Drain socket and indoor unit
The drain socket design with a support plate and gradual diameter transition addresses backflow and flow rate limitations, ensuring efficient drain water discharge by reducing resistance and maintaining consistent cross-sectional area.
Patent Information
- Application Number
- JP2021178639
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2021-11-01
- Publication Date
- 2025-10-20
- Estimated Expiration
- 2041-11-01
AI Technical Summary
Conventional drain sockets in air conditioners face challenges in suppressing backflow of drain water while maintaining the discharge flow rate, which is limited by the inner diameter and manufacturing constraints of the cylindrical portions.
A drain socket design with a support plate and discharge pipes having a gradual transition from a small to a large diameter, featuring a flat portion with a constant cross-sectional area and a wall to prevent backflow, ensuring smooth discharge and flow rate.
The design effectively suppresses backflow and maintains the discharge flow rate by reducing resistance and ensuring consistent cross-sectional area, enhancing the efficiency of drain water discharge.
Smart Images

Figure 0007756322000001 
Figure 0007756322000002 
Figure 0007756322000003
Abstract
Description
[Technical Field]
[0001] The present disclosure relates to a drain socket for discharging drain water in an indoor unit of an air conditioner. [Background technology]
[0002] Patent Document 1 discloses an air conditioner in which an internal hose and an external hose for discharging drain water generated in a heat exchanger are connected by a drain socket. The drain socket is composed of a small cylindrical part on the internal side and a large cylindrical part on the external side, and the central axis of the small cylindrical part is offset above the central axis of the large cylindrical part when the small cylindrical part is in communication with the large cylindrical part. [Prior art documents] [Patent documents]
[0003] [Patent Document 1] Patent No. 6539899 Summary of the Invention [Problem to be solved by the invention]
[0004] The present disclosure provides a drain socket that can suppress backflow of drain water and ensure the discharge flow rate of a drain pump. [Means for solving the problem]
[0005] The drain socket in the present disclosure is a drain socket for discharging drain water from an indoor unit that includes a housing, a blower, an indoor heat exchanger that surrounds the blower, and a drain pan that covers the indoor heat exchanger from below, and the drain socket includes a support plate attached to the housing, an inside discharge pipe that is located on the inside side of the support plate and connected to a drain pump, and an outside discharge pipe that is located on the outside of the support plate, and the inside discharge pipe has a large diameter portion on the support plate side and a drain pan that is connected to the drain pump the large diameter portion and the small diameter portion are connected via a flat portion, the flat portion is connected to an upper edge portion of the large diameter portion, a wall portion is formed below the connection point of the large diameter portion with the flat portion, the cross-sectional shape of the connection portion between the flat portion and the small diameter portion is formed in a substantially circular shape, the cross-sectional shape of the connection portion between the flat portion and the large diameter portion is formed in a flattened shape that is substantially semicircular, and the cross-sectional area of the connection portion between the flat portion and the small diameter portion and the cross-sectional area of the connection portion between the flat portion and the large diameter portion are substantially the same The flat portion is formed so as to gradually change from a circular cross-sectional shape at the small diameter portion to a flattened cross-sectional shape that is approximately semicircular on the way from the small diameter portion to the large diameter portion, and the cross-sectional area of the flat portion from the small diameter portion to the large diameter portion is always approximately the same. [Effects of the Invention]
[0006] According to the present disclosure, it is possible to suppress backflow of drain water and ensure the discharge flow rate of the drain pump. [Brief explanation of the drawings]
[0007] [Figure 1] FIG. 1 is a perspective view showing an indoor unit according to a first embodiment. [Figure 2] FIG. 3 is a cross-sectional view showing the internal structure of the indoor unit according to the first embodiment. [Figure 3] FIG. 1 is a plan view of an indoor unit according to a first embodiment, viewed from below; [Figure 4] FIG. 10 is a perspective view showing a drain socket attached to a housing of the indoor unit according to the first embodiment. [Figure 5] FIG. 1 is a perspective view showing a drain socket in a state where a housing of an indoor unit is removed in the first embodiment. [Figure 6] FIG. 1 is a perspective view of the drain socket according to the first embodiment, viewed from below; [Figure 7]FIG. 1 is a side view of a drain socket according to the first embodiment; [Figure 8] FIG. 1 is a perspective view of a drain socket according to a first embodiment, seen from above; [Figure 9] FIG. 1 is a front view of the drain socket according to the first embodiment, seen from the large diameter portion side; [Figure 10] FIG. 1 is a front view of the drain socket according to the first embodiment, seen from the small diameter portion side. DETAILED DESCRIPTION OF THE INVENTION
[0008] (Findings that formed the basis of this disclosure) At the time the inventors came up with the idea for the present disclosure, there was a technology in which an internal hose and an external hose for discharging drain water generated in a heat exchanger were connected by a drain socket, and the drain socket was composed of a small cylindrical portion on the internal side and a large cylindrical portion on the external side, and the central axis of the small cylindrical portion was biased above the central axis of the large cylindrical portion when they were connected, thereby reducing the amount of drain water that returned when the drain pump was stopped.
[0009] However, in conventional technology, if the amount of return water is to be further reduced, it is necessary to reduce the inner diameter of the small cylindrical portion or to shift the small cylindrical portion further upward to make it communicate. However, the inventors discovered a problem in that this would limit the flow rate, resulting in a decrease in the pump discharge volume, and there are also constraints due to the mold structure when manufacturing the drain socket. In order to solve this problem, the inventors have come up with the subject matter of the present disclosure. The present disclosure provides a drain socket that can suppress backflow of drain water and ensure the discharge flow rate of a drain pump.
[0010] Hereinafter, embodiments will be described in detail with reference to the drawings. However, unnecessary detailed description may be omitted. For example, detailed description of well-known matters or redundant description of substantially the same configuration may be omitted. This is to avoid unnecessary redundancy in the following description and to facilitate understanding by those skilled in the art. The accompanying drawings and the following description are provided to enable those skilled in the art to fully understand the present disclosure, and are not intended to limit the subject matter described in the claims.
[0011] (Embodiment 1) Hereinafter, the first embodiment will be described with reference to the drawings.
[0012] [1-1-1 Indoor unit configuration] An embodiment of the present invention will now be described with reference to the drawings. Fig. 1 is a perspective view showing a ceiling-embedded indoor unit 10 of an air conditioning apparatus according to an embodiment of the present invention. Fig. 2 is a cross-sectional view showing the internal structure of the indoor unit 10. Fig. 3 is a plan view of the indoor unit 10 as seen from below. In the following description, the terms "upper", "lower", "inside" and "outside" are used with reference to the indoor unit 10 installed on the ceiling. The space into which conditioned air is blown out is referred to as the conditioned room.
[0013] The indoor unit 10 includes an indoor unit body 14 and a decorative panel 30 that covers a lower opening of the indoor unit body 14. The indoor unit body 14 has a generally box-shaped housing 15 with the bottom surface thereof open on almost the entire surface. Inside the housing 15, the indoor unit body 14 has a heat insulating member 16 made of polystyrene foam, an indoor heat exchanger 17, a blower 18, a drain pan 19 that receives drain water from the indoor heat exchanger 17, and a bell mouth 20 that rectifies the air drawn into the blower 18.
[0014] The decorative panel 30 is formed in a substantially rectangular plate shape in a plan view so as to cover the opening on the bottom surface of the indoor unit body 14 . A panel-side intake port 31 that communicates with the bell mouth 20 is formed in the center of the decorative panel 30. An intake grille 32 that covers the panel-side intake port 31 is removably attached to the decorative panel 30. A filter (not shown) is provided on the indoor unit body 14 side of the intake grille 32 to remove dust and other particles from the air.
[0015] Panel-side outlets 34 that send conditioned air to the conditioned room are formed at positions outside the panel-side intake ports 31 of the decorative panel 30 and along each side of the outer periphery of the decorative panel 30. That is, the panel-side outlets 34 are provided along each side of the decorative panel 30, which is substantially rectangular in plan view, and air is blown out from the panel-side outlets 34 in four directions. Each panel-side air outlet 34 is provided with a flap 35 (FIG. 1) that can adjust the air outlet direction.
[0016] As shown in FIGS. 2 and 3, heat insulating members 16 are provided on the inner surfaces of side plates 15a and top plate 15b of housing 15, and prevent condensation from forming in housing 15.
[0017] The blower 18 is configured to include a fan motor 23 and a centrifugal fan 24. The fan motor 23 has a rotating shaft 23a extending downward, and the centrifugal fan 24 is fixed to the rotating shaft 23a. The fan motor 23 is disposed approximately in the center of the indoor unit 10 in a plan view, and is fixed to the top plate 15b of the housing 15. Centrifugal fan 24 includes a disk-shaped main plate 24a fixed to rotary shaft 23a, an annular shroud 24b arranged below main plate 24a and substantially coaxial with main plate 24a, and a plurality of blades 24c connecting shroud 24b and main plate 24a. A plurality of blades 24c are arranged at intervals from one another in the circumferential direction of main plate 24a.
[0018] The indoor heat exchanger 17 is formed by bending a plate-like heat exchanger into a substantially rectangular shape in a plan view so as to surround substantially the entire blower 18 from the side. The indoor heat exchanger 17 functions as a refrigerant evaporator during cooling operation and as a refrigerant evaporator during heating operation. The indoor heat exchanger 17 is configured to exchange heat between the refrigerant and the indoor air drawn into the indoor unit body 14, thereby cooling the air in the air-conditioned room during cooling operation and heating the air in the room during heating operation.
[0019] Drain pan 19 is disposed below indoor heat exchanger 17 so as to be able to receive drain water generated in indoor heat exchanger 17. Drain pan 19 is made of polystyrene foam. Drain pan 19 is formed in a substantially rectangular plate shape so as to cover substantially the entire opening on the bottom surface of housing 15. Drain pan 19 has a drain pan side suction port 25 (suction passage) in the center in a plan view, through which air drawn into blower 18 passes. Drain pan 19 also has drain pan side outlets 26, located outside drain pan side suction port 25 and overlapping with each panel side outlet 34, through which air blown out to the conditioned room passes. Drain pan side outlets 26 are formed in a rectangular shape extending along side plate 15a of housing 15.
[0020] Furthermore, drain pan 19 includes a recessed heat exchanger housing 27 that houses the lower end of indoor heat exchanger 17. Heat exchanger housing 27 is formed between drain pan side outlet 26 and drain pan side inlet 25, and is formed in the shape of a waterway that runs around the outer periphery of drain pan 19. The heat exchanger accommodating portion 27 includes a receiving surface portion 27a that abuts against the lower surface of the inner periphery of the indoor heat exchanger 17, and a drain water passage 27b that is formed outside the receiving surface portion 27a and one step lower than the receiving surface portion 27a. The drain water passage 27b is located below the lower surface of the outer periphery of the indoor heat exchanger 17. The indoor unit 10 is provided with a drain pump 28 on the drain water passage 27b for discharging drain water.
[0021] In plan view, drain water passage 27b is formed in a rectangular shape that follows the underside of indoor heat exchanger 17. Drain water passage 27b has a highest point 29H, where drain water passage 27b is positioned, at one of its four corners. Drain water passage 27b also has a lowest point 29L, where drain water passage 27b is positioned, at a corner adjacent to the corner with highest point 29h. The suction port of drain pump 28 is located at lowest point 29L.
[0022] The drain water passage 27b has a first passage 41 that descends from the highest point 29H to the adjacent corner, which is the lowest point 29L, and a second passage 42 that descends from the highest point 29H to the lowest point 29L via the other two corners. The second passage 42 descends from the highest point 29H to the lowest point 29L at a gentler incline than the first passage 41 and over a longer route than the first passage 41. As shown by the dashed arrows in Figure 3, the drain water flows from a high position through the first passage 41 and the second passage 42 to the drain pump 28 at the lowest point 29L, and is then sucked out by the drain pump 28 and discharged to the outside.
[0023] The bell mouth 20 is formed in a cylindrical shape that allows air to pass through it. The bell mouth 20 is equipped with a horizontal section 20a that is formed in a frame shape and extends approximately horizontally so as to fit along the upper surface of the drain pan-side suction port 25 of the drain pan 19, and a cylindrical central suction port 20b that rises upward in a curved shape from the inner periphery of the horizontal section 20a. The bell mouth 20 is made of a resin that is stronger than the drain pan 19. The bell mouth 20 is supported by the drain pan 19 with the horizontal portion 20 a fitted into the drain pan side suction port 25 in the center of the drain pan 19 . A support plate 70 made of resin or the like is attached to the underside of the drain pan 19 around the drain pan side suction port.
[0024] A blower chamber 43 in which the blower 18 is housed is formed inside the housing 15 by being surrounded by the indoor heat exchanger 17, the drain pan 19, and the bell mouth 20. In addition, an air passage 44 through which the air that has been heat exchanged in the indoor heat exchanger 17 passes is formed between the outer surface of the indoor heat exchanger 17 and the insulating member 16 of the side plate 15a of the housing 15. When the indoor unit 10 is operating, the rotation of the blower 18 draws air from the room to be conditioned through the panel-side intake port 31 (Fig. 1) and into the blower chamber 43 via the bell mouth 20. The air in the blower chamber 43 is then blown outside by the blower 18, undergoes heat exchange as it passes through the indoor heat exchanger 17, flows into the air passage 44, and is blown out into the room to be conditioned from the panel-side outlet 34 (Fig. 1). The drain pan-side outlet 26 forms part of the air passage 44.
[0025] The indoor unit 10 includes an electrical box 46 that houses an electronic circuit board 45 of the indoor unit 10.
[0026] As shown in Figures 2 and 3, the indoor unit main body 14 is equipped with an electrostatic atomizer 60 below the drain pan 19. The electrostatic atomizer 60 generates a mist containing charged atomized water particles, which can suppress viruses, mold, allergy-causing substances, and bacteria in the air and deodorize the air. The charged atomized water particles contain active ingredients such as radicals that exhibit disinfecting and deodorizing effects. The electrostatic atomizer 60 comprises a discharge unit 61 that discharges supplied water to generate a mist containing charged fine water particles, a power supply circuit (not shown) that generates a high voltage to be applied to the discharge unit 61, a box-shaped case 62 that houses the discharge unit 61 and the power supply circuit, etc., and a blow-out unit 63 that expels air sucked into the case 62.
[0027] An air suction port 64 for entering the case 62 is provided on the upper surface of the case 62. The suction port 64 is formed in a tubular shape that extends upward, and is connected to the opening 52 in the surface portion 50 of the bell mouth 20. The electrostatic atomizer 60 is disposed below the drain pan 19 and above the decorative panel 30. That is, the electrostatic atomizer 60 is disposed in the space between the drain pan 19 and the decorative panel 30. Specifically, the case 62 of the electrostatic atomizer 60 is located in the space K below the bell-mouth support part 49 and inside the drain pan main body part 48 . The blowing part 63 of the electrostatic atomizer 60 is formed in a tubular shape extending outward from the outer surface of the case 62. An outlet 63a that opens into the air passage 44 is formed at the outer end of the blowing part 63. The outlet 63a opens to the lower part of the drain pan side outlet 26. In the side view of Fig. 5, the outlet part 63 is arranged so as to extend from the outlet on the case 62 side down to the outlet 63a.
[0028] [1-1-2 Drain socket configuration] Fig. 4 is a perspective view showing a drain socket attached to the housing 15 of the indoor unit. Fig. 5 is a perspective view showing the drain socket with the housing 15 of the indoor unit removed. Fig. 6 is a perspective view of the drain socket as seen from below. Fig. 7 is a side view of the drain socket. Fig. 8 is a perspective view of the drain socket as seen from above. Fig. 9 is a front view of the drain socket as seen from the large diameter side. Fig. 10 is a front view of the drain socket as seen from the small diameter side.
[0029] As shown in FIGS. 4 and 5, in this embodiment, a drain socket 80 is attached to the side surface of the housing 15 at the location where the drain pump 28 is installed. The drain socket 80 includes a flat support plate 81 that is attached to the housing 15 . A drain discharge pipe 82 that is inclined at a predetermined angle in a plan view is provided to pass through the support plate 81. The portion of the drain discharge pipe 82 on the inside of the support plate 81 is an inside discharge pipe 83 , and the portion on the outside of the support plate 81 is an outside discharge pipe 84 . The inside discharge pipe 83 and the outside discharge pipe 84 are formed to have substantially the same diameter at the connection point with the support plate 81 .
[0030] The inside discharge pipe 83 is connected to the discharge port of the drain pump 28 via an inside connection pipe 90 . The external discharge pipe 84 is connected to a drain pipe (not shown) via an external connection pipe 91 .
[0031] A flat portion 85 is formed in the middle of the inside discharge pipe 83 . The diameter of the inside discharge pipe 83 on the drain pump 28 side is a small diameter portion 86 formed smaller than the diameter of the inside discharge pipe 83 on the support plate 81 side. In the following description, the support plate 81 side of the inside discharge pipe 83 is referred to as a large diameter portion 87 . The flat portion 85 is a portion that continuously connects the large diameter portion 87 and the small diameter portion 86 of the inside discharge pipe 83. That is, the drain water sent from the drain pump 28 is sent to the outside connection pipe 91 via the inside connection pipe 90, the small diameter portion 86, the flat portion 85, and the large diameter portion 87.
[0032] 9 and 10 , the flat portion 85 has a circular cross section at the connection portion with the small diameter portion 86. The flat portion 85 has a substantially semicircular cross section at the connection portion with the large diameter portion 87. The flat portion 85 and the large diameter portion 87 are connected to each other so as to fit along the upper edge of the large diameter portion 87. A flat wall portion 88 is formed below the flat portion 85 at the connection point between the flat portion 85 and the large diameter portion 87 .
[0033] The flat portion 85 is formed so as to gradually change from the small diameter portion 86 having a circular cross section to a flattened shape having a substantially semicircular cross section from the small diameter portion 86 to the large diameter portion 87 . The cross-sectional area of the flat portion 85 extending from the small diameter portion 86 to the large diameter portion 87 is formed to be constant even when the shape changes from a circular shape to a flat shape.
[0034] [1-2. Operation] By driving the blower 18, most of the air drawn into the blower chamber 43 passes through the indoor heat exchanger 17, undergoes heat exchange in the indoor heat exchanger 17, and is blown out into the room to be conditioned through the air flow path 44 and the panel-side outlet 34. A portion of the air in the blower chamber 43 flows into the opening 52 of the bell mouth 20 as if pushed by the blower 18, enters the case 62 of the electrostatic atomization device 60 through the intake port 64, and mixes with the mist containing charged fine water particles inside the case 62. The air mixed with this mist is carried to the outlet portion 63 by the blowing force of the blower 18, and merges with the air flowing through the air passage 44 from the outlet port 63a. In this way, the air mixed with the mist can be mixed with the air flowing through the air passage 44 by the blowing force of the blower 18, so that the air containing the mist can be efficiently distributed throughout the conditioned room.
[0035] Furthermore, when condensation occurs in the indoor heat exchanger 17 due to heat exchange between the refrigerant flowing through the indoor heat exchanger 17 and the indoor air, the condensation becomes drain water and is stored in the drain pan 19. When a predetermined amount of drain water is accumulated in the drain pan 19, the drain pump 28 is operated to discharge the drain water accumulated in the drain pan 19. The drain water passes through the internal connecting pipe 90, the small diameter section 86, the flat section 85, and the large diameter section 87, and is sent to the drain pipe and discharged to the outside.
[0036] In this embodiment, the inside discharge pipe 83 is formed so that the cross-sectional shape gradually changes from a circular small diameter portion 86 to a flattened, substantially semicircular cross-sectional shape from the small diameter portion 86 to the large diameter portion 87. Moreover, the cross-sectional area of the flattened portion 85 extending from the small diameter portion 86 to the large diameter portion 87 is formed so as to remain constant even when changing from a circular shape to a flattened shape. Therefore, when drain water flows from the small diameter portion 86 to the large diameter portion 87 of the inside discharge pipe 83, resistance to flow can be reduced, and the drain water can be sent smoothly.
[0037] Furthermore, when the drain water has been discharged and the drain pump 28 is stopped, a backflow phenomenon of drain water occurs. However, in this embodiment, a wall portion 88 is formed below the connection point between the large diameter portion 87 and the flat portion 85, so that the backflowing drain water can be prevented from flowing into the flat portion 85.
[0038] [1-3. Effects, etc.] As described above, this embodiment comprises a support plate 81 attached to the housing 15, an inside discharge pipe 83 located on the inside side of the support plate 81 and connected to the drain pump 28, and an outside discharge pipe 84 located on the outside side of the support plate 81, and the inside discharge pipe 83 comprises a large diameter portion 87 on the support plate 81 side and a small diameter portion 86 on the drain pump 28 side, and the large diameter portion 87 and the small diameter portion 86 are connected via a flat portion 85. Thus, by providing the flat portion 85, it is possible to ensure the discharge flow rate by the drain pump 28 and also to suppress backflow of drain water.
[0039] In addition, in this embodiment, the cross-sectional shape of the connection portion between the flat portion 85 and the small diameter portion 86 is formed in a circular shape, and the cross-sectional shape of the connection portion between the flat portion 85 and the large diameter portion 87 is formed in a flat shape that is approximately semicircular. This makes it possible to reduce the flow resistance of drain water when the drain water flows through the flat portion 85.
[0040] In this embodiment, the flat portion 85 is connected to the upper edge of the large diameter portion 87, and a wall portion 88 is formed below the connection point between the large diameter portion 87 and the flat portion 85. As a result, by connecting the flat portion 85 to the upper edge of the large diameter portion 87 and forming a wall portion 88 below it, the discharge flow rate of the drain water can be ensured and the wall portion 88 can suppress the backflow of the drain water.
[0041] In addition, in this embodiment, the flattened portion 85 is formed so as to gradually change from the small diameter portion 86, which has a circular cross-sectional shape, to a flattened shape, which has an approximately semicircular cross-sectional shape, on the way from the small diameter portion 86 to the large diameter portion 87, and the cross-sectional area of the flattened portion 85 from the small diameter portion 86 to the large diameter portion 87 is formed so as to remain the same even when changing from a circular shape to a flattened shape. As a result, the cross-sectional area remains the same when the drain water flows from the small diameter portion 86 through the inside of the flat portion 85, so the amount of drain water discharged can be ensured and the flow resistance of the drain water can be reduced.
[0042] It should be noted that the above-described embodiments are intended to illustrate the technology of the present disclosure, and various modifications, substitutions, additions, omissions, etc. may be made within the scope of the claims or their equivalents. [Industrial Applicability]
[0043] The present disclosure is suitably applicable to a drain socket that can discharge drain water and prevent backflow of drain water. [Explanation of symbols]
[0044] 10 Indoor unit 15 Case 17 Indoor heat exchanger 18 Blower 19 Drain pan 20 Bellmouth 24 centrifugal fan 28 Drain pump 48 Drain pan body 60 Electrostatic atomizer 80 Drain socket 81 Support plate 82 Drain discharge pipe 83 Inside discharge pipe 84 External discharge pipe 85 Flat part 86 Small diameter section 87 Large diameter section 88 Wall 90 Internal connection pipe 91 External connecting pipe
Claims
1. A drain socket for discharging drain water from an indoor unit that includes a housing, a blower, an indoor heat exchanger that surrounds the blower, and a drain pan that covers the indoor heat exchanger from below. a support plate attached to the housing; an inboard discharge pipe located on the inboard side of the support plate and connected to a drain pump; and an outboard discharge pipe located on the outboard side of the support plate, the inside discharge pipe includes a large diameter portion on the support plate side and a small diameter portion on the drain pump side, the large diameter portion and the small diameter portion are connected via a flat portion, the flat portion is connected to an upper edge portion of the large diameter portion, and a wall portion is formed below a connection point between the large diameter portion and the flat portion, a cross-sectional shape of a connection portion between the flat portion and the small diameter portion is formed into a substantially circular shape, a cross-sectional shape of a connection portion between the flat portion and the large diameter portion is formed into a substantially semicircular flat shape, a cross-sectional area of a connection portion between the flat portion and the small diameter portion is substantially the same as a cross-sectional area of a connection portion between the flat portion and the large diameter portion, the flat portion is formed so as to gradually change from a circular cross-sectional shape of the small diameter portion to a flattened cross-sectional shape of a substantially semicircular cross-sectional shape midway from the small diameter portion to the large diameter portion, The cross-sectional area of the flat portion extending from the small diameter portion to the large diameter portion is always substantially constant. Drain socket.
2. Equipped with the drain socket according to claim 1, Indoor unit.
Citation Information
Patent Citations
Condensate water discharging structure for window type air conditioner
CN101418986A
JP1987146081U
Indoor unit of air conditioner
JP2004085131A
Socket, air conditioner, and air conditioner installation method
JP6539899B2