AIR CONDITIONER OUTDOOR UNIT
An air conditioner outdoor unit includes a box-shaped casing formed of a first metal, a heat exchanger that is at least partly formed of a second metal different in natural potential from the first metal and is disposed in the casing and fixed to the casing with a non-conductive member interposed therebetween, and capacitance connection sheet metal that is formed of the first metal or a third metal that does not cause dissimilar metal corrosion with the first metal and is disposed in the casing. The capacitance connection sheet metal is fixed to the casing and electrically connected to the casing, and is disposed with a space between the heat exchanger and the capacitance connection sheet metal and electrically connected to the heat exchanger through capacitance generated between the heat exchanger and the capacitance connection sheet metal.
This application is a U.S. national stage application of PCT/JP2022/017938 filed on Apr. 15, 2022, the contents of which are incorporated herein by reference.
FIELDThe present disclosure relates to an air conditioner outdoor unit including a casing and a heat exchanger.
BACKGROUNDA known conventional air conditioner outdoor unit includes a box-shaped casing and a heat exchanger disposed in the casing, the heat exchanger and the casing being formed of dissimilar metals. The types of metals for the heat exchanger and the casing are selected according to their required characteristics. For example, aluminum is commonly used for the heat exchanger that is required of high thermal conductivity, and iron is commonly used for the casing that is required of strength.
If water adheres to a contact portion between the heat exchanger and the casing of dissimilar metals placed in direct contact with each other, dissimilar metal corrosion occurs in the metal with a lower natural potential. Hereinafter, dissimilar metal corrosion is simply referred to as corrosion. As a means to prevent corrosion, there is known a means of indirectly connecting the heat exchanger and the casing with a non-conductive member such as resin interposed therebetween.
However, when such a means is used, the heat exchanger and the casing are electrically insulated by the non-conductive member, so that parasitic capacitances are generated between the heat exchanger and the casing. Electromagnetic noise generated from an electronic board, a compressor, etc. disposed in the casing causes voltage changes in the parasitic capacitances. The voltage changes further cause electromagnetic noise disadvantageously. An air inlet is formed in the rear of the casing to allow the inflow of outside air. The heat exchanger is disposed at a position facing the air inlet to exchange heat with the outside air. The electromagnetic noise is radiated from between the heat exchanger and the casing through the air inlet to the outside of the casing.
To simultaneously solve two problems, which are the prevention of corrosion and the reduction of electromagnetic noise, Patent Literature 1 discloses a technique in which a conductive connecting member is interposed between the heat exchanger and the casing. The connecting member includes a first connection that is formed of the same type of metal as a metal used for the heat exchanger and is in direct contact with the heat exchanger, and a second connection that is formed of the same type of metal as a metal used for the casing and is in direct contact with the casing. An insulating layer that electrically insulates the first connection and the second connection is provided between the first connection and the second connection.
The technique disclosed in Patent Literature 1 removes a portion of the insulating layer to partially bring the first connection and the second connection of the dissimilar metals into direct contact with each other to provide electrical conduction to reduce electromagnetic noise. On the other hand, a contact portion between the first connection and the second connection is covered with a covering member such as a waterproof tape to block the ingress of water into the contact portion to prevent metal corrosion.
PATENT LITERATURE
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- Patent Literature 1: Japanese Patent No. 6583489
However, the technique disclosed in Patent Literature 1 leads to complication of the structure due to the use of a plurality of types of metals for the connecting member and the provision of the insulating layer, and thus disadvantageously increases the number of manufacturing steps and increases the number of parts.
SUMMARYThe present disclosure has been made in view of the above. It is an object of the present disclosure to provide an air conditioner outdoor unit that can achieve both the prevention of corrosion and the reduction of electromagnetic noise with a simple structure.
To solve the above problems and achieve an object, an air conditioner outdoor unit according to the present disclosure includes: a box-shaped casing formed of a first metal; a heat exchanger at least partly formed of a second metal different in natural potential from the first metal, the heat exchanger being disposed in the casing and fixed to the casing with a non-conductive member interposed between the heat exchanger and the casing; and capacitance connection sheet metal formed of the first metal or a third metal that does not cause dissimilar metal corrosion with the first metal, the capacitance connection sheet metal being disposed in the casing. The capacitance connection sheet metal is fixed to the casing and electrically connected to the casing, and the capacitance connection sheet metal is disposed with a space between the heat exchanger and the capacitance connection sheet metal and electrically connected to the heat exchanger through capacitance generated between the heat exchanger and the capacitance connection sheet metal.
The air conditioner outdoor unit according to the present disclosure has the effect of being able to achieve both the prevention of corrosion and the reduction of electromagnetic noise with the simple structure.
Hereinafter, an air conditioner outdoor unit according to an embodiment will be described in detail with reference to the drawings.
First EmbodimentIn the following, when directions are described for the components of the outdoor unit 1, the depth direction of the outdoor unit 1 is referred to as the X-axis direction, the height direction of the outdoor unit 1 as the Y-axis direction, and the width direction of the outdoor unit 1 as the Z-axis direction. The positive direction of the X-axis direction is defined as the forward direction, and the negative direction of the X-axis direction as the rearward direction. The positive direction of the X-axis direction is a direction from the negative side to the positive side of the X-axis, and the negative direction of the X-axis direction is a direction from the positive side to the negative side of the X-axis. The positive direction of the Y-axis direction is defined as the upward direction, and the negative direction of the Y-axis direction as the downward direction. The positive direction of the Y-axis direction is a direction from the negative side to the positive side of the Y-axis, and the negative direction of the Y-axis direction is a direction from the positive side to the negative side of the Y-axis. The positive direction of the Z-axis direction is defined as the rightward direction, and the negative direction of the Z-axis direction as the leftward direction. The positive direction of the Z-axis direction is a direction from the negative side to the positive side of the Z-axis, and the negative direction of the Z-axis direction is a direction from the positive side to the negative side of the Z-axis. In the present embodiment, the positive direction of the X-axis direction in which air flow produced by the fan 5 in the outdoor unit 1 is discharged to the outside is the front, and the side opposite to the front is the rear.
As illustrated in
The first connecting panel 2c and the second connecting panel 2d connect the casing floor panel 2a and the casing top panel 2b. The first connecting panel 2c has an L shape in plan view. The first connecting panel 2c includes the casing front panel 2e extending along the Z-axis direction, and a casing side panel 2f extending rearward from the left edge that is one edge of the casing front panel 2e in the Z-axis direction.
The casing front panel 2e connects the front edge of the casing floor panel 2a and the front edge of the casing top panel 2b. The casing front panel 2e constitutes the front of the outer shell of the outdoor unit 1. An air outlet 2j is formed in the casing front panel 2e. The air outlet 2j is an opening for discharging air flow produced by the fan 5 to the outside of a fan chamber 10 to be described later. The casing side panel 2f connects the left edge of the casing floor panel 2a and the left edge of the casing top panel 2b. The casing side panel 2f constitutes the left side of the outer shell of the outdoor unit 1. The casing front panel 2e and the casing side panel 2f are integrally formed in the present embodiment, but may be separately formed.
The second connecting panel 2d has an L shape in plan view. The second connecting panel 2d includes a casing side panel 2g extending along the X-axis direction, and a casing rear panel 2h extending leftward from the rear edge that is one edge of the casing side panel 2g in the X-axis direction.
The casing side panel 2g connects the right edge of the casing floor panel 2a and the right edge of the casing top panel 2b. The casing side panel 2g constitutes the right side of the outer shell of the outdoor unit 1. The casing rear panel 2h connects a portion of the rear edge of the casing floor panel 2a and a portion of the rear edge of the casing top panel 2b. The casing rear panel 2h constitutes a portion of the rear of the outer shell of the outdoor unit 1. The casing side panel 2g and the casing rear panel 2h are integrally formed in the present embodiment, but may be separately formed.
With the panels illustrated in
The capacitance connection sheet metal 3 is a metal member disposed near the heat exchanger 6 in the casing 2. The capacitance connection sheet metal 3 is in contact with the casing 2, and fixed to the casing 2 to be electrically connected to the casing 2. The capacitance connection sheet metal 3 is not in contact with the heat exchanger 6. The capacitance connection sheet metal 3 is disposed with a space between the heat exchanger 6 and the capacitance connection sheet metal 3, and is electrically connected to the heat exchanger 6 via capacitance generated between the heat exchanger 6 and the capacitance connection sheet metal 3. That is, the capacitance connection sheet metal 3 is electrically connected to the heat exchanger 6 at high frequencies by capacitance generated between the heat exchanger 6 and the capacitance connection sheet metal 3. In the present description, the metal members “being electrically connected at high frequencies” refer to a state in which the metal members are not in contact with each other, but impedance through the space formed between the metal members is small, and conductivity between the metal members is high.
As illustrated in
Portions where the casing 2 and the capacitance connection sheet metal 3 are in contact with each other are joined by welding, screws, or the like. If the panel surfaces of the casing 2 are coated, for example, and have high electrical resistance, the joints may be partly or entirely masked in advance, or serration screws may be used to peel off the coating at the time of screwing, for example, to lower the electrical resistance of each panel surface.
As illustrated in
As illustrated in
The heat exchanger 6 is a member disposed in the fan chamber 10 to exchange heat between a refrigerant and outside air. Outside air to be taken into the fan 5 passes through the heat exchanger 6. The heat exchanger 6 is, for example, a parallel-flow heat exchanger. The heat exchanger 6 is disposed in the casing 2 and is fixed to the casing 2 with the insulating members 7 that are non-conductive members interposed therebetween. At least part of the heat exchanger 6 is formed of a second metal different in natural potential from the first metal. The second metal is preferably a metal having high thermal conductivity. The second metal is, for example, aluminum or an aluminum alloy. Although not illustrated, the heat exchanger 6 includes a plurality of fins and refrigerant tubing. The refrigerant flows through the refrigerant tubing.
As illustrated in
The heat exchanger 6 includes a planar heat exchanger side end 6a extending in the Y-axis direction. The heat exchanger side end 6a constitutes the front end of the portion of the heat exchanger 6 along the X-axis direction. The heat exchanger side end 6a has a quadrangular shape. The heat exchanger side end 6a is a plane perpendicular to the X-axis direction. The heat exchanger 6 includes a pair of heat exchanger side surfaces 6b and 6c. The heat exchanger side surfaces 6b and 6c extend from both edges of the heat exchanger side end 6a in the Z-axis direction in a direction away from a sheet metal facing wall 3a to be described later. The heat exchanger side surfaces 6b and 6c have a quadrangular shape. In the present embodiment, the Z-axis direction is a direction perpendicular to the vertical direction.
The heat exchanger 6 and the first connecting panel 2c and the second connecting panel 2d are disposed at a distance from each other and electrically insulated, or are disposed with an insulating member (not illustrated) interposed therebetween and electrically insulated. As illustrated in
As the material of the two insulating members 7 illustrated in
As illustrated in
The electronic board box 9 is a member that houses the electronic board 9a such as a control board required to operate the outdoor unit 1. The electronic board box 9 is formed in a hollow rectangular parallelepiped shape. The electronic board box 9 is fixed to the top of the partition plate 4, and is disposed across the fan chamber 10 and the electric chamber 11. A heat sink 9b extending downward is attached to a portion of the electronic board box 9 disposed in the fan chamber 10. The heat sink 9b is exposed to the fan chamber 10. The heat sink 9b is cooled by air flow produced by the fan 5.
A portion of the electronic board box 9 disposed in the electric chamber 11 is disposed above the compressor 8. A compressor drive wire 13 is connected to a portion of the electronic board 9a disposed in the electric chamber 11. The compressor 8 is electrically connected to the electronic board 9a through the compressor drive wire 13. The compressor 8 works when receiving a drive signal output from the electronic board 9a through the compressor drive wire 13.
The electric chamber 11 formed is enclosed by the casing floor panel 2a, the partition plate 4, the casing side panel 2g, the electronic board box 9, the casing front panel 2e and the casing rear panel 2h that are illustrated in
The compressor 8 and the stop valve 17 are connected to each other via a plurality of refrigerant pipes 18. The compressor 8 and the heat exchanger 6 are connected to each other via a plurality of refrigerant pipes 18. Connections 19 between the heat exchanger 6 and the refrigerant pipes 18 are disposed in the electric chamber 11 having the waterproof structure. By thus disposing the connections 19 in the electric chamber 11, contact between the connections 19 and water can be prevented, so that the corrosion of the connections 19 can be prevented. To further enhance the waterproofing effect on the connections 19, the connections 19 may be waterproofed by winding a waterproof tape or the like around the connections 19. Although not specifically illustrated, valve devices such as a four-way valve that switches the refrigerant's flow direction and an expansion valve that expands the refrigerant to a predetermined pressure are connected to the refrigerant pipes 18. The connection form of the refrigerant pipes 18 is not limited to the illustrated example.
An interface panel 20 is installed in an upper space of the electric chamber 11. The interface panel 20 is fixed to the inner surface of the casing side panel 2g and the lower surface of the electronic board box 9. A terminal block 21 is installed on the interface panel 20. An external AC power line 14 and an internal power line 15 are connected to the terminal block 21. The external AC power line 14 is electrically connected to the internal power line 15 via the terminal block 21. The internal power line 15 is electrically connected to the electronic board 9a. Power to the electronic board 9a is supplied through the external AC power line 14, the terminal block 21, and the internal power line 15. The voltage of the power supplied to the electronic board 9a is, for example, single-phase 200 V, but is not limited to this voltage.
The interface panel 20 is formed of the first metal like the casing side panel 2g. Therefore, the interface panel 20 is joined to the casing side panel 2g with low electrical resistance. The interface panel 20 is connected to a signal ground of the electronic board 9a. The interface panel 20 includes a ground connection point 20a to which a ground wire 16 is connected. The interface panel 20 is grounded through the ground connection point 20a and the ground wire 16. The casing 2 joined to the interface panel 20 and the partition plate 4 joined to the casing 2 are grounded through the ground connection point 20a and the ground wire 16. The heat exchanger 6 is electrically connected to the ground connection point 20a through the connections 19 between the heat exchanger 6 and the refrigerant pipes 18, the compressor 8, etc., but is not directly short-circuited to the casing 2 and the partition plate 4.
In the casing side panel 2g, an opening 2k is formed to allow communication between the inside and the outside of the casing 2. The interface panel 20 and the terminal block 21 installed in the electric chamber 11 can be visually seen and handled through the opening 2k. Work to connect various power lines can be performed through the opening 2k. An interface cover (not illustrated) is detachably attached to the casing side panel 2g, and the opening 2k is covered with the interface cover.
Next, with reference to
The location of the capacitance connection sheet metal 3 is not particularly limited as long as the location is near the heat exchanger 6. In the present embodiment, the location is near the heat exchanger side end 6a of the heat exchanger 6. The capacitance connection sheet metal 3 includes the sheet metal facing wall 3a, a pair of sheet metal side walls 3b and 3c, and a plurality of sheet metal fixed portions 3d. The sheet metal facing wall 3a, the sheet metal side walls 3b and 3c, and the sheet metal fixed portion 3d are all flat portions. The sheet metal facing wall 3a has a quadrangular shape. The sheet metal facing wall 3a is disposed in front of the heat exchanger side end 6a with a space between the heat exchanger side end 6a and the sheet metal facing wall 3a. The sheet metal facing wall 3a faces the heat exchanger side end 6a.
The sheet metal side walls 3b and 3c have a quadrangular shape. The sheet metal side wall 3b extends from one edge of the sheet metal facing wall 3a in the Z-axis direction toward the heat exchanger side surface 6b, and is disposed with a space between the heat exchanger side surface 6b and the sheet metal side wall 3b. The sheet metal side wall 3c extends from the other edge of the sheet metal facing wall 3a in the Z-axis direction toward the heat exchanger side surface 6c, and is disposed with a space between the heat exchanger side surface 6c and the sheet metal side wall 3c. The sheet metal side wall 3b faces the heat exchanger side surface 6b. The sheet metal side wall 3c faces the heat exchanger side surface 6c. The sheet metal side walls 3b and 3c are bent at right angles toward the rear from the edges of the sheet metal facing wall 3a in the Z-axis direction.
The sheet metal fixed portions 3d are portions fixed to the casing 2. The sheet metal fixed portions 3d have a quadrangular shape. The sheet metal fixed portions 3d are provided at the lower end of the sheet metal facing wall 3a and the lower ends of the pair of sheet metal side walls 3b and 3c, one for each. The sheet metal fixed portion 3d provided at the lower end of the sheet metal facing wall 3a extends in a direction away from the heat exchanger side end 6a. The sheet metal fixed portion 3d provided at the lower end of the sheet metal side wall 3b extends in a direction away from the heat exchanger side surface 6b. The sheet metal fixed portion 3d provided at the lower end of the sheet metal side wall 3c extends in a direction away from the heat exchanger side surface 6c.
The sheet metal fixed portions 3d are in contact with and fixed to only the casing floor panel 2a in the present embodiment, but may be in contact with and fixed to at least one of the casing floor panel 2a, the casing top panel 2b, the casing front panel 2e, the casing rear panel 2h, and the casing side panels 2f and 2g illustrated in
The space formed between the heat exchanger side end 6a and the sheet metal facing wall 3a and the spaces formed between the heat exchanger side surfaces 6b and 6c and the sheet metal side walls 3b and 3c communicate with each other. As illustrated in
Note that the pair of sheet metal side walls 3b and 3c may not be provided, or one of the pair of sheet metal side walls 3b and 3c may be omitted. Furthermore, the capacitance connection sheet metal 3 is disposed with a space between the capacitance connection sheet metal 3 and the heat exchanger side end 6a and a space between the capacitance connection sheet metal 3 and each of the heat exchanger side surfaces 6b and 6c, but may be disposed with a space between any surface of the heat exchanger 6 and the capacitance connection sheet metal 3.
Next, the operation and effects of the outdoor unit 1 according to the first embodiment will be described.
As illustrated in
The characteristics of parasitic impedance components of the heat exchanger 6 vary depending on the structure of the heat exchanger 6. Here, as an example, it is assumed that the heat exchanger 6 is a parallel-flow heat exchanger including corrugated fins and flat refrigerant tubing. An equivalent circuit in which parasitic inductances 23 of the heat exchanger 6 are combined as illustrated in
In a case where the heat exchanger 6 and the casing 2 illustrated in
The heat exchanger 6 and the panels of the casing 2 illustrated in
In the present embodiment, as illustrated in
In the present embodiment, as illustrated in
In the present embodiment, since the first metal is one of iron and an iron alloy, and the third metal is the other of iron and an iron alloy, even when the capacitance connection sheet metal 3 illustrated in
In the present embodiment, as illustrated in
In the present embodiment, as illustrated in
In the present embodiment, as illustrated in
An aluminum parallel-flow heat exchanger uses aluminum as the material of fins and refrigerant tubing. Thus, when iron is used as the material of the casing 2, corrosion can occur in both the fins and the refrigerant tubing. If corrosion occurs in the refrigerant tubing, making a hole, the refrigerant in the refrigerant tubing leaks into the atmosphere. The leakage of the refrigerant into the atmosphere impairs heating and cooling functions as the air conditioner. Thus, corrosion has a substantial harmful effect on an aluminum parallel-flow heat exchanger, and therefore it is highly important to take measures to prevent corrosion. It is also necessary to take measures to reduce electromagnetic noise caused by taking measures to prevent corrosion. Therefore, it is particularly useful to achieve both the prevention of corrosion and the reduction of electromagnetic noise using the capacitance connection sheet metal 3 and the insulating members 7 illustrated in
The second insulating member 7b illustrated in
The contact sheet metal fixed portions 25d and 25e are portions fixed to the casing 2. The contact sheet metal fixed portions 25d and 25e have a quadrangular shape. The contact sheet metal fixed portion 25d protrudes forward of the contact sheet metal vertical wall 25b from one edge of the contact sheet metal horizontal wall 25a in the X-axis direction. The contact sheet metal fixed portion 25e protrudes rearward of the contact sheet metal vertical wall 25c from the other edge of the contact sheet metal horizontal wall 25a in the X-axis direction. The contact sheet metal fixed portions 25d and 25e are in contact with and fixed to the casing top panel 2b. The contact sheet metal fixed portions 25d and 25e are joined to the casing top panel 2b with screws or the like. The contact sheet metal 25 is formed of the first metal like the casing 2 or the third metal that does not cause dissimilar metal corrosion with the casing 2. If water adheres to a contact portion between the contact sheet metal 25 formed of the first metal or the third metal and the heat exchanger 6 formed of the second metal, corrosion occurs in the heat exchanger 6 with lower natural potential. In the present modification, the side surface opposite to the heat exchanger 6 and the lower surface of the contact sheet metal vertical wall 25b are covered with the covering member 26. The side surface opposite to the heat exchanger 6 and the lower surface of the contact sheet metal vertical wall 25c are covered with the covering member 26. That is, the periphery of the contact portion between the contact sheet metal 25 and the heat exchanger 6 is covered with the covering member 26 such as a waterproof tape. This can block the ingress of water into the contact portion between the contact sheet metal 25 and the heat exchanger 6 to prevent the corrosion of the heat exchanger 6.
The heat exchanger 6 does not need to be entirely formed of the second metal. The heat exchanger 6 is only required to be at least partly formed of the second metal. For example, it is only required that at least either the fins or the refrigerant tubing of the heat exchanger 6 be formed of the second metal.
The configurations described in the above embodiment illustrate an example, and can be combined with another known art, and can be partly omitted or changed without departing from the gist.
Claims
1. An air conditioner outdoor unit, comprising:
- a box-shaped casing formed of a first metal;
- a heat exchanger at least partly formed of a second metal different in natural potential from the first metal, the heat exchanger being disposed in the casing and fixed to the casing with a non-conductive member interposed between the heat exchanger and the casing; and
- capacitance connection sheet metal formed of the first metal or a third metal that does not cause dissimilar metal corrosion with the first metal, the capacitance connection sheet metal being disposed in the casing,
- the capacitance connection sheet metal being fixed to the casing and electrically connected to the casing, the capacitance connection sheet metal being disposed with a space between the heat exchanger and the capacitance connection sheet metal and electrically connected to the heat exchanger through capacitance generated between the heat exchanger and the capacitance connection sheet metal.
2. The air conditioner outdoor unit according to claim 1, wherein
- the casing includes a casing floor panel and a casing top panel disposed above the casing floor panel, and a casing front panel, a casing rear panel, and casing side panels connecting the casing floor panel and the casing top panel, and
- the capacitance connection sheet metal is fixed to at least one of the casing floor panel, the casing top panel, the casing front panel, the casing rear panel, and the casing side panels.
3. The air conditioner outdoor unit according to claim 1, wherein a dielectric is inserted into the space formed between the heat exchanger and the capacitance connection sheet metal.
4. The air conditioner outdoor unit according to claim 1, wherein
- the first metal is one of iron and an iron alloy,
- the third metal is the other of iron and an iron alloy, and
- the second metal is aluminum or an aluminum alloy.
5. The air conditioner outdoor unit according to claim 1, wherein
- the heat exchanger includes a planar heat exchanger side end extending in a vertical direction, and
- the capacitance connection sheet metal includes a sheet metal facing wall disposed with the space between the heat exchanger side end and the sheet metal facing wall.
6. The air conditioner outdoor unit according to claim 5, wherein
- the heat exchanger includes a pair of heat exchanger side surfaces extending in a direction away from the sheet metal facing wall from both edges of the heat exchanger side end in a direction perpendicular to the vertical direction,
- the capacitance connection sheet metal includes a sheet metal side wall(s) extending toward the heat exchanger side surface(s) from one edge or both edges of the sheet metal facing wall in the direction perpendicular to the vertical direction, the sheet metal side wall(s) being disposed with a space between the heat exchanger side surface(s) and the sheet metal side wall(s), and
- the space formed between the heat exchanger side end and the sheet metal facing wall and the space formed between the heat exchanger side surface(s) and the sheet metal side wall(s) communicate with each other.
7. The air conditioner outdoor unit according to claim 1, wherein the capacitance connection sheet metal includes a cutout portion formed by cutting out a portion of the capacitance connection sheet metal.
8. The air conditioner outdoor unit according to claim 1, wherein
- a portion of the casing and a portion of the heat exchanger are in contact with each other, and
- a contact portion between the casing and the heat exchanger is covered with a covering member.
9. The air conditioner outdoor unit according to claim 2, wherein
- a dielectric is inserted into the space formed between the heat exchanger and the capacitance connection sheet metal.
10. The air conditioner outdoor unit according to claim 2, wherein
- the first metal is one of iron and an iron alloy,
- the third metal is the other of iron and an iron alloy, and
- the second metal is aluminum or an aluminum alloy.
11. The air conditioner outdoor unit according to claim 2, wherein
- the heat exchanger includes a planar heat exchanger side end extending in a vertical direction, and
- the capacitance connection sheet metal includes a sheet metal facing wall disposed with the space between the heat exchanger side end and the sheet metal facing wall.
12. The air conditioner outdoor unit according to claim 11, wherein
- the heat exchanger includes a pair of heat exchanger side surfaces extending in a direction away from the sheet metal facing wall from both edges of the heat exchanger side end in a direction perpendicular to the vertical direction,
- the capacitance connection sheet metal includes a sheet metal side wall(s) extending toward the heat exchanger side surface(s) from one edge or both edges of the sheet metal facing wall in the direction perpendicular to the vertical direction, the sheet metal side wall(s) being disposed with a space between the heat exchanger side surface(s) and the sheet metal side wall(s), and
- the space formed between the heat exchanger side end and the sheet metal facing wall and the space formed between the heat exchanger side surface(s) and the sheet metal side wall(s) communicate with each other.
13. The air conditioner outdoor unit according to claim 2, wherein the capacitance connection sheet metal includes a cutout portion formed by cutting out a portion of the capacitance connection sheet metal.
14. The air conditioner outdoor unit according to claim 2, wherein
- a portion of the casing and a portion of the heat exchanger are in contact with each other, and
- a contact portion between the casing and the heat exchanger is covered with a covering member.
Type: Application
Filed: Apr 15, 2022
Publication Date: Apr 17, 2025
Inventors: Keita NAKANO (Tokyo), Ryuji MOMOSE (Tokyo), Kyota OTSUKA (Tokyo), Kenji HIROSE (Tokyo), Satoshi YONEDA (Tokyo), Kaito HAGIWARA (Tokyo), Masanori OI (Tokyo), Yuto TAKEUCHI (Tokyo)
Application Number: 18/834,685