Air conditioner
The air conditioner addresses condensation issues by humidifying air closer to the upper outlet, ensuring minimal condensation on the floor surface by directing more air through the upper outlet.
Patent Information
- Application Number
- JP2024010131
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2024-01-26
- Publication Date
- 2025-08-07
AI Technical Summary
Condensation occurs on the floor surface of a floor-standing air conditioner when high-humidity air is blown out from the lower outlet and the floor surface is at a low temperature.
A floor-standing air conditioner with a housing having a flow path, a fan, and a humidifier that humidifies air in a region closer to the upper outlet than the lower outlet, reducing the likelihood of condensation on the floor surface.
Suppresses the occurrence of condensation on the floor surface by ensuring more humidified air is blown out through the upper outlet, thereby minimizing contact with the cooler floor surface.
Smart Images

Figure 2025115590000001_ABST
Abstract
Description
[Technical Field]
[0001] The present disclosure relates to an air conditioner. [Background technology]
[0002] Conventionally, there has been known an air conditioner that is installed on the floor of a room and used, as described in Patent Document 1. The air conditioner described in Patent Document 1 has an upper outlet that blows air toward the ceiling of the room, and a lower outlet that blows air along the floor. [Prior art documents] [Patent documents]
[0003] [Patent Document 1] Japanese Patent Application Laid-Open No. 2015-94512 Summary of the Invention [Problem to be solved by the invention]
[0004] In the case of the air conditioner described in Patent Document 1, when high-humidity air is blown out from the lower outlet and the floor surface is at a low temperature, condensation may occur on the floor surface. That is, the water vapor contained in the air blown out from the lower outlet may be cooled by the floor surface and condense.
[0005] Therefore, an object of the present disclosure is to suppress the occurrence of condensation on the floor surface in a floor-standing air conditioner equipped with a lower outlet. [Means for solving the problem]
[0006] In order to solve the above-mentioned problems, according to one aspect of the present invention, A floor-standing air conditioner capable of performing a humidifying operation, a housing having a flow path including an intake port, an upper outlet provided at an upper portion, and a lower outlet provided at a lower portion; a fan that generates, within the flow path, air flows from the intake port toward each of the upper and lower outlets; a humidifier that humidifies the air in the flow path during the humidifying operation, The air conditioner is provided in which the humidifier humidifies air in a region within the flow path where the length of the flow path to the upper outlet is shorter than the length of the flow path to the lower outlet. [Effects of the Invention]
[0007] According to the present disclosure, in a floor-standing air conditioner equipped with a lower outlet, it is possible to suppress the occurrence of condensation on the floor surface. [Brief explanation of the drawings]
[0008] [Figure 1] Schematic diagram of an air conditioner according to a first embodiment of the present disclosure. [Figure 2] Schematic front view of an indoor unit of an air conditioner [Figure 3] Schematic diagram of ventilation equipment in an air conditioner [Figure 4] Schematic diagram of an indoor unit of an air conditioner according to Embodiment 2 [Figure 5] 10 is a schematic front view of an indoor unit of an air conditioner according to a second embodiment. DETAILED DESCRIPTION OF THE INVENTION
[0009] One embodiment of the air conditioner of the present invention is a floor-standing air conditioner capable of performing humidification operation, and comprises a housing having a flow path including an intake port, an upper outlet provided at the top, and a lower outlet provided at the bottom, a fan that generates air flows within the flow path from the intake port toward each of the upper and lower outlets, and a humidifier that humidifies the air within the flow path during humidification operation, and the humidifier humidifies the air in a region within the flow path where the flow path length to the upper outlet is shorter than the flow path length to the lower outlet.
[0010] According to this aspect, in a floor-standing air conditioner equipped with a lower outlet, it is possible to suppress the occurrence of condensation on the floor surface.
[0011] For example, the humidifier may humidify the air in an upstream region of the flow path relative to the fan.
[0012] For example, the fan may be an axial fan disposed between the upper outlet and the lower outlet as viewed in the front-rear direction of the housing and rotates about a rotation center line extending in the front-rear direction. In this case, the humidifier may humidify air in an upper region located above the rotation center line in the flow path as viewed in the front-rear direction.
[0013] For example, the humidifier may humidify air in a region of the upper region upstream in the rotation direction of the fan.
[0014] For example, the humidifier may humidify air in a downstream region of the flow path relative to the fan.
[0015] For example, the fan may be an axial fan disposed between the upper outlet and the lower outlet as viewed in the front-rear direction of the housing and rotates about a rotation center line extending in the front-rear direction. In this case, the humidifier may humidify air in an upper region located above the rotation center line in the flow path as viewed in the front-rear direction.
[0016] For example, the humidifier may humidify the air in the flow path by humidifying outdoor air and supplying the humidified air to the flow path of the housing.
[0017] For example, the air conditioner may further include a heating device that heats the air in the flow path in an upstream region of the flow path relative to the fan.
[0018] Hereinafter, embodiments of the present disclosure will be described with reference to the drawings.
[0019] (Embodiment 1) Fig. 1 is a schematic diagram of an air conditioner according to a first embodiment of the present disclosure, and Fig. 2 is a schematic front view of an indoor unit of the air conditioner.
[0020] 1 and 2, an air conditioner 10 according to the first embodiment has an indoor unit 20 arranged in a room Rin to be air-conditioned, and an outdoor unit 30 arranged in an outdoor Rout. Note that the XYZ Cartesian coordinate system shown in the figures is intended to facilitate understanding of the embodiments of the present disclosure and does not limit the embodiments of the present disclosure. The X-axis and Y-axis directions indicate the horizontal direction, and the Z-axis direction indicates the vertical direction.
[0021] The indoor unit 20 is provided with an indoor heat exchanger 22 that exchanges heat with the indoor air A1, and an indoor fan 24 that draws the indoor air A1 into the indoor unit 20 and blows the indoor air A1 into the room Rin after heat exchange with the indoor heat exchanger 22.
[0022] The outdoor unit 30 is provided with an outdoor heat exchanger 32 that exchanges heat with outdoor air A2, and an outdoor fan 34 that draws the outdoor air A2 into the outdoor unit 30 and blows the outdoor air A2 out to the outdoor Rout after exchanging heat with the outdoor heat exchanger 32. The outdoor unit 30 is also provided with a compressor 36, an expansion valve 38, and a four-way valve 40 that execute a refrigeration cycle with the indoor heat exchanger 22 and the outdoor heat exchanger 32.
[0023] The indoor heat exchanger 22, the outdoor heat exchanger 32, the compressor 36, the expansion valve 38, and the four-way valve 40 are each connected by a refrigerant pipe through which a refrigerant flows. In cooling operation and dehumidification operation (weak cooling operation), the air conditioner 10 executes a refrigeration cycle in which the refrigerant flows from the compressor 36 through the four-way valve 40, the outdoor heat exchanger 32, the expansion valve 38, and the indoor heat exchanger 22 in that order, before returning to the compressor 36. In heating operation, the air conditioner 10 executes a refrigeration cycle in which the refrigerant flows from the compressor 36 through the four-way valve 40, the indoor heat exchanger 22, the expansion valve 38, and the outdoor heat exchanger 32 in that order, before returning to the compressor 36.
[0024] In addition to air conditioning operation using a refrigeration cycle, the air conditioner 10 also performs air conditioning operation in which outdoor air A2 is supplied to the room Rin and air conditioning operation in which indoor air A1 is exhausted to the outdoor Rout. To achieve this, the air conditioner 10 has a ventilation device 50. In the case of the first embodiment, the ventilation device 50 is provided in the outdoor unit 30.
[0025] FIG. 3 is a schematic diagram of a ventilation system.
[0026] As shown in FIG. 3, the ventilation device 50 includes an absorbent material 52 therein through which the outdoor air A2 passes.
[0027] The absorbent material 52 is a member through which air can pass and which collects moisture from the air passing through it or adds moisture to the air passing through it. In this embodiment, the absorbent material 52 is disk-shaped and rotates around a rotation center line C1 that passes through the center of the absorbent material 52. The absorbent material 52 is rotationally driven by a motor 54.
[0028] The absorbent 52 is made of a polymeric adsorbent, such as cross-linked sodium polyacrylate, that adsorbs moisture from the air. Compared to adsorbents such as silica gel and zeolite, polymeric adsorbents absorb a larger amount of moisture per unit volume, can desorb moisture at low heating temperatures, and can retain moisture for a long period of time.
[0029] Inside the ventilation device 50, there are provided a first flow path P1 and a second flow path P2 through which the outdoor air A2 flows, each passing through an absorbent material 52. That is, the absorbent material 52 is arranged so that a portion thereof is located in the first flow path P1 and another portion thereof is located in the second flow path P2. When the absorbent material 52 is rotated by the motor 54, the portion of the absorbent material 53 located in one of the first and second flow paths P1, P2 moves to the other. Furthermore, inside the ventilation device 50, there is provided a third flow path P3, both ends of which are connected to different portions of the first flow path P1.
[0030] The first flow path P1 is a flow path through which outdoor air A2 flows toward the indoor unit 20. The outdoor air A2 flowing through the first flow path P1 is supplied into the indoor unit 20 via a ventilation duct 56.
[0031] A heater 58 that heats the outside air A2 is provided in a portion of the first flow path P1 upstream of the absorbent material 52. In this specification, the terms "upstream" and "downstream" are used with respect to the flow of air.
[0032] The heater 58 is preferably a PTC (Positive Temperature Coefficient) heater, which increases electrical resistance as current flows and the temperature rises, thereby preventing excessive increases in heating temperature. In the case of heaters using nichrome wire or carbon fiber, the heating temperature (surface temperature) continues to rise as current continues to flow, so the temperature must be monitored. In the case of a PTC heater, the heater itself adjusts the heating temperature within a certain temperature range, eliminating the need to monitor the heating temperature.
[0033] The first flow path P1 is provided with a fan 60 that generates a flow of outdoor air A2 toward the indoor unit 20. In the present embodiment, the fan 60 is disposed downstream of the absorbent material 52. When the fan 60 is operated, the outdoor air A2 flows into the first flow path P1 from the outdoor Rout and passes through the absorbent material 52.
[0034] Furthermore, the first flow path P1 is provided with a damper device 62 for distributing the outdoor air A2 flowing through the first flow path P1 to the indoor Rin (i.e., the indoor unit 20) or the outdoor Rout. That is, the first flow path P1 branches toward the indoor Rin and the outdoor Rout, and the damper device 62 is disposed at the branching point. The damper device 62 is disposed downstream of the fan 60. The outdoor air A2 distributed to the indoor unit 20 by the damper device 62 enters the indoor unit 20 via the ventilation duct 56 and is blown out into the indoor Rin by the indoor fan 24.
[0035] Furthermore, a damper device 64 different from the damper device 62 is provided in the first flow path P1. In the present embodiment, the damper device 64 is disposed between the absorber 52 and the fan 60. As will be described in detail later, the damper device 64 is provided for exhaust ventilation, and selectively opens and closes the first flow path P1.
[0036] Furthermore, a third flow path P3 is connected to the first flow path P1. The third flow path P3, which will be described in detail later, is a flow path for exhaust ventilation, and connects a portion of the first flow path P1 between the fan 60 and the damper device 64 with a portion of the first flow path P1 downstream of the damper device 62. A damper device 66 is provided in the third flow path P3. The damper device 66, which will be described in detail later, is provided for exhaust ventilation and selectively opens and closes the third flow path P3.
[0037] The second flow path P2 is a flow path through which the outdoor air A2 flows. Unlike the outdoor air A2 flowing through the first flow path P1, the outdoor air A2 flowing through the second flow path P2 does not head toward the indoor unit 20. In other words, the second flow path P2 is a flow path independent from the first flow path P1. The outdoor air A2 flowing through the second flow path P2 passes through the absorbent material 52 and then flows out to the outdoor Rout.
[0038] A fan 68 that generates a flow of outdoor air A2 is provided in the second flow path P2. In the present embodiment, the fan 68 is disposed downstream of the absorbent material 52. When the fan 68 is operated, the outdoor air A2 flows from the outdoor Rout into the second flow path P2, passes through the absorbent material 52, and then flows out to the outdoor Rout.
[0039] The ventilation device 50 selectively performs ventilation operation, humidification operation, and dehumidification operation by selectively using the absorbent material 52 (motor 54), heater 58, fan 60, damper devices 62, 64, 66, and fan 68. The ventilation operation includes an air supply ventilation operation and an exhaust ventilation operation.
[0040] The supply ventilation operation is an air conditioning operation in which the outdoor air A2 is supplied to the room Rin (i.e., the indoor unit 20). During the supply ventilation operation, the motor 54 continues to rotate the absorbent material 52. The heater 58 is in the OFF state and does not heat the outdoor air A2. The fan 60 is in the ON state, thereby causing the outdoor air A2 to flow through the first flow path P1. The damper device 62 distributes the outdoor air A2 in the first flow path P1 to the indoor unit 20. The damper device 64 is in the open state, thereby causing the outdoor air A2 to flow from the absorbent material 52 toward the fan 60. The damper device 66 is in the closed state, thereby preventing the outdoor air A2 from flowing through the third flow path P3. The fan 68 is in the OFF state, thereby preventing the flow of the outdoor air A2 through the second flow path P2.
[0041] According to this supply ventilation operation, the outdoor air A2 flows into the first flow path P1 and passes through the absorbent material 52 without being heated by the heater 58. The outdoor air A2 that has passed through the absorbent material 52 is distributed to the indoor unit 20 by the damper device 62. The outdoor air A2 that has passed through the damper device 62 and reached the indoor unit 20 via the ventilation duct 56 is blown out into the room Rin by the indoor fan 24. According to this supply ventilation operation, the outdoor air A2 is supplied as is to the room Rin, and the room Rin is supply ventilated.
[0042] The exhaust ventilation operation is an air conditioning operation in which the room air A1 is exhausted to the outdoor Rout. During the exhaust ventilation operation, the motor 54 is in the OFF state, and the absorbent material 52 is not rotating. The heater 58 is in the OFF state. The fan 60 is in the ON state, and the room air A1 passes through the ventilation duct 56 and the third flow path P3 and flows toward the fan 60. The damper device 62 distributes the room air A1 in the first flow path P1 to the outdoor Rout. The damper device 64 is in the closed state, and therefore the room air A1 does not flow toward the absorbent material 52. The damper device 66 is in the open state, and therefore the room air A1 flows toward the fan 60 via the third flow path P3. The fan 68 is in the OFF state, and therefore no flow of the outdoor air A2 is generated in the second flow path P2.
[0043] In this exhaust ventilation operation, when the fan 60 is in the ON state, the room air A1 flows into the portion of the first flow path P1 between the absorbent material 52 and the fan 60 via the ventilation conduit 56 and the third flow path P3. At this time, the damper device 64 is in the closed state, so the room air A1 does not flow toward the absorbent material 52. The room air A1 that has passed through the fan 60 is diverted to the outdoor air Rout by the damper device 62 and discharged to the outdoor air Rout. As a result, the room air Rin is exhausted and ventilated.
[0044] In addition, the third flow path P3 allows the fan 60 to rotate in the same direction during exhaust ventilation operation as during supply ventilation operation. As a result, a sirocco fan can be used as the fan 60.
[0045] The humidification operation is an air conditioning operation that humidifies the outdoor air A2 and supplies the humidified outdoor air A2 to the room Rin (i.e., the indoor unit 20). During the humidification operation, the motor 54 continues to rotate the absorbent material 52. The heater 58 is in an ON state, heating the outdoor air A2. The fan 60 is in an ON state, causing the outdoor air A2 to flow through the first flow path P1. The damper device 62 distributes the outdoor air A2 in the first flow path P1 to the indoor unit 20. The damper device 64 is in an open state, causing the outdoor air A2 to flow from the absorbent material 52 toward the fan 60. The damper device 66 is in a closed state, causing the outdoor air A2 to not flow through the third flow path P3. The fan 68 is in an ON state, causing the outdoor air A2 to flow through the second flow path P2.
[0046] According to this humidification operation, the outdoor air A2 flows into the first flow path P1, is heated by the heater 58, and passes through the absorbent 52. At this time, the heated outdoor air A2 can remove a larger amount of moisture from the absorbent 52 than when the outdoor air A2 is not heated. As a result, the outdoor air A2 carries a larger amount of moisture. The outdoor air A2 that has passed through the absorbent 52 and carried a larger amount of moisture is distributed to the indoor unit 20 by the damper device 62. The outdoor air A2 that has passed through the damper device 62 and reached the indoor unit 20 via the ventilation duct 56 is blown into the room Rin by the indoor fan 24. According to this humidification operation, the outdoor air A2 carrying a larger amount of moisture is supplied to the room Rin, and the room Rin, i.e., the room air A1, is humidified.
[0047] As moisture is removed by the heated outdoor air A2, the water retention capacity of the absorbent 52 decreases, i.e., the absorbent 52 dries. When the absorbent 52 dries, the outdoor air A2 flowing through the first flow path P1 cannot remove moisture from the absorbent 52. To address this, the absorbent 52 removes moisture from the outdoor air A2 flowing through the second flow path P2. This keeps the water retention capacity of the absorbent 52 approximately constant, allowing the humidification operation to continue.
[0048] The dehumidifying operation is an air conditioning operation in which the outdoor air A2 is dehumidified and the dehumidified outdoor air A2 is supplied to the room Rin (that is, the indoor unit 20). In the dehumidifying operation, the adsorption operation and the regeneration operation are performed alternately.
[0049] The adsorption operation is an operation in which moisture contained in the outdoor air A2 is adsorbed onto the absorbent material 52, thereby dehumidifying the outdoor air A2. During the adsorption operation, the motor 54 continues to rotate the absorbent material 52. The heater 58 is in the OFF state, and does not heat the outdoor air A2. The fan 60 is in the ON state, and thereby the outdoor air A2 flows through the first flow path P1. The damper device 62 distributes the outdoor air A2 in the first flow path P1 to the indoor unit 20. The damper device 64 is in the open state, and thereby the outdoor air A2 flows from the absorbent material 52 toward the fan 60. The damper device 66 is in the closed state, and thereby the outdoor air A2 does not flow through the third flow path P3. The fan 68 is in the OFF state, and thereby no flow of the outdoor air A2 occurs through the second flow path P2.
[0050] According to this adsorption operation, the outdoor air A2 flows into the first flow path P1 and passes through the absorbent 52 without being heated by the heater 58. At this time, the moisture carried in the outdoor air A2 is adsorbed by the absorbent 52. This reduces the amount of moisture carried by the outdoor air A2, i.e., the outdoor air A2 is dried. The outdoor air A2 that has passed through the absorbent 52 and is then distributed to the indoor unit 20 by the damper device 62. The outdoor air A2 that has passed through the damper device 62 and reached the indoor unit 20 via the ventilation duct 56 is then blown into the room Rin by the indoor fan 24. According to this adsorption operation, the dried outdoor air A2 is supplied to the room Rin, and the room Rin is dehumidified.
[0051] As the adsorption operation continues, the amount of water held by the absorbent 52 continues to increase, resulting in a decrease in the absorbent 52's ability to adsorb the moisture contained in the outdoor air A2. In order to recover the adsorption ability, a regeneration operation is performed to regenerate the absorbent 52.
[0052] During regeneration operation, the motor 54 continues to rotate the absorbent material 52. The heater 58 is ON, heating the outdoor air A2. The fan 60 is ON, causing the outdoor air A2 to flow through the first flow path P1. The damper device 62 distributes the outdoor air A2 in the first flow path P1 to the outdoor Rout rather than to the indoor unit 20. The damper device 64 is open, causing the outdoor air A2 to flow from the absorbent material 52 toward the fan 60. The damper device 66 is closed, preventing the outdoor air A2 from flowing through the third flow path P3. The fan 68 is OFF, causing no flow of the outdoor air A2 through the second flow path P2.
[0053] According to this regeneration operation, the outdoor air A2 flows into the first flow path P1, is heated by the heater 58, and passes through the absorbent 52. At this time, the heated outdoor air A2 removes a large amount of moisture from the absorbent 52. As a result, the outdoor air A2 carries a large amount of moisture. At the same time, the water retention capacity of the absorbent 52 decreases, that is, the absorbent 52 dries and its adsorption capacity is regenerated. The outdoor air A2 that has passed through the absorbent 52 and carries a large amount of moisture is diverted by the damper device 62 to the outdoor Rout and discharged to the outdoor Rout. As a result, during the regeneration operation in the dehumidification operation, the outdoor air A2 carrying a large amount of moisture due to the regeneration of the absorbent 52 is not supplied to the indoor Rin.
[0054] By alternately performing the adsorption operation and the regeneration operation in this manner, the adsorption capacity of the absorbent material 52 is maintained, and the dehumidification operation can be carried out continuously.
[0055] The air conditioning operations (cooling operation, dehumidifying operation (weak cooling operation), heating operation) using the refrigeration cycle and the air conditioning operations (ventilation operation (supply ventilation operation, exhaust ventilation operation), humidifying operation, dehumidifying operation) using the ventilation device 50 described above can be performed separately or simultaneously. For example, by simultaneously performing the dehumidifying operation using the refrigeration cycle and the dehumidifying operation using the ventilation device 50, it is possible to dehumidify the room Rin while maintaining a constant room temperature.
[0056] Furthermore, in the intake ventilation operation, humidification operation, and dehumidification operation, the indoor fan 24 rotates to blow the outdoor air A2 into the room Rin. This rotation of the indoor fan 24 draws the room air A1 into the indoor unit 20. Therefore, the outdoor air A2 is mixed with the room air A1 and blown out into the room Rin.
[0057] The air conditioning operation to be performed by the air conditioner 10 is selected by the user. For example, when the user performs a selection operation on the remote controller 70 shown in Fig. 1, the air conditioner 10 performs the air conditioning operation corresponding to that operation. The air conditioner 10 also notifies the user via the remote controller 70 of information related to the air conditioning operation that is currently being performed.
[0058] Up to this point, we have provided an overview of the configuration and operation of the air conditioner 10 according to Embodiment 1. From here on, further features of the air conditioner 10 according to Embodiment 1 will be described.
[0059] 1 and 2, the indoor unit 20 of the air conditioner 10 according to Embodiment 1 is placed on the floor surface FS of the room Rin. In other words, the air conditioner 10 is a floor-standing type.
[0060] As shown in FIGS. 1 and 2 , the indoor unit 20 has a housing 72 that houses the indoor heat exchanger 22 and the indoor fan 24. The housing 72 is provided with a plurality of outlets 72a, 72b for blowing indoor air A1 that has passed through the indoor heat exchanger 22 and / or outdoor air A2 supplied from the ventilation device 50 into the room Rin. The housing 72 is also provided with a plurality of inlet ports 72c for taking the indoor air A1 into the housing 72. That is, a flow path including the outlet ports 72a, 72b and the inlet ports 72c is provided inside the housing 72, through which air flows. In the first embodiment, the flow path is divided into an upstream flow path P4 and a downstream flow path P5, with the indoor heat exchanger 22 sandwiched between them. In the first embodiment, outdoor air A2 from the ventilation device 50 is supplied to the upstream flow path P4.
[0061] Specifically, the air outlet 72a is provided in the upper part of the housing 72. In the first embodiment, this upper air outlet 72a faces diagonally upward, that is, toward the ceiling of the room Rin. Through this upper air outlet 72a, the room air A1 that has passed through the indoor heat exchanger 22 and / or the outdoor air A2 supplied from the ventilation device 50 is blown out from the housing 72 toward the ceiling of the room Rin. In addition, the housing 72 is provided with an upper louver 74 for opening and closing the upper air outlet 72a and for adjusting the airflow direction.
[0062] The air outlet 72b is provided at the bottom of the housing 72, i.e., it is provided at a position lower than the upper air outlet 72a and closer to the floor surface FS. The lower air outlet 72b is oriented horizontally, i.e., oriented along the floor surface FS. The lower air outlet 72b blows the indoor air A1 that has passed through the indoor heat exchanger 22 and / or the outdoor air A2 supplied from the ventilation device 50 out of the housing 72 along the floor surface FS. The housing 72 is also provided with a lower louver 76 for opening and closing the lower air outlet 72b and for adjusting the airflow direction.
[0063] 1 and 2, a plurality of intake ports 72c are provided on both side surfaces of the housing 72 of the indoor unit 20 for taking in indoor air A1 into the housing 72. The indoor air A1 is taken in through the plurality of intake ports 72c into an upstream flow path P4 of the housing 72, which is upstream of the indoor heat exchanger 22. In the first embodiment, the indoor fan 24 is disposed in a downstream flow path P5 of the housing 72, which is in a space downstream of the indoor heat exchanger 22, is independent of the upstream flow path P4, and is connected to the upper and lower outlets 72a, 72b. Therefore, when the indoor fan 24 rotates, an air flow from the intake port 72c toward the upper and lower outlets 72a, 72b is generated in the flow path. Specifically, the indoor air A1 flows into the upstream flow path P4 through the intake port 72c. The inflowing indoor air A1 passes through the indoor heat exchanger 22, and then flows out into the room Rin via the downstream flow path P5 and the upper and lower outlets 72a, 72b.
[0064] In the floor-standing air conditioner 10 having the above-described ventilation function, when the above-described humidifying operation is performed, there is a possibility that condensation will occur on the floor surface FS of the room Rin.
[0065] Specifically, during humidification operation, when the humidified outdoor air A2 is blown out from the lower outlet 72b and flows along the floor surface FS, there is a possibility that the outdoor air A2 will be cooled by the low-temperature floor surface FS. If the air blown out from the lower outlet 72b is cooled to a temperature exceeding its dew point temperature, the water vapor contained in the air will condense, resulting in condensation on the floor surface FS.
[0066] In order to suppress the occurrence of such condensation on the floor surface FS, the air conditioner 10 according to this embodiment has the following features.
[0067] 1, and as described above, the outdoor air A2 from the ventilation device 50 is supplied to the upstream flow path P4, which is upstream of the fan 24, in the indoor unit 20. As a result, the indoor air A1 is humidified in the upstream flow path P4.
[0068] In the first embodiment, the fan 24 is an axial fan, and its rotation center line C2 extends in the front-to-rear direction (Y-axis direction) of the housing 72. Furthermore, as shown in Fig. 2, the fan 24 is disposed between an upper air outlet 72a and a lower air outlet 72b that are long in the left-to-right direction (X-axis direction) of the housing 72 and parallel to each other, as viewed in the front-to-rear direction (Y-axis direction).
[0069] Specifically, in the case of the first embodiment, as shown in Fig. 2, the outdoor air A2 is supplied into the indoor unit 20 via a supply port 84a of a supply duct 84 that opens in an area above the rotation center line C2 of the fan 24 in the upstream flow path P4 when viewed in the front-to-rear direction (Y-axis direction). The supply duct 84 is connected to the ventilation duct 56 as shown in Fig. 1. As a result, the indoor air A1 that has passed through the intake port 72c and flowed into the upstream flow path P4 is humidified by the humidified outdoor air A2 that has passed through the ventilation duct 56 and the supply duct 84 and flowed into the upstream flow path P4.
[0070] As shown in FIG. 2, the humidified outdoor air A2 is supplied to an area in the upstream flow path P4 above the rotation center line C2 of the fan 24. That is, the humidified outdoor air A2 is supplied to an area in the upstream flow path P4 that is close to the upper outlet 72a and far from the lower outlet 72b. Therefore, the flow path length from the supply position of the humidified outdoor air A2 (supply port 84a) to the upper outlet 72a is longer than the flow path length from the supply position of the humidified outdoor air A2 to the upper outlet 72a. That is, the flow path resistance of the former flow path is lower than that of the latter flow path. As a result, more of the humidified outdoor air A2 is actually blown out from the upper outlet 72a. In other words, the blowing of the humidified outdoor air A2 from the lower outlet 72b is limited. Therefore, during the humidifying operation, the occurrence of condensation on the floor surface FS, which occurs when the humidified outdoor air A2 is blown out from the lower outlet 72b and flows along the floor surface FS, which has a low temperature, is suppressed.
[0071] As shown in FIG. 2, it is preferable that the position where the outdoor air A2 is supplied (i.e., the supply port 84a of the supply duct 84) is within the area (the area indicated by cross-hatching) upstream of the rotation direction R of the fan 24 in the front-to-back direction (Y-axis direction).
[0072] When the rotation speed of the fan 24 is high, a portion of the humidified outdoor air A2 supplied to an area above the rotation center line C2 of the upstream flow path P4 is drawn toward an area below the rotation center line C2, as viewed in the front-rear direction (Y-axis direction). Then, a portion of the humidified outdoor air A2 is drawn into the fan 24 from the area below and blown out from the lower outlet 72b, which is close to the area below. The higher the rotation speed of the fan 24, the greater the amount of humidified outdoor air A2 blown out from the lower outlet 72b, making it more likely that condensation will form on the floor surface FS. To address this issue, the humidified outdoor air A2 is supplied to an area upstream of the rotation direction R of the fan 24 in the area above the rotation center line C2, as viewed in the front-rear direction (Y-axis direction). This reduces the amount of humidified outdoor air A2 drawn toward the area below the rotation center line C2, thereby reducing the amount of humidified outdoor air A2 blown out from the lower outlet 72b.
[0073] According to the first embodiment as described above, in a floor-standing air conditioner equipped with a lower air outlet, it is possible to suppress the occurrence of condensation on the floor surface.
[0074] (Embodiment 2) This second embodiment is substantially the same as the first embodiment described above, except for the location in the indoor unit to which humidified outdoor air is supplied. Therefore, this difference will be mainly described in this second embodiment.
[0075] Fig. 4 is a schematic diagram of an indoor unit of an air conditioner according to Embodiment 2. Fig. 5 is a schematic front view of the indoor unit of the air conditioner according to Embodiment 2.
[0076] 4, in the indoor unit 120 of the air conditioner according to the second embodiment, the ventilation duct 56 of the ventilation device 50 is connected to a supply port 172d that opens in a flow path P5 downstream of the fan 24. As a result, outdoor air A1 humidified by the ventilation device 50 is supplied to the flow path P5 downstream of the fan 24. As a result, the indoor air A1 is humidified in the downstream flow path P5.
[0077] In the second embodiment, the fan 24 is an axial fan, and its rotation center line C2 extends in the front-to-rear direction (Y-axis direction) of the housing 172. Furthermore, as shown in Fig. 5, the fan 24 is disposed between an upper air outlet 172a and a lower air outlet 172b that are long and parallel to each other in the left-to-right direction (X-axis direction) of the housing 172 when viewed in the front-to-rear direction (Y-axis direction).
[0078] 5, in the case of the first embodiment, the outdoor air A2 is supplied into the indoor unit 120 via the supply port 172d that opens in an area above the rotation center line C2 of the fan 24 in the downstream flow path P5 when viewed in the front-to-rear direction (Y-axis direction). As a result, the indoor air A1 that has passed through the intake port 172c and the indoor heat exchanger 22 and flowed into the downstream flow path P5 is humidified by the humidified outdoor air A2 that has passed through the ventilation duct 56 and flowed into the downstream flow path P5.
[0079] As shown in FIG. 5 , the humidified outdoor air A2 is supplied to an area (the area indicated by cross-hatching) in the downstream flow path P5 above the rotation center line C2 of the fan 24 when viewed in the front-to-rear direction (Y-axis direction). That is, the humidified outdoor air A2 is supplied to an area in the downstream flow path P5 that is close to the upper outlet 172a and far from the lower outlet 172b. Therefore, the flow path length from the supply position of the humidified outdoor air A2 (supply port 172d) to the upper outlet 172a is longer than the flow path length from the supply position of the humidified outdoor air A2 to the upper outlet 172a. That is, the flow path resistance of the former flow path is lower than that of the latter flow path. As a result, more of the humidified outdoor air A2 is actually blown out from the upper outlet 172a. In other words, the blowing of the humidified outdoor air A2 from the lower outlet 172b is limited. Therefore, during the humidifying operation, the occurrence of condensation on the floor surface FS, which occurs when the humidified outdoor air A2 is blown out from the lower outlet 172b and flows along the floor surface FS, which has a low temperature, is suppressed.
[0080] The air flows faster in the downstream region relative to the fan 24 than in the upstream region. Therefore, when viewed in the front-to-rear direction (Y-axis direction), no matter where the humidified outdoor air A2 is supplied in the region (region indicated by cross-hatching) above the rotation center line C2 of the fan 24 in the downstream flow path P5, most of the outdoor air A2 flows toward the upper outlet 172a.
[0081] Similar to the above-described first embodiment, the second embodiment can also suppress the occurrence of condensation on the floor surface in a floor-standing air conditioner equipped with a lower air outlet.
[0082] Although the present invention has been described above with reference to the above-mentioned embodiments, the present disclosure is not limited to the above-mentioned embodiments.
[0083] For example, in the above-described first and second embodiments, the fan 24 installed in the indoor unit 20, 120 is a so-called axial fan. However, the embodiments of the present disclosure are not limited to this. The fan is not limited to just one fan, as long as it can generate airflows in the flow path from the air inlet toward the upper and lower outlets. For example, a first crossflow fan may be provided near the upper outlet, and a second crossflow fan may be provided near the lower outlet.
[0084] Furthermore, in the case of the above-described first embodiment, the air conditioner 10 uses a refrigeration cycle, i.e., has an indoor unit 20 equipped with an indoor heat exchanger 22 and an outdoor unit 30 equipped with an outdoor heat exchanger 32. However, the embodiments of the present disclosure are not limited to this. The air conditioner according to the embodiments of the present disclosure may be an air conditioner that does not use a refrigeration cycle, i.e., does not have an outdoor unit. In this case, the air conditioner may have a temperature control device such as a heater that adjusts the temperature of the air, instead of an indoor heat exchanger.
[0085] Furthermore, in the case of the above-described first embodiment, the ventilation device 50 performs a humidifying operation to function as a humidifier that humidifies the room air Rin. That is, the ventilation device 50 humidifies the outdoor air A2 and supplies it to the flow path within the housing 72, thereby humidifying the room air A1 in the flow path. However, the embodiments of the present disclosure are not limited to this. In order to humidify the air in the flow path within the housing, a humidifier such as an ultrasonic or evaporative humidifier may be provided within the housing instead of the ventilation device 50.
[0086] In other words, the air conditioner according to an embodiment of the present disclosure is, in a broad sense, a floor-standing air conditioner capable of performing humidification operation, and has a housing with a flow path including an intake port, an upper outlet provided at the top, and a lower outlet provided at the bottom, a fan that generates air flows within the flow path from the intake port toward each of the upper and lower outlets, and a humidifier that humidifies the air within the flow path during humidification operation, wherein the humidifier humidifies the air in a region within the flow path where the flow path length to the upper outlet is shorter than the flow path length to the lower outlet. [Industrial Applicability]
[0087] The present disclosure is applicable to any floor-standing air conditioner that has a lower air outlet. [Explanation of symbols]
[0088] 10 Air conditioner 24 Fans 50 Humidifier (ventilator) 72 Cabinet 72a Upper air outlet 72b Lower air outlet 72c intake
Claims
1. A floor-standing air conditioner capable of performing a humidifying operation, a housing having a flow path including an intake port, an upper outlet provided at an upper portion, and a lower outlet provided at a lower portion; a fan that generates, within the flow path, air flows from the intake port toward each of the upper and lower outlets; a humidifier that humidifies the air in the flow path during the humidifying operation, The humidifier humidifies air in a region within the flow path where the length of the flow path to the upper outlet is shorter than the length of the flow path to the lower outlet.
2. The air conditioner according to claim 1 , wherein the humidifier humidifies the air in an upstream region of the flow path relative to the fan.
3. the fan is an axial fan, is disposed between the upper outlet and the lower outlet as viewed in the front-rear direction of the housing, and rotates about a rotation center line extending in the front-rear direction, The air conditioner according to claim 2 , wherein the humidifier humidifies the air in an upper region located above the rotation center line in the flow path when viewed in the front-rear direction.
4. The air conditioner according to claim 3 , wherein the humidifier humidifies air in an area of the upper area that is upstream in the direction of rotation of the fan.
5. The air conditioner according to claim 1 , wherein the humidifier humidifies the air in a downstream region of the flow path relative to the fan.
6. the fan is an axial fan, is disposed between the upper outlet and the lower outlet as viewed in the front-rear direction of the housing, and rotates about a rotation center line extending in the front-rear direction, The air conditioner according to claim 5 , wherein the humidifier humidifies the air in an upper region located above the rotation center line in the flow path when viewed in the front-rear direction.
7. The air conditioner according to claim 1 , wherein the humidifier humidifies the air in the flow path by humidifying outdoor air and supplying the humidified air to the flow path of the housing.
8. The air conditioner according to claim 1 , further comprising a heating device that heats the air in the flow path in an upstream region of the flow path relative to the fan.
Citation Information
Patent Citations
Indoor unit for floor-installed air conditioner
JP2015094512A