat exchange temperature Tc ≦ −15 ° C. In this case, and / or when the room temperature Ti does not reach the set temperature even after a predetermined time has elapsed, the control unit 20 determines that defrosting has started (Yes).

そうすると、ステップST104で、タイマ210にて計時された暖房運転時間Aを記憶し、ステップST105で、四方弁12を暖房運転側から冷房運転側に切り替えて、除霜運転を開始する。この除霜運転時、室内機側では、室内温度が下がらないようにするため、室内ファン161を停止させている。   Then, in step ST104, the heating operation time A counted by the timer 210 is stored, and in step ST105, the four-way valve 12 is switched from the heating operation side to the cooling operation side, and the defrosting operation is started. During the defrosting operation, the indoor fan 161 is stopped on the indoor unit side so that the indoor temperature does not decrease.

除霜運転が開始されると、制御部20は、ステップST106で、除霜運転を終了するかどうかを判定する。この実施形態において、除霜終了判定には、室外熱交温度Tcと、除霜運転時間RTとが用いられ、室外熱交温度Tcが所定の解除温度(一例として15℃)にまで上昇した場合、もしくは室外熱交温度Tcが解除温度にまで上昇せず、除霜運転時間RTがタイムアップ時間(一例として15分)になった場合に、制御部20は、除霜終了(Yes)と判定する。   When the defrosting operation is started, the control unit 20 determines whether or not to end the defrosting operation in step ST106. In this embodiment, the outdoor heat exchange temperature Tc and the defrost operation time RT are used for the defrosting end determination, and the outdoor heat exchange temperature Tc rises to a predetermined release temperature (15 ° C. as an example). Alternatively, when the outdoor heat exchange temperature Tc does not rise to the release temperature and the defrosting operation time RT reaches the time-up time (for example, 15 minutes), the control unit 20 determines that the defrosting is finished (Yes). To do.

これにより、四方弁12が冷房運転側から再度暖房運転側に切り替えられ、ステップST102に戻って暖房運転が再開されるが、先のステップST102で行われた暖房運転を「前回暖房運転」、除霜運転後に再開される暖房運転を「次回暖房運転」として、この実施形態では、次回暖房運転を行うにあたって、ステップST107〜ST110のいずれかのステップにより、前回の暖房運転時間Aに基づいて、次回暖房運転での室外ファン回転数が決められる。   As a result, the four-way valve 12 is switched from the cooling operation side to the heating operation side again, and the heating operation is resumed by returning to step ST102. However, the heating operation performed in the previous step ST102 is referred to as “previous heating operation”, In this embodiment, the heating operation resumed after the frost operation is set as “next heating operation”. In this embodiment, the next heating operation is performed next time based on the previous heating operation time A by any one of steps ST107 to ST110. The outdoor fan speed in heating operation is determined.

まず、制御部20は、ステップST107で、A<60分であるかどうか、すなわち、暖房運転開始から60分を経たないで除霜運転が開始されたかどうかを判定し、その判定結果がYesである場合には、頻繁に除霜運転に入りやすい状況であると推測されることから、ステップST107aで、次回暖房運転で除霜運転に入りづらくするように、室外ファン回転数Bを、B=B+3ステップの1000rpmに上げて設定する。   First, in step ST107, the control unit 20 determines whether or not A <60 minutes, that is, whether or not the defrosting operation is started without passing 60 minutes from the start of the heating operation, and the determination result is Yes. In some cases, it is presumed that the defrosting operation is likely to be frequently performed. Therefore, in step ST107a, the outdoor fan rotation speed B is set to B = so that it is difficult to enter the defrosting operation in the next heating operation. Set to 1000 rpm, B + 3 steps.

ステップST107での判定結果がNo(A≧60分)であれば、次のステップST108で、A<120分であるかどうかを判定し、その判定結果がYesであれば、ステップST108aで、次回暖房運転での室外ファン回転数Bを、B=B+2ステップの900rpmに設定する。   If the determination result in step ST107 is No (A ≧ 60 minutes), it is determined in the next step ST108 whether A <120 minutes. If the determination result is Yes, the next time in step ST108a. The outdoor fan rotation speed B in the heating operation is set to 900 rpm of B = B + 2 steps.

ステップST108での判定結果がNo(A≧120分)であれば、次のステップST109で、A<180分であるかどうかを判定し、その判定結果がYesであれば、ステップST109aで、次回暖房運転での室外ファン回転数Bを、B=B+1ステップの800rpmに設定する。   If the determination result in step ST108 is No (A ≧ 120 minutes), it is determined in the next step ST109 whether A <180 minutes. If the determination result is Yes, the next time in step ST109a. The outdoor fan rotation speed B in the heating operation is set to 800 rpm of B = B + 1 step.

ステップST109での判定結果がNo(A≧180分)であれば、次のステップST110で、A<240分であるかどうかを判定し、その判定結果がYesであれば、室外ファン回転数Bを変更せず、初期の700rpmのままとして、次回暖房運転に入る。   If the determination result in step ST109 is No (A ≧ 180 minutes), it is determined in the next step ST110 whether A <240 minutes. If the determination result is Yes, the outdoor fan rotation speed B is determined. Without changing, the initial heating speed is kept at 700 rpm and the next heating operation is started.

ステップST110での判定結果がNo(A≧240分)の場合には、ステップST110aで、次回暖房運転での室外ファン回転数Bを、B=B−1ステップの600rpmに下げて設定する。なお、このように室外ファン回転数Bを下げる場合、最小回転数(下限値)を限度とする。   When the determination result in step ST110 is No (A ≧ 240 minutes), in step ST110a, the outdoor fan rotation speed B in the next heating operation is set to 600 rpm of B = B−1 step. In addition, when lowering the outdoor fan rotation speed B in this way, the minimum rotation speed (lower limit value) is the limit.

このように、本発明によれば、前回の暖房運転時間A(暖房運転開始から除霜運転に入るまでの時間)に応じて、除霜運転終了後の次回暖房運転時の室外ファン回転数を設定する、すなわち、上記実施形態のように、A<60分の場合には1000rpm,60分≦A<120分の場合には900rpm,120分≦A<180分の場合には800rpm,180分≦A<240分の場合には初期の700rpmを維持、A≧240分の場合には600rpmに下げる、ようにしたことにより、上記従来技術のように、除霜運転終了後の暖房運転時において、室外ファンの回転数を一律に最大回転数とする場合に比べて、室外ファンの無駄な消費電力を削減することができ、また、除霜運転に入る頻度を抑えることができる。   Thus, according to the present invention, according to the previous heating operation time A (time from the start of the heating operation to the start of the defrosting operation), the outdoor fan rotation speed at the next heating operation after the completion of the defrosting operation is set. That is, as in the above embodiment, if A <60 minutes, 1000 rpm, 60 minutes ≦ A <120 minutes, 900 rpm, 120 minutes ≦ A <180 minutes, 800 rpm, 180 minutes. In the case of ≦ A <240 minutes, the initial 700 rpm is maintained, and in the case of A ≧ 240 minutes, the pressure is lowered to 600 rpm. As compared with the case where the rotational speed of the outdoor fan is uniformly set to the maximum rotational speed, useless power consumption of the outdoor fan can be reduced, and the frequency of entering the defrosting operation can be suppressed.

11 圧縮機
12 四方弁
13 室外熱交換器
131 室外ファン
132 外気温センサ
133 室外熱交温度センサ
14 膨張弁
16 室内熱交換器
162 室温センサ
17 アキュムレータ
20 制御部
210 タイマ
DESCRIPTION OF SYMBOLS 11 Compressor 12 Four-way valve 13 Outdoor heat exchanger 131 Outdoor fan 132 Outdoor air temperature sensor 133 Outdoor heat exchange temperature sensor 14 Expansion valve 16 Indoor heat exchanger 162 Room temperature sensor 17 Accumulator 20 Control part 210 Timer

Claims (2)

圧縮機、四方弁、室外熱交換器、膨張弁および室内熱交換器を冷媒配管を介して接続してなる冷凍サイクルと、上記四方弁により上記冷凍サイクルを暖房運転と冷房運転とに可逆的に切り替える制御部とを含み、
上記制御部は、暖房運転中において、所定の除霜運転開始条件下で上記四方弁を暖房運転側から冷房運転側に切り替えて上記室外熱交換器に付着した霜を取り除く除霜運転を開始させ、上記除霜運転開始後において、所定の除霜運転解除条件下で除霜運転を終了させて、上記四方弁を冷房運転側から暖房運転側に切り換えて、暖房運転を再開させる制御を行う空気調和機において、
上記制御部は、除霜運転を終了させて暖房運転を再開させるにあたって、上記除霜運転に入る直前の前回暖房運転で実行された暖房運転時間Aを記憶し、上記室外熱交換器が備えている室外ファンの回転数Bを、上記暖房運転時間Aの長短に応じて設定し、上記暖房運転を再開させることを特徴とする空気調和機。
A refrigerating cycle in which a compressor, a four-way valve, an outdoor heat exchanger, an expansion valve, and an indoor heat exchanger are connected via a refrigerant pipe, and the four-way valve reversibly converts the refrigeration cycle into a heating operation and a cooling operation. A switching control unit,
During the heating operation, the control unit switches the four-way valve from the heating operation side to the cooling operation side under a predetermined defrosting operation start condition, and starts a defrosting operation for removing frost attached to the outdoor heat exchanger. After the start of the defrosting operation, air that performs control to resume the heating operation by ending the defrosting operation under a predetermined defrosting operation release condition and switching the four-way valve from the cooling operation side to the heating operation side. In the harmony machine,
The control unit stores the heating operation time A executed in the previous heating operation immediately before entering the defrosting operation when the defrosting operation is ended and the heating operation is restarted, and the outdoor heat exchanger is provided. An air conditioner characterized in that the rotation speed B of an outdoor fan is set according to the length of the heating operation time A and the heating operation is resumed.
上記制御部は、上記暖房運転時間Aが所定時間を超えたかどうかを判定するための基準時間Thを有し、上記暖房運転時間Aが上記基準時間Thよりも短時間である場合には、上記室外ファンの回転数Bを、上記前回暖房運転時の回転数Bfよりも大きくし、上記暖房運転時間Aが上記基準時間Thよりも長時間である場合には、上記室外ファンの回転数Bを、上記前回暖房運転時の回転数Bfと同回転数、もしくはそれよりも低い回転数とすることを特徴とする請求項1に記載の空気調和機。   The control unit has a reference time Th for determining whether the heating operation time A exceeds a predetermined time, and when the heating operation time A is shorter than the reference time Th, When the rotational speed B of the outdoor fan is made larger than the rotational speed Bf at the time of the previous heating operation and the heating operation time A is longer than the reference time Th, the rotational speed B of the outdoor fan is set to 2. The air conditioner according to claim 1, wherein the rotation speed is the same as or lower than the rotation speed Bf at the time of the previous heating operation.
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CN108592299A (en) * 2018-05-03 2018-09-28 广东美的暖通设备有限公司 Defrosting control method and system
CN110986319A (en) * 2019-12-11 2020-04-10 苏州汇华智能科技有限公司 Energy-saving control method for air conditioner
CN111442471A (en) * 2020-04-10 2020-07-24 广东美的制冷设备有限公司 Air conditioner, control method and control device thereof, and computer readable storage medium
CN112781278A (en) * 2020-05-14 2021-05-11 青岛海尔新能源电器有限公司 Air source heat pump control method and device and air source heat pump

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Cited By (9)

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Publication number Priority date Publication date Assignee Title
CN104807113A (en) * 2015-04-30 2015-07-29 广东美的暖通设备有限公司 Air conditioner outdoor unit, air conditioner outdoor unit defrosting judging system and air conditioner outdoor unit defrosting judging method
CN104807113B (en) * 2015-04-30 2017-11-10 广东美的暖通设备有限公司 A kind of air conditioner outdoor machine defrosting decision method
CN105318619A (en) * 2015-10-23 2016-02-10 珠海格力电器股份有限公司 Method and device for controlling defrosting of air conditioner
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CN110986319A (en) * 2019-12-11 2020-04-10 苏州汇华智能科技有限公司 Energy-saving control method for air conditioner
CN111442471A (en) * 2020-04-10 2020-07-24 广东美的制冷设备有限公司 Air conditioner, control method and control device thereof, and computer readable storage medium
CN112781278A (en) * 2020-05-14 2021-05-11 青岛海尔新能源电器有限公司 Air source heat pump control method and device and air source heat pump
CN112781278B (en) * 2020-05-14 2022-06-17 青岛海尔新能源电器有限公司 Air source heat pump control method and device and air source heat pump

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