Refrigerant distribution pipe and air conditioner
The refrigerant distribution pipe design with aligned outlet pipe centers and adjusted cross-sectional areas ensures consistent lubricating oil distribution to outdoor units, addressing uneven flow rate issues and maintaining compressor lubrication in air conditioning systems.
Patent Information
- Application Number
- PCT/JP2025/010519
- Authority / Receiving Office
- WO · WO
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2024-03-18
- Filing Date
- 2025-03-18
- Publication Date
- 2025-09-25
AI Technical Summary
Existing refrigerant distribution pipes fail to maintain the actual distribution flow rate of refrigeration oil consistent with the target flow rate due to variations in installation posture and shape, leading to uneven distribution among multiple outdoor units in air conditioning systems.
A refrigerant distribution pipe design with an inlet pipe, a connecting portion, and two outlet pipes, where the centers of the outlet pipe cross sections are positioned to align with the inlet pipe's cross section center, and the outlet pipes' cross-sectional areas are set to achieve a specific ratio, ensuring even distribution of refrigerant and lubricating oil to multiple outdoor units.
The design prevents deviations in the actual distribution flow rate of refrigeration oil from the target flow rate, ensuring even supply of lubricating oil to all outdoor units, thereby maintaining consistent compressor lubrication and system efficiency.
Smart Images

Figure JP2025010519_25092025_PF_FP_ABST
Abstract
Description
Refrigerant distribution pipe and air conditioning device
[0001] This disclosure relates to a refrigerant distribution pipe and an air conditioning apparatus. This application claims priority to Japanese Patent Application No. 2024-042417 filed on March 18, 2024, and Japanese Patent Application No. 2024-042476 filed on March 18, 2024, the contents of which are incorporated herein by reference.
[0002] In air conditioners equipped with indoor units, outdoor units, and a refrigerant circuit, multiple outdoor units may be arranged in parallel. Refrigerant oil is used to lubricate the sliding parts of the compressor in each outdoor unit to prevent burnout. As the refrigerant circulates through the refrigeration circuit, the refrigerant oil adheres to and accumulates in the heat exchanger and refrigerant pipes outside the compressor. For this reason, the refrigerant must be circulated through the refrigerant pipes, and the accumulated refrigerant oil must be periodically recovered into the compressors of each outdoor unit. It is desirable to recover the refrigerant oil evenly from each outdoor unit. To distribute the refrigerant oil at an appropriate flow rate, distribution pipes are provided in the refrigerant pipes. For example, the distribution pipe disclosed in Patent Document 1 includes an expanded section formed by expanding one end of a pipe with a substantially circular cross section, and first and second branch pipes arranged side by side within the expanded section and branching in two directions.
[0003] Japanese Patent Application Laid-Open No. 2008-2679
[0004] However, when using the distribution pipe disclosed in Patent Document 1, etc., depending on the installation posture and shape of the distribution pipe, the actual distribution flow rate of refrigeration oil through the distribution pipe may deviate significantly from the target distribution flow rate (hereinafter referred to as the "target flow rate").
[0005] The present disclosure has been made to solve the above-mentioned problems, and aims to provide a refrigerant distribution pipe and an air conditioning apparatus that can prevent the actual distribution flow rate of refrigeration oil from deviating from the target flow rate.
[0006] In order to solve the above problems, a refrigerant distribution pipe according to the present disclosure is used in a refrigerant pipe connecting a plurality of outdoor units and indoor units each having a compressor, and distributes a fluid containing an air-conditioning refrigerant and a refrigerating machine oil for lubricating the compressor to the plurality of outdoor units, the refrigerant distribution pipe comprising an inlet pipe into which the fluid flows, and an inlet opening extending in one direction from an end of the inlet pipe, the inlet opening communicating with the inlet pipe at an end on the inlet pipe side in the extending direction, and the inlet opening being arranged at an end on the opposite side from the inlet pipe in the extending direction, in a first direction perpendicular to the extending direction. a connecting portion having a first outlet opening and a second outlet opening, a first outlet pipe communicating with the connecting portion at the first outlet opening and discharging the fluid to the outdoor unit; and a second outlet pipe communicating with the connecting portion at the second outlet opening and discharging the fluid to the outdoor unit different from the outdoor unit to which the fluid is to be discharged from the first outlet pipe, wherein the center of a cross section of the first outlet opening and the center of a cross section of the second outlet opening are located on one side of the center of a cross section of the inlet opening in a second direction perpendicular to the extension direction and the first direction.
[0007] The refrigerant distribution pipe according to the present disclosure is used in a refrigerant pipe connecting a plurality of outdoor units and indoor units each having a compressor, and distributes a fluid including an air-conditioning refrigerant and a refrigerating machine oil for lubricating the compressor to the plurality of outdoor units, and includes an inlet pipe into which the fluid flows, and an inlet opening extending in one direction from an end of the inlet pipe, the inlet opening communicating with the inlet pipe at an end on the inlet pipe side in the extending direction, and a refrigerant distribution pipe provided at an end opposite to the inlet pipe in the extending direction, aligned in a first direction perpendicular to the extending direction. a connecting portion having a first outlet opening and a second outlet opening, a first outlet pipe communicating with the connecting portion at the first outlet opening and discharging the fluid to the outdoor unit, and a second outlet pipe communicating with the connecting portion at the second outlet opening and discharging the fluid to the outdoor unit different from the outdoor unit to which the fluid is to be discharged from the first outlet pipe, wherein a cross section of the first outlet pipe and a cross section of the second outlet pipe are shaped like a rectangle having one side extending in the extension direction and a second direction perpendicular to the first direction.
[0008] An air conditioning apparatus according to the present disclosure includes the refrigerant pipe including any one of the above-described refrigerant distribution pipes, a plurality of the outdoor units, and the indoor units.
[0009] The refrigerant distribution pipe according to the present disclosure is used in a refrigerant pipe connecting a plurality of outdoor units having compressors to indoor units, and distributes a fluid containing an air-conditioning refrigerant and a refrigeration oil for lubricating the compressors to the plurality of outdoor units, and comprises an inlet pipe into which the fluid flows, a first outlet pipe through which the fluid flows out to the outdoor units, and a second outlet pipe through which the fluid flows out to an outdoor unit different from the outdoor unit to which the fluid flows from the first outlet pipe, wherein the first outlet pipe has a higher back pressure in the direction opposite to the flow direction of the fluid than the second outflow pipe, and the cross-sectional area ratio between the first outflow pipe and the second outflow pipe is set so that the ratio of the value of the first outflow pipe to the value of the second outflow pipe is larger than the target distribution ratio of the fluid between the first outflow pipe and the second outflow pipe.
[0010] The air conditioning apparatus according to the present disclosure includes the refrigerant pipe including the refrigerant distribution pipe, a plurality of the outdoor units, and the indoor units.
[0011] According to the refrigerant distribution pipe and air conditioner of the present disclosure, it is possible to prevent the actual distributed flow rate of refrigeration oil from deviating from the target flow rate.
[0012] 12. An overall configuration diagram of an air conditioning apparatus according to a first embodiment of the present disclosure. A plan view of a refrigerant distribution pipe according to the first embodiment of the present disclosure. A side view of a refrigerant distribution pipe according to the first embodiment of the present disclosure. A cross-sectional view taken along line IV-IV of FIG. 2. A diagram showing a case where a refrigerant distribution pipe according to a comparative example to the first embodiment of the present disclosure is used. A diagram explaining the functions and effects of the refrigerant distribution pipe according to the first embodiment of the present disclosure. A cross-sectional view of a refrigerant distribution pipe according to a modified example of the first embodiment of the present disclosure. A cross-sectional view of a refrigerant distribution pipe according to a second embodiment of the present disclosure. A diagram showing a case where a refrigerant distribution pipe according to a comparative example to the second embodiment of the present disclosure is used. A diagram explaining the functions and effects of the refrigerant distribution pipe according to the second embodiment of the present disclosure. A cross-sectional view of a refrigerant distribution pipe according to a modified example of the second embodiment of the present disclosure. A plan view of a refrigerant distribution pipe according to a third embodiment of the present disclosure. A cross-sectional view taken along line XIII-XIII of FIG. 12. A cross-sectional view taken along line XIV-XIV of FIG. 12. A plan view of a refrigerant distribution pipe according to a modified example of the third embodiment of the present disclosure. A cross-sectional view of a refrigerant distribution pipe according to a fourth embodiment of the present disclosure. A diagram showing a case where a refrigerant distribution pipe according to a comparative example to the fourth embodiment of the present disclosure is used. A diagram explaining the functions and effects of the refrigerant distribution pipe according to the fourth embodiment of the present disclosure. Fig. 10 is a cross-sectional view of a refrigerant distribution pipe according to a fifth embodiment of the present disclosure; Fig. 11 is a diagram showing a case where a refrigerant distribution pipe according to a comparative example to the fifth embodiment of the present disclosure is used; Fig. 12 is a diagram explaining the action and effect of the refrigerant distribution pipe according to the fifth embodiment of the present disclosure; Fig. 13 is a cross-sectional view of a refrigerant distribution pipe according to a modified example of the fifth embodiment of the present disclosure;
[0013] <First embodiment> (Configuration of air conditioning device) A refrigerant distribution pipe 10 and an air conditioning device 100 according to a first embodiment of the present disclosure will be described below with reference to Figs. 1 to 7. As shown in Fig. 1, the air conditioning device 100 includes an indoor unit 1, an outdoor unit 2, a refrigerant pipe 3, and a control unit 4. The air conditioning device 100 of this embodiment is a so-called multi-air conditioner in which multiple indoor units 1 are provided. The air conditioning device 100 is used, for example, in a building. Similarly to the indoor units 1, multiple outdoor units 2 are provided. Below, an example will be described in which three indoor units 1 and three outdoor units 2 are provided.
[0014] Each indoor unit 1 includes a cooling expansion valve (not shown) and an indoor heat exchanger (not shown), and each outdoor unit 2 includes a compressor 2a, an outdoor heat exchanger (not shown), and a heating expansion valve (not shown).
[0015] The refrigerant pipes 3 connect the indoor units 1 and the outdoor units 2. A fluid F, such as an air-conditioning refrigerant, flows through the refrigerant pipes 3. The refrigerant pipes 3 include a gas pipe 3a and a liquid pipe 3b. The gas pipe 3a and the liquid pipe 3b both connect the indoor units 1 and the outdoor units 2. During normal operation, gas refrigerant flows through the gas pipe 3a, and liquid refrigerant flows through the liquid pipe 3b. Here, normal operation refers to cooling operation and heating operation when the oil return operation, which will be described later, is not performed.
[0016] The gas pipe 3a includes an indoor gas pipe 5, a main pipe 6, a refrigerant distribution pipe 10, and an outdoor branch pipe 7. In this embodiment, two refrigerant distribution pipes 10 are provided. One of the two refrigerant distribution pipes 10 is referred to as a first refrigerant distribution pipe 10a, and the other is referred to as a second refrigerant distribution pipe 10b.
[0017] The indoor gas pipe 5 connects the indoor units 1 to the main pipe 6, and the main pipe 6 connects the indoor gas pipe 5 to the first refrigerant distribution pipe 10a. The main pipe 6 is a straight pipe having a length of, for example, 500 mm or more.
[0018] The outdoor branch pipe 7 is connected to the main pipe 6 via a refrigerant distribution pipe 10. In this embodiment, the outdoor branch pipe 7 includes a first outdoor branch pipe 7a and a second outdoor branch pipe 7b. Three first outdoor branch pipes 7a are provided, and one of the first outdoor branch pipes 7a extends from one outdoor unit 2 and is connected to a first refrigerant distribution pipe 10a. The other two first outdoor branch pipes 7a extend from the remaining two outdoor units 2, respectively, and are connected to a second refrigerant distribution pipe 10b. The second outdoor branch pipe 7b connects the second refrigerant distribution pipe 10b and the first refrigerant distribution pipe 10a. The second outdoor branch pipe 7b is a straight pipe having a length of, for example, 500 mm or more.
[0019] The air conditioning apparatus 100 described above can perform cooling operation to cool indoor air and heating operation to heat indoor air. During cooling operation, the outdoor heat exchanger functions as a condenser, and the indoor heat exchanger functions as an evaporator. The compressor 2a, the outdoor heat exchanger, the cooling expansion valve, and the indoor heat exchanger form a refrigerant circuit.
[0020] During cooling operation, high-temperature, high-pressure gas refrigerant discharged from the compressor 2a of the outdoor unit 2 is sent to the outdoor heat exchanger, where it condenses and liquefies by exchanging heat with outdoor air. This liquid refrigerant flows into the indoor unit 1 via the liquid pipe 3b. The liquid refrigerant then undergoes adiabatic expansion as it passes through the cooling expansion valve, and is then sent to the indoor heat exchanger, where it evaporates by cooling the indoor air. The refrigerant that has absorbed heat in the indoor heat exchanger and turned into gas flows into the outdoor unit 2 via the gas pipe 3a and is sent to the compressor 2a.
[0021] During heating operation, the indoor heat exchanger functions as a condenser, and the outdoor heat exchanger functions as an evaporator. The compressor 2a, the indoor heat exchanger, the heating expansion valve, and the outdoor heat exchanger form a refrigerant circuit.
[0022] During heating operation, a four-way valve (not shown) provided in the outdoor unit 2 is switched to a different direction from that during cooling operation. Refrigerant discharged from the compressor 2a of the outdoor unit 2 flows through the gas pipe 3a into the indoor heat exchanger of the indoor unit 1, where it condenses and liquefies by releasing heat to the indoor air. This liquid refrigerant flows into the outdoor unit 2 through the liquid pipe 3b. The liquid refrigerant then undergoes adiabatic expansion as it passes through the heating expansion valve of the outdoor unit 2, and is then sent to the outdoor heat exchanger, where it evaporates by absorbing heat from the outdoor air. This gas refrigerant is then sent to the compressor 2a of the outdoor unit 2.
[0023] Furthermore, refrigeration oil is used in the compressor 2a of the outdoor unit 2 in the air conditioner 100 to lubricate the sliding parts inside the compressor 2a. The refrigeration oil prevents burnout in the compressor 2a. A portion of this refrigeration oil flows through the refrigerant circuit, including the indoor heat exchanger and outdoor heat exchanger, together with the refrigerant discharged from the compressor 2a, and is then recovered back into the compressor 2a.
[0024] If this refrigeration oil adheres to the heat exchanger or the inner walls of the refrigerant pipes 3 as it flows through the refrigerant circuit, it will impede heat transfer and reduce the amount of refrigeration oil returned to the compressor 2a, resulting in insufficient lubrication of the compressor 2a. Therefore, in the air conditioning apparatus 100 of this embodiment, in order to recover the refrigeration oil that has adhered and accumulated on the heat exchanger or the inner walls of the refrigerant pipes 3, a so-called oil return operation is performed to periodically recover refrigeration oil to the compressor 2a side.
[0025] In the oil return operation, the control unit 4 controls the flow rate of the refrigerant so that the compressors 2a in all the outdoor units 2 draw in and discharge the refrigerant at the same flow rate. This allows refrigeration oil to be collected evenly in all the outdoor units 2.
[0026] The operation of the oil return operation will be described below. During cooling operation, the control unit 4 starts the refrigeration oil recovery operation at a specified timing. During cooling operation, the refrigeration oil recovery operation reduces the rotation speed of the fan (not shown) of the indoor unit 1 and increases the opening of the flow control valve (not shown) beyond a specified value. As a result, the amount of evaporation in the indoor heat exchanger is reduced, allowing the refrigerant to circulate in a liquid phase. Then, the refrigeration oil adhering to the indoor heat exchanger and the wall of the gas pipe 3a, etc., is recovered together with the liquid refrigerant into an accumulator (not shown) on the outdoor unit 2 side, and the refrigeration oil is returned to the compressor 2a through the oil return pipe of the accumulator.
[0027] On the other hand, during heating operation, the control unit 4 starts the refrigeration oil recovery operation at a specified timing. During the refrigeration oil recovery operation during heating, the fan of the indoor unit 1 is first stopped to stop the indoor air conditioning. Then, to circulate the refrigerant in the same direction as during cooling operation, the four-way valve is switched to a direction different from that used during normal heating operation. Then, high-temperature, high-pressure gas refrigerant compressed by the compressor 2a of the outdoor unit 2 is guided to the outdoor heat exchanger, where it is condensed and liquefied into liquid refrigerant. This liquid refrigerant flows into the liquid pipe 3b and is guided to the indoor unit 1 via the liquid pipe 3b. The liquid refrigerant does not undergo heat exchange in the indoor heat exchanger, but remains in liquid form and is guided back to the outdoor unit 2 via the gas pipe 3a. The liquid refrigerant that has flowed into the outdoor unit 2 is returned to the compressor 2a via the accumulator. This allows the refrigeration oil that has diffused in the indoor heat exchanger and liquid pipe 3b to be returned to the compressor 2a.
[0028] Thus, in oil return operation, not only refrigerant but also refrigerating machine oil flows through the refrigerant pipe 3. That is, the fluid F flowing through the refrigerant pipe 3 contains refrigerant and refrigerating machine oil, and by evenly distributing this fluid F to each outdoor unit 2, it is possible to evenly supply refrigerating machine oil to each outdoor unit 2. In this embodiment, the following configuration is adopted for the refrigerant distribution pipe 10 in order to more evenly distribute the fluid F containing air-conditioning refrigerant and refrigerating machine oil.
[0029] (Configuration of Refrigerant Distribution Pipe) Next, the configuration of the refrigerant distribution pipe 10 will be described. The refrigerant distribution pipe 10 is used in the refrigerant pipe 3 connecting the indoor unit 1 and multiple outdoor units 2 each having a compressor 2a, and is a piping member that distributes a fluid F containing an air-conditioning refrigerant and a refrigeration oil for lubricating the compressors 2a to the multiple outdoor units 2. While the fluid F flowing through the refrigerant distribution pipe 10 is assumed to be primarily a liquid (liquid phase), the fluid F may also contain a gas (gas phase). Furthermore, the fluid F flowing through the refrigerant distribution pipe 10 may be composed of only a liquid phase or only a gas phase. As described above, two refrigerant distribution pipes 10 are provided in this embodiment, and the one directly connected to one main pipe 6 is designated as the first refrigerant distribution pipe 10a, and the other is designated as the second refrigerant distribution pipe 10b.
[0030] The first refrigerant distribution pipe 10a and the second refrigerant distribution pipe 10b have the same configuration. Therefore, the configuration of the refrigerant distribution pipe 10 will be described using the second refrigerant distribution pipe 10b as an example, and the description of the configuration of the first refrigerant distribution pipe 10a will be omitted as appropriate.
[0031] 2, the second refrigerant distribution pipe 10b includes an inlet pipe 11, a connection part 12, a first outlet pipe 13, and a second outlet pipe 14. In the following description of each component such as the inlet pipe 11, the connection part 12, the first outlet pipe 13, and the second outlet pipe 14, as a general rule, the term "cross section" refers to the cross section of the flow path space through which the fluid F flows, and is perpendicular to the flow direction of the fluid F, and the term "cross-sectional area" refers to the cross-sectional area of the flow path space through which the fluid F flows.
[0032] The inlet pipe 11 opens to the indoor unit 1 side. A fluid F containing a refrigerant and a lubricating refrigeration oil flows into the inlet pipe 11 during oil return operation. The inlet pipe 11 of the second refrigerant distribution pipe 10b is connected to the main pipe 6. The inlet pipe 11 is a straight pipe extending linearly in one direction. In this embodiment, the inlet pipe 11 is a circular pipe with a circular cross section.
[0033] The connection portion 12 extends in one direction from the end of the inflow pipe 11. Hereinafter, the extension direction De of the connection portion 12 will be simply referred to as the "extension direction De." Furthermore, one of the directions perpendicular to the extension direction De will be referred to as the "first direction D1," and the direction perpendicular to the extension direction De and the first direction D1 will be referred to as the "second direction D2." In this embodiment, the connection portion 12 extends linearly in the same direction as the inflow pipe 11. That is, the inflow pipe 11 extends in the extension direction De.
[0034] The fluid F that has flowed into the inlet pipe 11 flows through the connecting portion 12. The connecting portion 12 connects the inlet pipe 11 to the first outlet pipe 13 and the second outlet pipe 14. The connecting portion 12 has an inlet portion 12a, a tapered portion 12b, and a branch portion 12c.
[0035] The inlet portion 12a is provided at the end of the connecting portion 12 on the inlet pipe 11 side in the extension direction De. The inlet portion 12a has an inlet opening 15 connected to the inlet pipe 11. The inlet opening 15 opens in the extension direction De and communicates with the inlet pipe 11. The fluid F is supplied to the inlet opening 15 from the inlet pipe 11.
[0036] The tapered portion 12b extends from the inlet portion 12a in the extension direction De toward the opposite side to the inlet pipe 11. When viewed from the second direction D2, the tapered portion 12b is formed in a tapered (trapezoidal) shape that gradually widens in the first direction D1 as it moves away from the inlet portion 12a in the extension direction De. Also, as shown in FIG. 3 , when viewed from the first direction D1, the tapered portion 12b gradually inclines toward one side in the second direction D2 as it moves away from the inlet portion 12a in the extension direction De. The surface of the tapered portion 12b on the other side in the second direction D2 has a smaller inclination angle than the surface of the tapered portion 12b on one side in the second direction D2.
[0037] The branch portion 12c is provided at the end of the connecting portion 12 opposite the inlet pipe 11 side in the extension direction De. The branch portion 12c includes a first branch pipe 12c1, a second branch pipe 12c2, and a connecting wall 12d. The first branch pipe 12c1 and the second branch pipe 12c2 are arranged side by side in the first direction D1. The first branch pipe 12c1 and the second branch pipe 12c2 both extend in the extension direction De and communicate with the tapered portion 12b. The connecting wall 12d is provided between the first branch pipe 12c1 and the second branch pipe 12c2 in the first direction D1. As shown in FIG. 4 , the connecting wall 12d is curved so as to protrude toward the center 15a of the inlet opening 15 in the second direction D2 when viewed from the extension direction De.
[0038] The first branch pipe 12c1 has a first outlet opening 16 at its end opposite the tapered portion 12b in the extension direction De. The second branch pipe 12c2 has a second outlet opening 17 at its end opposite the tapered portion 12b in the extension direction De. The first outlet opening 16 and the second outlet opening 17 are arranged side by side in the first direction D1. As shown in FIG. 4 , the center 16a of the cross section of the first outlet opening 16 and the center 17a of the cross section of the second outlet opening 17 are located on one side of the center 15a of the cross section of the inlet opening 15 in the second direction D2. The center 15a of the cross section of the inlet opening 15 is the center of gravity of the cross section of the inlet opening 15, the center 16a of the cross section of the first outlet opening 16 is the center of gravity of the cross section of the first outlet opening 16, and the center 17a of the cross section of the second outlet opening 17 is the center of gravity of the cross section of the second outlet opening 17. In this embodiment, the cross section of the first outlet opening 16 and the cross section of the second outlet opening 17 are formed in a circular shape.
[0039] Furthermore, the center 16a of the cross section of the first outlet opening 16 and the center 17a of the cross section of the second outlet opening 17 are located closer to the center 15a of the inlet opening 15 in the first direction D1 than the ends 11a1 on both sides of the outer wall surface 11a of the inlet pipe 11. In the illustrated example, the center 16a of the cross section of the first outlet opening 16 and the center 17a of the cross section of the second outlet opening 17 are located closer to the center 15a of the inlet opening 15 than the outer wall surface 11a of the inlet pipe 11 (radially inward from the outer wall surface 11a of the inlet pipe 11) when viewed from the extension direction De.
[0040] The fluid F that flows into the connecting portion 12 through the inlet opening 15 flows out of the connecting portion 12 through the first outlet opening 16 and the second outlet opening 17. A first outlet pipe 13 is connected to the first outlet opening 16, and a second outlet pipe 14 is connected to the second outlet opening 17. The first outlet pipe 13 and the second outlet pipe 14 are provided on the opposite side of the connecting portion 12 from the inlet pipe 11 in the extension direction De.
[0041] The first outlet pipe 13 communicates with the connecting portion 12 at a first outlet opening 16, and allows the fluid F that has flowed in from the inlet pipe 11 to flow out to the outdoor unit 2. The first outlet pipe 13 of this embodiment is a curved pipe that is shaped like an L when viewed from the second direction D2. The first outlet pipe 13 is a curved pipe that has a first straight pipe portion 18, a curved portion 19, and a second straight pipe portion 20.
[0042] The first straight pipe section 18 extends linearly from the connection section 12 in the extension direction De. The curved section 19 is provided at the end of the first straight pipe section 18 opposite the connection section 12 in the extension direction De. The curved section 19 curves in the first direction D1 so as to move away from the second outlet opening 17 as the curved section 19 moves away from the first straight pipe section 18 in the extension direction De. The second straight pipe section 20 extends linearly from the curved section 19 in the first direction D1.
[0043] The second outlet pipe 14 communicates with the connecting portion 12 via a second outlet opening 17, and is arranged alongside the first outlet pipe 13 in the first direction D1. The second outlet pipe 14 causes the fluid F that has flowed in from the inlet pipe 11 to flow out to an outdoor unit 2 different from the outdoor unit 2 to which the fluid is directed from the first outlet pipe 13. The second outlet pipe 14 in this embodiment is a straight pipe that extends in the extension direction De.
[0044] In this embodiment, the first outflow pipe 13 and the second outflow pipe 14 are both circular pipes with circular cross sections.
[0045] As described above, the first refrigerant distribution pipe 10a has the same configuration as the second refrigerant distribution pipe 10b. That is, the first refrigerant distribution pipe 10a includes an inlet pipe 11, a connection portion 12, a first outlet pipe 13, and a second outlet pipe 14. However, the first refrigerant distribution pipe 10a and the second refrigerant distribution pipe 10b differ in the following respects.
[0046] In the first refrigerant distribution pipe 10a, the first outflow pipe 13 is connected to the first outdoor branch pipe 7a extending from one outdoor unit 2, and the second outflow pipe 14 is connected to the second outdoor branch pipe 7b connecting the first refrigerant distribution pipe 10a and the second refrigerant distribution pipe 10b. Furthermore, the second refrigerant distribution pipe 10b is connected to the remaining two outdoor units 2 via two first outdoor branch pipes 7a. In the second refrigerant distribution pipe 10b, the first outflow pipe 13 and the second outflow pipe 14 are both connected to the first outdoor branch pipes 7a extending from each of the remaining two outdoor units 2. In the first refrigerant distribution pipe 10a, the cross-sectional area of the second outflow pipe 14 is designed to be larger than the cross-sectional area of the first outflow pipe 13. On the other hand, in the second refrigerant distribution pipe 10b, the cross-sectional areas of the first outflow pipe 13 and the second outflow pipe 14 are designed to be approximately the same.
[0047] (Arrangement of inlet pipe, first outlet pipe, and second outlet pipe) Hereinafter, the arrangement of the inlet pipe 11, the first outlet pipe 13, and the second outlet pipe 14 will be described using the second refrigerant distribution pipe 10b of the refrigerant distribution pipe 10 as an example.
[0048] As shown in Figure 4, the center 21 of the cross section of the inlet pipe 11 is located on the other side of the second direction D2 relative to the center 16a of the cross section of the first outlet opening 16 and the center 17a of the cross section of the second outlet opening 17 throughout the entire inlet pipe 11.
[0049] Furthermore, the center 22 of the cross section of the first outflow pipe 13 is located on one side of the center 15a of the cross section of the inflow opening 15 in the second direction D2 throughout the first outflow pipe 13. Furthermore, the center 23 of the cross section of the second outflow pipe 14 is located on one side of the center 15a of the cross section of the inflow opening 15 in the second direction D2 throughout the second outflow pipe 14. Here, the center 21 of the cross section of the inflow pipe 11 is the center of gravity of the cross section of the inflow pipe 11, the center 22 of the cross section of the first outflow pipe 13 is the center of gravity of the cross section of the first outflow pipe 13, and the center 23 of the cross section of the second outflow pipe 14 is the center of gravity of the cross section of the second outflow pipe 14. In this embodiment, the entire first outflow pipe 13 and the entire second outflow pipe 14 are located on one side of the center 15a of the cross section of the inflow opening 15 in the second direction D2.
[0050] Further, the first outflow pipe 13 and the second outflow pipe 14 are disposed closer to the inflow pipe 11 in the first direction D1. More specifically, near the connection portion 12, the center 22 of the cross section of the first outflow pipe 13 and the center 23 of the cross section of the second outflow pipe 14 are located closer to the center 21 of the inflow pipe 11 in the first direction D1 than the ends 11a1 on both sides of the outer wall surface 11a of the inflow pipe 11. In the illustrated example, near the connection portion 12, the center 22 of the cross section of the first outflow pipe 13 and the center 23 of the cross section of the second outflow pipe 14 are located closer to the center 21 of the inflow pipe 11 than the outer wall surface 11a of the inflow pipe 11 when viewed from the extension direction De (radially inward from the outer wall surface 11a of the inflow pipe 11).
[0051] In this embodiment, at the connection portion 12, the center 15a of the inlet opening 15 and the center 21 of the cross section of the inlet pipe 11 overlap in the extension direction De, the center 16a of the first outlet opening 16 and the center 22 of the cross section of the first outlet pipe 13 overlap in the extension direction De, and the center 17a of the second outlet opening 17 and the center 23 of the cross section of the second outlet pipe 14 overlap in the extension direction De.
[0052] (Operations and Effects) The refrigerant distribution pipe 10 having the above configuration can exhibit the following operations and effects.
[0053] The refrigerant distribution pipe 10 of this embodiment is used in the refrigerant pipe 3 connecting multiple outdoor units 2 with compressors 2a and indoor units 1, and distributes a fluid F containing an air-conditioning refrigerant and a refrigerating machine oil for lubricating the compressors 2a to the multiple outdoor units 2. The refrigerant distribution pipe 10 includes an inlet pipe 11, a connection portion 12, a first outlet pipe 13, and a second outlet pipe 14. The fluid F flows into the inlet pipe 11. The connection portion 12 extends in one direction (extension direction De) from the end of the inlet pipe 11. The connection portion 12 has an inlet opening 15 communicating with the inlet pipe 11 at an end on the inlet pipe 11 side in the extension direction De, and a first outlet opening 16 and a second outlet opening 17 at an end opposite the inlet pipe 11 in the extension direction De. The first outlet opening 16 and the second outlet opening 17 are arranged side by side in the first direction D1. The center 16 a of the cross section of the first outlet opening 16 and the center 17 a of the cross section of the second outlet opening 17 are located on one side of the center 15 a of the cross section of the inlet opening 15 in the second direction D2 .
[0054] As a comparative example, consider a conventional refrigerant distribution pipe 10R as shown in Figure 5. This refrigerant distribution pipe 10R includes an inlet pipe 11R, a connection portion 12R, a first outlet pipe 13R, and a second outlet pipe 14R. The cross-sectional centers 16aR of the first outlet opening 16R and 17aR of the second outlet opening 17R are located at the same position in the second direction D2 relative to the center 15aR of the inlet opening 15. In this refrigerant distribution pipe 10R, at the connection portion 12R, the cross-sectional centers 15aR of the inlet opening 15R and 21R of the inlet pipe 11R overlap in the extension direction De, the cross-sectional centers 16aR of the first outlet opening 16R and 22R of the first outlet pipe 13R overlap in the extension direction De, and the cross-sectional centers 17aR of the second outlet opening 17R and 23R of the second outlet pipe 14R overlap in the extension direction De. Therefore, the center 22R of the cross section of the first outflow pipe 13R and the center 23R of the cross section of the second outflow pipe 14R are located at the same position in the second direction D2 with respect to the center 21R of the inflow pipe 11R. Such a refrigerant distribution pipe 10R is usually installed so that the inflow pipe 11R is along a horizontal plane.
[0055] When the refrigerant distribution pipe 10R is not filled with the fluid F, for example, if the refrigerant distribution pipe 10R is installed at an angle so that the first direction D1 intersects with a horizontal plane, the liquid level S of the fluid F will be inclined with respect to the first direction D1 as shown in Fig. 5. Also, if the downstream side of the first outflow pipe 13R is a curved pipe, the fluid F will be subjected to back pressure in the curved pipe in the opposite direction to the flow direction, and the liquid level S of the fluid F will be inclined with respect to the first direction D1.
[0056] When the liquid level S of the fluid F is inclined with respect to the first direction D1, the amount of fluid F distributed between the first outflow pipe 13R and the second outflow pipe 14R becomes significantly biased. Therefore, in the conventional refrigerant distribution pipe 10R, the actual distributed flow rate of refrigeration oil deviates significantly from the target distributed flow rate (hereinafter referred to as the "target flow rate"). Note that Figure 5 illustrates both the case where the liquid level S of the fluid F is high level HS and the case where it is low level LS, and in both cases, the amount of fluid F distributed between the first outflow pipe 13R and the second outflow pipe 14R becomes significantly biased.
[0057] In contrast, according to this embodiment, when the refrigerant distribution pipe 10 is installed so that the inlet pipe 11 is aligned along a horizontal plane, both the first outlet pipe 13 and the second outlet pipe 14 can be positioned vertically below the inlet pipe 11. As a result, even if the liquid level S of the fluid F is inclined with respect to the first direction D1 as shown in FIG. 6 , unevenness in the amount of fluid F distributed between the first outlet pipe 13 and the second outlet pipe 14 is suppressed. Whether the liquid level S of the fluid F is high (HS) or low (LS), unevenness in the amount of fluid F distributed between the first outlet pipe 13 and the second outlet pipe 14 is suppressed. This suppresses unevenness in the amount of refrigerating machine oil supplied to each outdoor unit 2. Therefore, deviation of the actual distributed flow rate of refrigerating machine oil from the target flow rate is suppressed.
[0058] In this embodiment, the entire first outflow pipe 13 and the entire second outflow pipe 14 are located on one side of the center 15a of the cross section of the inflow opening 15 in the second direction D2.
[0059] This further reduces the unevenness in the amount of fluid F distributed between the first outflow pipe 13 and the second outflow pipe 14. This further reduces the unevenness in the amount of refrigerating machine oil supplied to each outdoor unit 2. This further reduces the deviation of the actual distributed flow rate of refrigerating machine oil from the target flow rate.
[0060] In this embodiment, at the connection portion 12, the center 16a of the cross section of the first outlet opening 16 and the center 17a of the cross section of the second outlet opening 17 are located closer to the center 21 of the cross section of the inlet pipe 11 in the first direction D1 than the ends 11a1 on both sides of the outer wall surface 11a of the inlet pipe 11.
[0061] This further reduces the unevenness in the amount of fluid F distributed between the first outflow pipe 13 and the second outflow pipe 14. This further reduces the unevenness in the amount of refrigerating machine oil supplied to each outdoor unit 2. This further reduces the deviation of the actual distributed flow rate of refrigerating machine oil from the target flow rate.
[0062] In the first embodiment, the entire first outflow pipe 13 and the entire second outflow pipe 14 are located on one side of the center 21 of the cross section of the inflow pipe 11 in the second direction D2, but this is not limited to this. For example, in a cross section perpendicular to the extension direction De, a portion of the first outflow pipe 13 and a portion of the second outflow pipe 14 may be located on the other side of the center 21 of the cross section of the inflow pipe 11 in the second direction D2.
[0063] In the first embodiment, the center 16a of the cross section of the first outlet opening 16 and the center 17a of the cross section of the second outlet opening 17 are located closer to the center 15a of the cross section of the inlet opening 15 than the outer wall surface 11a of the inlet pipe 11 when viewed from the extension direction De (i.e., radially inward in the inlet pipe 11). However, this is not limited to this. For example, the center 16a of the cross section of the first outlet opening 16 and the center 17a of the cross section of the second outlet opening 17 may be located farther from the center 15a of the cross section of the inlet opening 15 than the outer wall surface 11a of the inlet pipe 11 when viewed from the extension direction De (i.e., radially outward from the outer wall surface 11a of the inlet pipe 11). Furthermore, as shown in FIG. 7 , in the first direction D1, the center 16a of the cross section of the first outlet opening 16 and the center 17a of the cross section of the second outlet opening 17 may be located outside the tangent to the outer wall surface 11a at the end 11a1 or on the tangent to the outer wall surface 11a at the end 11a1 when viewed from the extension direction De.
[0064] In the first embodiment, the cross sections of the inlet opening 15, the first outlet opening 16, and the second outlet opening 17 are circular, but this is not limiting. The cross sections of the inlet opening 15, the first outlet opening 16, and the second outlet opening 17 may be polygonal or irregularly shaped with a protruding or recessed portion. In this case, too, the center 15a of the cross section of the inlet opening 15 is the center of gravity of the cross section of the inlet opening 15, the center 16a of the cross section of the first outlet opening 16 is the center of gravity of the cross section of the first outlet opening 16, and the center 17a of the cross section of the second outlet opening 17 is the center of gravity of the cross section of the second outlet opening 17.
[0065] In the first embodiment, the cross sections of the inlet pipe 11, the first outlet pipe 13, and the second outlet pipe 14 in the flow direction are circular, but this is not limited to this. The cross sections of the inlet pipe 11, the first outlet pipe 13, and the second outlet pipe 14 in the flow direction may be polygonal or may be irregularly shaped with a protruding or recessed portion. In this case, too, the center 21 of the cross section of the inlet pipe 11 is the center of gravity of the cross section of the inlet pipe 11, the center 22 of the first outlet pipe 13 is the center of gravity of the cross section of the first outlet pipe 13, and the center 23 of the cross section of the second outlet pipe 14 is the center of gravity of the cross section of the second outlet pipe 14.
[0066] Second Embodiment A refrigerant distribution pipe 210 and an air conditioning apparatus 100 according to a second embodiment of the present disclosure will be described below with reference to Fig. 8 to Fig. 11. Configurations similar to those in the first embodiment will be given the same names and reference numerals as in the first embodiment, and descriptions thereof will be omitted as appropriate.
[0067] 8, in the refrigerant distribution pipe 210 of this embodiment, the first outlet pipe 213 and the second outlet pipe 214 are rectangular pipes. The shapes of the first outlet pipe 213 and the second outlet pipe 214 will be described using the first refrigerant distribution pipe 210a as an example, and description of the second refrigerant distribution pipe 210b will be omitted as appropriate.
[0068] In a cross-sectional view perpendicular to the extension direction De, the cross sections of the first outflow pipe 213 and the second outflow pipe 214 are shaped like rectangles having one side extending in the second direction D2. The first outflow pipe 213 is shaped so that both ends of the first outflow pipe 213 in the second direction D2 overlap with both ends of the inflow pipe 11 in the second direction D2 in the extension direction De. Similarly, the second outflow pipe 214 is shaped so that both ends of the second outflow pipe 214 in the second direction D2 overlap with both ends of the inflow pipe 11 in the second direction D2 in the extension direction De.
[0069] Furthermore, in the first refrigerant distribution pipe 210a, similar to the first embodiment, the cross-sectional area of the second outflow pipe 214 is designed to be larger than the cross-sectional area of the first outflow pipe 213. More specifically, while the dimensions L2a, L2b in the second direction D2 of both the first outflow pipe 213 and the second outflow pipe 214 are maintained, the dimension L1b in the first direction D1 of the second outflow pipe 214 is made larger than the dimension L1a in the first direction D1 of the first outflow pipe 213.
[0070] On the other hand, in the second refrigerant distribution pipe 210b, the cross-sectional areas of the first outflow pipe 213 and the second outflow pipe 214 are designed to be approximately the same, as in the first embodiment. More specifically, the dimensions L2a, L2b in the second direction D2 of both the first outflow pipe 213 and the second outflow pipe 214 are maintained, and the dimension L1a of the first outflow pipe 213 in the first direction D1 and the dimension L1b of the second outflow pipe 214 in the first direction D1 are designed to be approximately the same.
[0071] (Operational Effects) The refrigerant distribution pipe 210 configured as described above can exhibit the following operational effects.
[0072] In this embodiment, the first outflow pipe 213 and the second outflow pipe 214 are rectangular pipes, and when viewed in a cross section perpendicular to the extension direction De, the cross section of the first outflow pipe 213 and the cross section of the second outflow pipe 214 are shaped like a rectangle along the first direction D1 and the second direction D2.
[0073] As a comparative example, consider a conventional refrigerant distribution pipe 210R as shown in Fig. 9. In this refrigerant distribution pipe 210R, the cross sections of the first outlet pipe 213R and the second outlet pipe 214R are circular when viewed in a cross section perpendicular to the extension direction De. This type of refrigerant distribution pipe 210R is usually installed so that the inlet pipe 11R is aligned along a horizontal plane.
[0074] 9, when the height of the liquid level S of the fluid F changes, the cross-sectional area ratio of the fluid F between the first outflow pipe 213R and the second outflow pipe 214R changes. Therefore, in the conventional refrigerant distribution pipe 210R, the actual distribution flow rate of the refrigeration oil significantly deviates from the target distribution flow rate (hereinafter referred to as the "target flow rate").
[0075] In contrast, according to this embodiment, by installing the refrigerant distribution pipe 210 so that the inlet pipe 11 is aligned along a horizontal plane, the first outlet pipe 213 and the second outlet pipe 214 can be arranged so that the rectangular cross section of the first outlet pipe 213 and the rectangular cross section of the second outlet pipe 214 extend vertically. As a result, even if the liquid level S of the fluid F changes as shown in Fig. 10, the cross-sectional area ratio occupied by the fluid F in the first outlet pipe 213 and the second outlet pipe 214 can be maintained constant. Therefore, it is possible to prevent the actual distributed flow rate of refrigeration oil from deviating from the target flow rate.
[0076] 11 , the configuration of the second embodiment may be combined with the first embodiment. That is, the first outlet pipe 213 and the second outlet pipe 214 may be formed into a rectangular shape as described above, and the center 16a of the cross section of the first outlet opening 16 and the center 17a of the cross section of the second outlet opening 17 may be located on one side of the center 15a of the cross section of the inlet opening 15 in the second direction D2. Furthermore, the entire first outlet pipe 213 and the entire second outlet pipe 214 may be located on one side of the center 15a of the cross section of the inlet opening 15 in the second direction D2. Furthermore, the center 16a of the cross section of the first outlet opening 16 and the center 17a of the cross section of the second outlet opening 17 may be located closer to the center 15a of the cross section of the inlet opening 15 than both end portions 11a1 of the outer wall surface 11a of the inlet pipe 11 in the first direction D1.
[0077] Third Embodiment A refrigerant distribution pipe 10X and an air conditioning apparatus 100 according to a third embodiment of the present disclosure will be described below with reference to Fig. 12 to Fig. 14. Configurations similar to those in the above embodiments will be designated by the same names and reference numerals as in the above embodiments, and descriptions thereof will be omitted as appropriate.
[0078] In this embodiment, the first refrigerant distribution pipe 10aX and the second refrigerant distribution pipe 10bX have the same configuration. Therefore, the configuration of the refrigerant distribution pipe 10X will be described using the first refrigerant distribution pipe 10aX as an example, and the description of the configuration of the second refrigerant distribution pipe 10bX will be omitted as appropriate.
[0079] As shown in FIG. 12, the first refrigerant distribution pipe 10aX includes an inlet pipe 11X, a connection portion 12X, a first outlet pipe 13X, and a second outlet pipe 14X.
[0080] The inlet pipe 11X opens to the indoor unit 1 side. A fluid F containing a refrigerant and a lubricating refrigeration oil flows into the inlet pipe 11X during oil return operation. The inlet pipe 11X of the first refrigerant distribution pipe 10aX is connected to the main pipe 6. The inlet pipe 11X is a straight pipe extending linearly in one direction. In this embodiment, the inlet pipe 11X is a circular pipe with a circular cross section.
[0081] The connecting portion 12X extends in one direction (extension direction De) from the end of the inflow pipe 11X. In this embodiment, the connecting portion 12X extends linearly in the same direction as the inflow pipe 11X. That is, the inflow pipe 11X extends in the extension direction De.
[0082] The fluid F that has flowed into the inlet pipe 11X flows through the connection portion 12X. The connection portion 12X connects the inlet pipe 11X to the first outlet pipe 13X and the second outlet pipe 14X. The connection portion 12X has an inlet portion 12aX, a tapered portion 12bX, and a branch portion 12cX.
[0083] The inlet portion 12aX is provided at the end of the connection portion 12X on the inlet pipe 11X side in the extension direction De. The inlet portion 12aX has an inlet opening 15X connected to the inlet pipe 11X. The inlet opening 15X opens in the extension direction De and communicates with the inlet pipe 11X. The fluid F is supplied to the inlet opening 15X from the inlet pipe 11X.
[0084] The tapered portion 12bX extends from the inlet portion 12aX in the extension direction De to the opposite side to the inlet pipe 11X. When viewed from the second direction D2, the tapered portion 12bX is formed in a tapered (trapezoidal) shape that gradually widens in the first direction D1 as it moves away from the inlet portion 12aX in the extension direction De.
[0085] The branch portion 12cX is provided at the end of the connecting portion 12X opposite the inlet pipe 11X side in the extension direction De. The branch portion 12cX has a first branch pipe 12c1X, a second branch pipe 12c2X, and a connecting wall 12dX. The first branch pipe 12c1X and the second branch pipe 12c2X are arranged side by side in the first direction D1. The first branch pipe 12c1X and the second branch pipe 12c2X both extend in the extension direction De and communicate with the tapered portion 12bX. The connecting wall 12dX is provided between the first branch pipe 12c1X and the second branch pipe 12c2X in the first direction D1.
[0086] The first branch pipe 12c1X has a first outlet opening 16X at an end opposite the tapered portion 12bX in the extension direction De. The second branch pipe 12c2X has a second outlet opening 17X at an end opposite the tapered portion 12bX in the extension direction De. The first outlet opening 16X and the second outlet opening 17X are arranged side by side in the first direction D1.
[0087] The fluid F that flows into the connecting portion 12X through the inlet opening 15X flows out of the connecting portion 12X through the first outlet opening 16X and the second outlet opening 17X. A first outlet pipe 13X is connected to the first outlet opening 16X, and a second outlet pipe 14X is connected to the second outlet opening 17X. The first outlet pipe 13X and the second outlet pipe 14X are provided on the opposite side of the connecting portion 12X from the inlet pipe 11X in the extension direction De.
[0088] The first outflow pipe 13X communicates with the connection portion 12X at a first outflow opening 16X, and allows the fluid F that has flowed in from the inflow pipe 11X to flow out to the outdoor unit 2. The first outflow pipe 13X of this embodiment is a curved pipe that is shaped like an L when viewed from the second direction D2. The first outflow pipe 13X is a curved pipe that has a first straight pipe portion 18X, a first curved portion 19X, and a second straight pipe portion 20X.
[0089] The first straight pipe section 18X extends linearly from the connection section 12X in the extension direction De. The first curved section 19X is provided at the end of the first straight pipe section 18X opposite the connection section 12X in the extension direction De. In other words, the first curved section 19X is located downstream of the first straight pipe section 18X. The first curved section 19X curves in the first direction D1 so as to move away from the second outlet opening 17X as the first curved section 19X moves away from the first straight pipe section 18X in the extension direction De. The second straight pipe section 20X extends linearly from the first curved section 19X in the first direction D1.
[0090] The second outflow pipe 14X communicates with the connection portion 12X via a second outflow opening 17X and is arranged alongside the first outflow pipe 13X in the first direction D1. The second outflow pipe 14X causes the fluid F that has flowed in from the inflow pipe 11X to flow out to an outdoor unit 2 different from the outdoor unit 2 to which the fluid is directed from the first outflow pipe 13X. In this embodiment, the second outflow pipe 14X is a straight pipe that extends in the extension direction De.
[0091] In this embodiment, the first outflow pipe 13X and the second outflow pipe 14X are both circular pipes with circular cross sections. As shown in Fig. 13, a center 22X of the cross section of the first outflow pipe 13X and a center 23X of the cross section of the second outflow pipe 14X are located at the same position in the second direction D2 relative to a center 21X of the inflow pipe 11X. Here, the center 21X of the cross section of the inflow pipe 11X is the center of gravity of the cross section of the inflow pipe 11X, the center 22X of the first outflow pipe 13X is the center of gravity of the cross section of the first outflow pipe 13X, and the center 23X of the cross section of the second outflow pipe 14X is the center of gravity of the cross section of the second outflow pipe 14X. In the first refrigerant distribution pipe 10aX, the first outflow pipe 13X is connected to the first outdoor branch pipe 7a extending from one outdoor unit 2, and the second outflow pipe 14X is connected to the second outdoor branch pipe 7b connecting the first refrigerant distribution pipe 10aX and the second refrigerant distribution pipe 10bX. Furthermore, the second refrigerant distribution pipe 10bX is connected to the remaining two outdoor units 2 via two first outdoor branch pipes 7a.
[0092] As described above, the second refrigerant distribution pipe 10bX has the same configuration as the first refrigerant distribution pipe 10aX. That is, the second refrigerant distribution pipe 10bX includes an inlet pipe 11X, a connection portion 12X, a first outlet pipe 13X, and a second outlet pipe 14X. However, the second refrigerant distribution pipe 10bX differs from the first refrigerant distribution pipe 10aX in the following respects.
[0093] In the second refrigerant distribution pipe 10bX, the first outflow pipe 13X and the second outflow pipe 14X are both connected to the first outdoor branch pipes 7a extending from the remaining two outdoor units 2, respectively.
[0094] As described above, in both the first refrigerant distribution pipe 10aX and the second refrigerant distribution pipe 10bX, the first outflow pipe 13X is a curved pipe having the first curved portion 19X on the downstream side, and the second outflow pipe 14X is a straight pipe extending in a straight line. Therefore, in the first outflow pipe 13X, the fluid F flowing in from the connection portion 12X collides with the wall surface of the first curved portion 19X and is subjected to pressure, so that the back pressure in the direction opposite to the flow direction of the fluid F is greater in the first outflow pipe 13X than in the second outflow pipe 14X.
[0095] Here, the cross-sectional area of the first outflow pipe 13X is S1, and the cross-sectional area of the second outflow pipe 14X is S2. Furthermore, the target distribution amount of fluid F to the first outflow pipe 13X is X1, and the target distribution amount of fluid F to the second outflow pipe 14X is X1. In each refrigerant distribution pipe 10X, the cross-sectional area ratio (S1:S2) between the first outflow pipe 13X and the second outflow pipe 14X is set so that the ratio of the value of the first outflow pipe 13X to the value of the second outflow pipe 14X is larger than the target distribution ratio (X1:X2) of fluid F between the first outflow pipe 13X and the second outflow pipe 14X. That is, the ratio is set so that (S1 / S2) > (X1 / X2).
[0096] The following describes specific values of the cross-sectional area ratio (S1:S2) between the first outflow pipe 13X and the second outflow pipe 14X for each of the first refrigerant distribution pipe 10aX and the second refrigerant distribution pipe 10bX.
[0097] In the first refrigerant distribution pipe 10aX, the fluid F flowing through the first outflow pipe 13X is guided to one outdoor unit 2, and the fluid F flowing through the second outflow pipe 14X is guided to two outdoor units 2. For this reason, in the first refrigerant distribution pipe 10aX, the target distribution ratio (X1:X2) of the fluid F between the first outflow pipe 13X and the second outflow pipe 14X is set to the same as the ratio of the numbers of the destination outdoor units 2, for example, X1:X2 = 1:2. In other words, X1 / X2 = 1 / 2.
[0098] In contrast, in the first refrigerant distribution pipe 10aX, the cross-sectional area ratio (S1:S2) of the first outflow pipe 13X to the second outflow pipe 14X is set to S1 / S2>1 / 2. For example, as shown in Figures 12 and 13, S1:S2 is set to 1:1.
[0099] In the second refrigerant distribution pipe 10bX, the fluid F flowing through the first outflow pipe 13X is guided to one outdoor unit 2, and the fluid F flowing through the second outflow pipe 14X is guided to one outdoor unit 2. For this reason, in the second refrigerant distribution pipe 10bX, the target distribution ratio (X1:X2) of the fluid F between the first outflow pipe 13X and the second outflow pipe 14X is set to the same as the ratio of the numbers of the outdoor units 2 to which the fluid is discharged, for example, such that X1:X2 = 1:1. In other words, X1 / X2 = 1 / 1.
[0100] In contrast, in the first refrigerant distribution pipe 10aX, the cross-sectional area ratio (S1:S2) of the first outflow pipe 13X to the second outflow pipe 14X is set to S1 / S2>1 / 1. For example, as shown in Figures 12 and 14, S1:S2 is set to 2:1.
[0101] (Operational Effects) The refrigerant distribution pipe 10X having the above-described configuration can exhibit the following operational effects.
[0102] The refrigerant distribution pipe 10X of this embodiment is used in the refrigerant pipe 3 connecting multiple outdoor units 2 having compressors 2a to the indoor units 1, and distributes a fluid F containing an air-conditioning refrigerant and a refrigerating machine oil for lubricating the compressors 2a to the multiple outdoor units 2. The refrigerant distribution pipe 10X includes an inlet pipe 11X into which the fluid F flows, a first outlet pipe 13X through which the fluid F flows out to the outdoor units 2, and a second outlet pipe 14X through which the fluid F flows out to an outdoor unit 2 different from the destination outdoor unit 2 from which the first outlet pipe 13X flows. The first outlet pipe 13X has a greater back pressure in the direction opposite to the flow direction of the fluid F than the second outlet pipe 14X. The cross-sectional area ratio (S1:S2) between the first outflow pipe 13X and the second outflow pipe 14X is set so that the ratio of the value of the first outflow pipe 13X is larger than the target distribution ratio (X1:X2) of the fluid F between the first outflow pipe 13X and the second outflow pipe 14X.
[0103] This allows the fluid F to easily flow into the first outflow pipe 13X, which has a large back pressure. Therefore, the fluid F can be distributed to the first outflow pipe 13X and the second outflow pipe 14X at a distribution ratio close to the target distribution ratio (X1:X2). Therefore, it is possible to prevent the actual distributed flow rate of refrigeration oil from deviating from the target distributed flow rate (hereinafter referred to as the "target flow rate").
[0104] In this embodiment, the first outflow pipe 13X is a curved pipe having a first curved portion 19X on the downstream side, and the second outflow pipe 14X is a straight pipe that extends linearly.
[0105] This increases the options for the shape of the first outflow pipe 13X. Here, the first curved portion 19X increases the back pressure that the fluid F receives in the first outflow pipe 13X, making it difficult for the fluid F to flow through the first outflow pipe 13X. However, as described above, the cross-sectional area ratio (S1:S2) between the first outflow pipe 13X and the second outflow pipe 14X is set so that the ratio of the values of the first outflow pipe 13X is large. This makes it easier for the fluid F to flow into the first outflow pipe 13X, which has a high back pressure. Therefore, while increasing the options for the shape of the first outflow pipe 13X, the fluid F can be distributed to the first outflow pipe 13X and the second outflow pipe 14X at a distribution ratio close to the target distribution ratio (X1:X2). Therefore, it is possible to prevent the actual distribution flow rate of refrigeration oil from deviating from the target flow rate while improving convenience.
[0106] In the first refrigerant distribution pipe 10aX of this embodiment, the cross-sectional area ratio (S1:S2) of the first outflow pipe 13X to the second outflow pipe 14X is set to 1:1.
[0107] This allows the distribution ratio of the fluid F between the first outflow pipe 13X and the second outflow pipe 14X to be close to 1:2.
[0108] In the second refrigerant distribution pipe 10bX of this embodiment, the cross-sectional area ratio (S1:S2) of the first outflow pipe 13X to the second outflow pipe 14X is set to 2:1.
[0109] This allows the distribution ratio of the fluid F between the first outflow pipe 13X and the second outflow pipe 14X to be close to 1:1. The cross-sectional area ratio (S1:S2) between the first outflow pipe 13X and the second outflow pipe 14X is not limited to 1:1 or 2:1 and can be changed appropriately depending on the flow rate of the fluid F. In order to achieve a distribution ratio (X1:X2) of the fluid F between the first outflow pipe 13X and the second outflow pipe 14X of 1:1, it is preferable that the cross-sectional area ratio (S1:S2) between the first outflow pipe 13X and the second outflow pipe 14X be 2:1. However, for example, when the cross-sectional area S2 of the second outflow pipe 14X is 1, the cross-sectional area S1 of the first outflow pipe 13X may be 1.2 to 3.
[0110] <Modification of Third Embodiment> Next, a modification of the third embodiment will be described with reference to Fig. 15. In this modification, the first refrigerant distribution pipe 10aX and the second refrigerant distribution pipe 10bX also have the same configuration. Below, the configuration of this modification will be described using the first refrigerant distribution pipe 10aX as an example.
[0111] As shown in FIG. 15, in this modification, the second outflow pipe 14X is a curved pipe having a third straight pipe portion 41X, a second curved portion 42X, and a fourth straight pipe portion 43X.
[0112] The third straight pipe section 41X extends linearly from the connection section 12X in the extension direction De. The second curved section 42X is provided at the end of the third straight pipe section 41X opposite the connection section 12X in the extension direction De. In other words, the second curved section 42X is located downstream of the third straight pipe section 41X. The second curved section 42X curves in the first direction D1 so as to move away from the first outlet opening 16X as it moves away from the third straight pipe section 41X in the extension direction De. The fourth straight pipe section 43X extends linearly from the second curved section 42X.
[0113] Although the first outflow pipe 13X and the second outflow pipe 14X are both curved pipes, the curvature of the first curved portion 19X of the first outflow pipe 13X is greater than the curvature of the second curved portion 42X of the second outflow pipe 14X. Therefore, the pressure that the fluid F flowing through the first outflow pipe 13X receives when it collides with the wall surface of the first curved portion 19X is greater than the pressure that the fluid F flowing through the second outflow pipe 14X receives when it collides with the wall surface of the second curved portion 42X. In other words, the back pressure in the direction opposite to the flow direction of the fluid F is greater in the first outflow pipe 13X than in the second outflow pipe 14X.
[0114] (Operational Effects) The refrigerant distribution pipe 10X having the above-described configuration can exhibit the following operational effects.
[0115] In this modification, the first outflow pipe 13X is a curved pipe having a first curved portion 19X on the downstream side, and the second outflow pipe 14X is a curved pipe having a second curved portion 42X on the downstream side. The curvature of the first curved portion 19X is greater than the curvature of the second curved portion 42X.
[0116] This further increases the options for the shapes of the first outflow pipe 13X and the second outflow pipe 14X. Because the curvature of the first curved portion 19X is greater than the curvature of the second curved portion 42X, the back pressure that the fluid F experiences in the first outflow pipe 13X is greater than that in the second outflow pipe 14X. This makes it difficult for the fluid F to flow through the first outflow pipe 13X. However, as described above, the cross-sectional area ratio (S1:S2) between the first outflow pipe 13X and the second outflow pipe 14X is set so that the ratio of the value of the first outflow pipe 13X is greater, making it easier for the fluid F to flow into the first outflow pipe 13X, which experiences a greater back pressure. This allows for an increased number of options for the shapes of the first outflow pipe 13X and the second outflow pipe 14X, while still allowing for the fluid F to be distributed to the first outflow pipe 13X and the second outflow pipe 14X at a distribution ratio close to the target distribution ratio (X1:X2). Therefore, it is possible to further improve convenience and prevent the actual distributed flow rate of refrigeration oil from deviating from the target flow rate.
[0117] In the third embodiment, examples in which the back pressure of the first outflow pipe 13X is greater than the back pressure of the second outflow pipe 14X have been described, such as when the first outflow pipe 13X is curved and the second outflow pipe 14X is straight, or when the curvature of the first curved portion 19X of the first outflow pipe 13X is greater than the curvature of the second curved portion 42X of the second outflow pipe 14X. However, this is not limiting. For example, even if both the first outflow pipe 13X and the second outflow pipe 14X are straight, the back pressure of the first outflow pipe 13X will be greater than the back pressure of the second outflow pipe 14X even if there is a curved portion downstream of the first outflow pipe 13X near the first outflow pipe 13X.
[0118] In the third embodiment, the cross sections of the inlet pipe 11X, the first outlet pipe 13X, and the second outlet pipe 14X in the flow direction are circular, but this is not limiting. The cross sections of the inlet pipe 11X, the first outlet pipe 13X, and the second outlet pipe 14X in the flow direction may be polygonal or irregular in shape with a protruding or recessed portion.
[0119] Fourth Embodiment A refrigerant distribution pipe 210X and an air conditioning apparatus 100 according to a fourth embodiment of the present disclosure will be described below with reference to FIGS. 16 to 18 . Components similar to those in the above embodiments will be designated by the same names and reference numerals as in the above embodiments, and descriptions thereof will be omitted as appropriate. In this embodiment, the first refrigerant distribution pipe 210aX and the second refrigerant distribution pipe 210bX also have the same configuration. The configuration of this embodiment will be described below using the first refrigerant distribution pipe 210aX as an example.
[0120] 16 , the center 16aX of the cross section of the first outlet opening 16X and the center 17aX of the cross section of the second outlet opening 17X are located on one side of the center 15aX of the cross section of the inlet opening 15X in the second direction D2. Here, the center 15aX of the cross section of the inlet opening 15X is the center of gravity of the cross section of the inlet opening 15X, the center 16aX of the cross section of the first outlet opening 16X is the center of gravity of the cross section of the first outlet opening 16X, and the center 17aX of the cross section of the second outlet opening 17X is the center of gravity of the cross section of the second outlet opening 17X. In this embodiment, the cross sections of the first outlet opening 16X and the second outlet opening 17X are formed in a circular shape.
[0121] Furthermore, the center 16aX of the cross section of the first outlet opening 16X and the center 17aX of the cross section of the second outlet opening 17X are located closer to the center 15aX of the inlet opening 15X than the ends 11aX1 on both sides of the outer wall surface 11aX of the inlet pipe 11X in the first direction D1. In the illustrated example, the center 16aX of the cross section of the first outlet opening 16X and the center 17a of the cross section of the second outlet opening 17X are located closer to the center 15aX of the inlet opening 15X than the outer wall surface 11aX of the inlet pipe 11X (radially inward from the outer wall surface 11aX of the inlet pipe 11X) when viewed from the extension direction De. The center 16aX of the cross section of the first outlet opening 16X and the center 17aX of the cross section of the second outlet opening 17X may be located farther from the center 15aX of the cross section of the inlet opening 15X than the outer wall surface 11aX of the inlet pipe 11X (radially outward from the outer wall surface 11aX of the inlet pipe 11X) as viewed in the extension direction De. Furthermore, in the first direction D1, the center 16aX of the cross section of the first outlet opening 16X and the center 17aX of the cross section of the second outlet opening 17X may be located outward from a tangent to the outer wall surface 11aX at the end 11aX1 or on a tangent to the outer wall surface 11aX at the end 11aX1 as viewed in the extension direction De.
[0122] Furthermore, the center 21X of the cross section of the inlet pipe 11X is located on the other side of the second direction D2 relative to the center 16aX of the cross section of the first outlet opening 16X and the center 17aX of the cross section of the second outlet opening 17X throughout the entire inlet pipe 11X.
[0123] Furthermore, the center 222X of the cross section of the first outflow pipe 213X is located on one side of the center 15aX of the cross section of the inflow opening 15X in the second direction D2 throughout the entire first outflow pipe 213X. Furthermore, the center 223X of the cross section of the second outflow pipe 214X is located on one side of the center 15aX of the cross section of the inflow opening 15X in the second direction D2 throughout the entire second outflow pipe 214X. Here, the center 21X of the cross section of the inflow pipe 11X is the center of gravity of the cross-sectional shape of the inflow pipe 11X, the center 222X of the first outflow pipe 213X is the center of gravity of the cross-sectional shape of the first outflow pipe 213X, and the center 223X of the cross section of the second outflow pipe 214X is the center of gravity of the cross-sectional shape of the second outflow pipe 214X. In this embodiment, the entire first outflow pipe 213X and the entire second outflow pipe 214X are located on one side in the second direction D2 of the center 21X of the cross section of the inflow pipe 11X.
[0124] In this embodiment, at the branch portion 12cX of the connection portion 12X, the connection wall 12dX is curved so as to protrude toward the center 15aX of the inlet opening 15 in the second direction D2 as viewed from the extension direction De. Therefore, the first outlet pipe 13X and the second outlet pipe 14X are disposed closer to the inlet pipe 11X in the first direction D1. More specifically, near the connection portion 12X, the center 222X of the cross section of the first outlet pipe 213X and the center 223X of the cross section of the second outlet pipe 214X are located closer to the center 21X of the inlet pipe 11X than the ends 11aX1 on both sides of the outer wall surface 11aX of the inlet pipe 11X in the first direction D1. In the illustrated example, near the connection portion 12X, the center 222X of the cross section of the first outflow pipe 213X and the center 223X of the cross section of the second outflow pipe 214X are located closer to the center 21X of the inflow pipe 11X than the outer wall surface 11aX of the inflow pipe 11X (radially inward from the outer wall surface 11aX of the inflow pipe 11X) when viewed from the extension direction De.
[0125] In this embodiment, at the connection portion 12X, the center 15aX of the inlet opening 15X and the center 21X of the cross section of the inlet pipe 11X overlap in the extension direction De, the center 16aX of the first outlet opening 16X and the center 22X of the cross section of the first outlet pipe 13X overlap in the extension direction De, and the center 17a of the second outlet opening 17X and the center 23X of the cross section of the second outlet pipe 14X overlap in the extension direction De.
[0126] (Operational Effects) The refrigerant distribution pipe 210X having the above-described configuration can exhibit the following operational effects.
[0127] In this embodiment, the cross-sectional center 16aX of the first outlet opening 16X and the cross-sectional center 17aX of the second outlet opening 17X are located on one side in the second direction D2 with respect to the cross-sectional center 15aX of the inlet opening 15X.
[0128] As a comparative example, consider a conventional refrigerant distribution pipe 210RX as shown in Fig. 17. This refrigerant distribution pipe 210RX has an inlet pipe 11RX, a connection portion 12RX, a first outlet pipe 213RX, and a second outlet pipe 214RX. A center 16aRX of a cross section of the first outlet opening 16RX and a center 17aRX of a cross section of the second outlet opening 17RX are located at the same position in the second direction D2 as a center 15aRX of the inlet opening 15X. In this refrigerant distribution pipe 210RX, at the connection portion 12RX, the cross-sectional center 15aRX of the inlet opening 15RX and the cross-sectional center 21RX of the inlet pipe 11RX overlap in the extension direction De, the cross-sectional center 16aRX of the first outlet opening 16RX and the cross-sectional center 222RX of the first outlet pipe 213RX overlap in the extension direction De, and the cross-sectional center 17aRX of the second outlet opening 17RX and the cross-sectional center 223RX of the second outlet pipe 14RX overlap in the extension direction De. Therefore, the cross-sectional center 222RX of the first outflow pipe 213RX and the cross-sectional center 223RX of the second outflow pipe 214RX are located at the same position in the second direction D2 as the center 21RX of the inflow pipe 211R. This refrigerant distribution pipe 210RX is usually installed so that the inflow pipe 11RX is along a horizontal plane.
[0129] When the refrigerant distribution pipe 210RX is not filled with the fluid F, for example, if the refrigerant distribution pipe 210RX is installed at an angle so that the first direction D1 intersects with a horizontal plane, the liquid level SX of the fluid F will be inclined with respect to the first direction D1 as shown in Fig. 17. Also, if the downstream side of the first outflow pipe 213RX is a curved pipe, the fluid F will be subjected to back pressure in the curved pipe in the opposite direction to the flow direction, and the liquid level SX of the fluid F will be inclined with respect to the first direction D1.
[0130] When the liquid level SX of the fluid F is inclined with respect to the first direction D1, the amount of fluid F distributed between the first outflow pipe 213RX and the second outflow pipe 214RX becomes significantly biased. Therefore, in the conventional refrigerant distribution pipe 210RX, the actual distributed flow rate of refrigeration oil deviates significantly from the target distributed flow rate. Note that Figure 17 illustrates both the case where the liquid level SX of the fluid F is high HSX and the case where it is low LSX, and in both cases, the amount of fluid F distributed between the first outflow pipe 13RX and the second outflow pipe 14RX becomes significantly biased.
[0131] In contrast, according to this embodiment, when the refrigerant distribution pipe 210X is installed so that the inlet pipe 11X is aligned along a horizontal plane, both the first outlet pipe 213X and the second outlet pipe 214X can be positioned vertically below the inlet pipe 11X. This prevents uneven distribution of the fluid F between the first outlet pipe 213X and the second outlet pipe 214X, even if the liquid level SX of the fluid F is inclined with respect to the first direction D1, as shown in FIG. 18 . Whether the liquid level SX of the fluid F is high HSX or low LSX, uneven distribution of the fluid F between the first outlet pipe 213X and the second outlet pipe 214X is also prevented. This prevents uneven distribution of the refrigerant oil to each outdoor unit 2. This further prevents deviation of the actual distribution flow rate of the refrigerant oil from the target flow rate.
[0132] In this embodiment, the entire first outflow pipe 213X and the entire second outflow pipe 214X are located on one side of the center 15aX of the cross section of the inflow opening 15X in the second direction D2.
[0133] This further reduces the unevenness in the amount of fluid F distributed between the first outflow pipe 213X and the second outflow pipe 214X, thereby further reducing the unevenness in the amount of refrigeration oil supplied to each outdoor unit 2. This further reduces the deviation of the actual distributed flow rate of refrigeration oil from the target flow rate.
[0134] In this embodiment, at the connection portion 12X, the center 222X of the cross section of the first outflow pipe 213X and the center 223X of the cross section of the second outflow pipe 214X are located closer to the center 21X of the cross section of the inflow pipe 11X in the first direction D1 than the ends 11aX1 on both sides of the outer wall surface 11aX of the inflow pipe 11X.
[0135] This further reduces the unevenness in the amount of fluid F distributed between the first outflow pipe 213X and the second outflow pipe 214X, thereby further reducing the unevenness in the amount of refrigeration oil supplied to each outdoor unit 2. This further reduces the deviation of the actual distributed flow rate of refrigeration oil from the target flow rate.
[0136] In the fourth embodiment, the cross sections of the inlet pipe 11X, the first outlet pipe 213X, and the second outlet pipe 214X in the flow direction are circular, but this is not limited thereto. In the second embodiment, the cross sections of the inlet pipe 11X, the first outlet pipe 213X, and the second outlet pipe 214X in the flow direction may be polygonal or may be irregularly shaped with a protruding or recessed portion. In this case, too, the center 21X of the cross section of the inlet pipe 11X is the center of gravity of the cross section of the inlet pipe 11X, the center 222X of the first outlet pipe 213X is the center of gravity of the cross section of the first outlet pipe 213X, and the center 223X of the cross section of the second outlet pipe 214X is the center of gravity of the cross section of the second outlet pipe 214X.
[0137] Fifth Embodiment A refrigerant distribution pipe 310X and an air conditioning apparatus 100 according to a fifth embodiment of the present disclosure will be described below with reference to Fig. 19 to Fig. 22. Configurations similar to those in the above embodiments will be given the same names and reference numerals as in the above embodiments, and descriptions thereof will be omitted as appropriate.
[0138] 19 , in the refrigerant distribution pipe 310X of this embodiment, the first outlet pipe 313X and the second outlet pipe 314X are rectangular pipes. The shapes of the first outlet pipe 313X and the second outlet pipe 314X will be described using the second refrigerant distribution pipe 310bX as an example, and description of the first refrigerant distribution pipe 310aX will be omitted as appropriate.
[0139] In a cross-sectional view perpendicular to the extension direction De, the cross sections of the first outflow pipe 313X and the second outflow pipe 314X are shaped like rectangles having one side extending in the second direction D2. The first outflow pipe 313X is shaped so that both ends of the first outflow pipe 313X in the second direction D2 overlap with both ends of the inflow pipe 11X in the second direction D2 in the extension direction De. Similarly, the second outflow pipe 314X is shaped so that both ends of the second outflow pipe 314X in the second direction D2 overlap with both ends of the inflow pipe 11X in the second direction D2 in the extension direction De.
[0140] Furthermore, in the second refrigerant distribution pipe 310bX, the cross-sectional area S1 of the first outflow pipe 313X is designed to be larger than the cross-sectional area S2 of the second outflow pipe 314X, as in the third embodiment. More specifically, while the dimensions L2aX and L2bX in the second direction D2 of the first outflow pipe 313X and the second outflow pipe 314X are both maintained, the dimension L1aX in the first direction D1 of the first outflow pipe 313X is made larger than the dimension L1bX in the first direction D1 of the second outflow pipe 314X.
[0141] (Operational Effects) The refrigerant distribution pipe 310X having the above-described configuration can exhibit the following operational effects.
[0142] In this embodiment, the first outflow pipe 313X and the second outflow pipe 314X are rectangular pipes, and when viewed in a cross section perpendicular to the extension direction De, the cross section of the first outflow pipe 313X and the cross section of the second outflow pipe 314X are shaped like a rectangle along the first direction D1 and the second direction D2.
[0143] As a comparative example, consider a conventional refrigerant distribution pipe 310RX as shown in Figure 20. In this refrigerant distribution pipe 310RX, the cross sections of the first outflow pipe 313RX and the second outflow pipe 314RX are circular in cross section perpendicular to the extension direction De. This type of refrigerant distribution pipe 310RX is usually installed so that the inflow pipe 11RX is aligned along a horizontal plane.
[0144] 20, when the height of the liquid level SX of the fluid F changes, the cross-sectional area ratio of the fluid F between the first outflow pipe 313RX and the second outflow pipe 314RX changes. Therefore, in the conventional refrigerant distribution pipe 310RX, the actual distributed flow rate of the refrigeration oil significantly deviates from the target flow rate.
[0145] In contrast, according to this embodiment, by installing the refrigerant distribution pipe 310X so that the inlet pipe 11X is aligned along a horizontal plane, the first outlet pipe 313X and the second outlet pipe 314X can be arranged so that the rectangular cross sections of the first outlet pipe 313X and the second outlet pipe 314X extend vertically. As a result, even if the liquid level SX of the fluid F changes as shown in Fig. 21, the cross-sectional area ratio of the fluid F between the first outlet pipe 313X and the second outlet pipe 314X can be maintained constant. This further prevents the actual distribution flow rate of refrigeration oil from deviating from the target flow rate.
[0146] 22 , the configuration of the fifth embodiment may be combined with not only the third embodiment but also the fourth embodiment. That is, the first and second outflow pipes 313X, 314X may be formed rectangular as described above, and the cross-sectional area ratio (S1:S2) of the first and second outflow pipes 313X, 314X in each refrigerant distribution pipe 10X may be set so that the ratio of the cross-sectional area of the first outflow pipe 313X to the cross-sectional area of the second outflow pipe 314X is larger than the target distribution ratio (X1:X2) of the fluid F between the first and second outflow pipes 313X, 314X. Furthermore, the center 16aX of the cross section of the first outflow opening 16X and the center 17aX of the cross section of the second outflow opening 17X may be located on one side of the center 15aX of the cross section of the inflow opening 15X in the second direction D2. Furthermore, the entire first outlet pipe 313X and the entire second outlet pipe 314X may be located on one side of the center 15aX of the cross section of the inlet opening 15X in the second direction D2. Furthermore, the center 16aX of the cross section of the first outlet opening 16X and the center 17aX of the cross section of the second outlet opening 17X may be located closer to the center 15aX of the cross section of the inlet opening 15X in the first direction D1 than both end portions 11aX1 of the outer wall surface 11aX of the inlet pipe 11X.
[0147] (Other Embodiments) Although the embodiments of the present disclosure have been described above in detail with reference to the drawings, the specific configuration is not limited to this embodiment, and design modifications and the like are also included within the scope of the gist of the present disclosure. In the above embodiment, an example was described in which three indoor units 1 and three outdoor units 2 were provided, but this is not limited to this. As long as multiple outdoor units 2 are provided, the number of indoor units 1 and outdoor units 2 can be changed as appropriate. For example, two indoor units 1 and two outdoor units 2 may be provided. When there are two outdoor units 2, only one second refrigerant distribution pipe 10b, 210b, 10bX, 210bX, 310bX may be provided as the refrigerant distribution pipe 10, 210, 10X, 210X, 310X.
[0148] In the above embodiment, the first outflow pipe 13, 213 is a curved pipe and the second outflow pipe 14, 214 is a straight pipe. However, this is not limiting. The shapes of the first outflow pipe 13, 213 and the second outflow pipe 14, 214 can be changed as appropriate. For example, the first outflow pipe 13, 213 may be a straight pipe and the second outflow pipe 14, 214 may be a curved pipe. Furthermore, both the first outflow pipe 13, 213 and the second outflow pipe 14, 214 may be curved pipes or straight pipes. Furthermore, when the first outflow pipe 13, 213 and the second outflow pipe 14, 214 are curved pipes, the degree of curvature of the first outflow pipe 13, 213 and the second outflow pipe 14, 214 can also be changed as appropriate.
[0149] <Additional Notes> The refrigerant distribution pipe and the air conditioner described in each embodiment can be understood, for example, as follows.
[0150] (1) A refrigerant distribution pipe 10, 210 according to a first aspect is used in a refrigerant pipe 3 connecting a plurality of outdoor units 2 having compressors 2a to indoor units 1, and distributes a fluid F containing an air-conditioning refrigerant and a refrigerating machine oil for lubricating the compressors 2a to the plurality of outdoor units 2, the refrigerant distribution pipe 10, 210 comprising an inlet pipe 11 into which the fluid F flows, a first outlet opening 16 extending in one direction from an end of the inlet pipe 11 and having an inlet opening 15 communicating with the inlet pipe 11 at an end on the inlet pipe 11 side in an extension direction De, and a second outlet opening 16 provided at an end on the opposite side to the inlet pipe 11 in the extension direction De, aligned in a first direction D1 perpendicular to the extension direction De, and a connecting portion 12 having a first outlet opening 16 and a second outlet opening 17; a first outlet pipe 13, 213 communicating with the connecting portion 12 at the first outlet opening 16 and allowing the fluid F to flow out to the outdoor unit 2; and a second outlet pipe 14, 214 communicating with the connecting portion 12 at the second outlet opening 17 and allowing the fluid F to flow out to an outdoor unit 2 different from the outdoor unit 2 to which the fluid F is directed from the first outlet pipe 13, 213, wherein a center 16a of a cross section of the first outlet opening 16 and a center 17a of a cross section of the second outlet opening 17 are located on one side of a center 15a of a cross section of the inlet opening 15 in a second direction D2 perpendicular to the extension direction De and the first direction D1.
[0151] According to this aspect, when the refrigerant distribution pipes 10, 210 are installed so that the inlet pipe 11 is aligned along a horizontal plane, both the first outlet pipe 13, 213 and the second outlet pipe 14, 214 can be positioned vertically below the inlet pipe 11. This prevents uneven distribution of the fluid F between the first outlet pipe 13, 213 and the second outlet pipe 14, 214, even if the liquid level S of the fluid F is inclined with respect to the first direction D1. This prevents uneven distribution of the refrigerating machine oil supplied to each outdoor unit 2.
[0152] (2) The refrigerant distribution pipe 10, 210 of the second aspect may be the refrigerant distribution pipe 10, 210 of (1), in which the entire first outflow pipe 13, 213 and the entire second outflow pipe 14, 214 are located on one side of the center 15a of the cross section of the inlet opening 15 in the second direction D2.
[0153] This further reduces the unevenness in the amount of fluid F distributed between the first outflow pipes 13, 213 and the second outflow pipes 14, 214. Therefore, it is possible to further reduce the unevenness in the amount of refrigeration oil supplied to each outdoor unit 2.
[0154] (3) The refrigerant distribution pipe 10, 210 of the third aspect may be the refrigerant distribution pipe 10, 210 of (1) or (2), in which the center 16a of the cross section of the first outlet opening 16 and the center 17a of the cross section of the second outlet opening 17 are located closer to the center 15a of the cross section of the inlet opening 15 than the ends 11a1 on both sides of the outer wall surface 11a of the inlet pipe 11 in the first direction D1.
[0155] This further reduces the unevenness in the amount of fluid F distributed between the first outflow pipes 13, 213 and the second outflow pipes 14, 214. Therefore, it is possible to further reduce the unevenness in the amount of refrigeration oil supplied to each outdoor unit 2.
[0156] (4) The refrigerant distribution pipe 10, 210 of the fourth aspect may be any one of the refrigerant distribution pipes 10, 210 of (1) to (3), and the cross section of the first outflow pipe 13, 213 and the cross section of the second outflow pipe 14, 214 may be shaped like a rectangle having one side extending in the second direction D2.
[0157] According to this aspect, by installing the refrigerant distribution pipe 10, 210 so that the inlet pipe 11 is along a horizontal plane, the first outlet pipe 13, 213 and the second outlet pipe 14, 214 can be arranged so that the rectangular cross section of the first outlet pipe 13, 213 and the rectangular cross section of the second outlet pipe 14, 214 extend in the vertical direction. As a result, even if the liquid level S of the fluid F changes, the cross-sectional area ratio occupied by the fluid F in the first outlet pipe 13, 213 and the second outlet pipe 14, 214 can be maintained constant.
[0158] (5) A refrigerant distribution pipe 10, 210 according to a fifth aspect is used in a refrigerant pipe 3 connecting a plurality of outdoor units 2 having compressors 2a to indoor units 1, and distributes a fluid F containing an air-conditioning refrigerant and a refrigerating machine oil for lubricating the compressors 2a to the plurality of outdoor units 2, and includes an inlet pipe 11 into which the fluid F flows, an inlet opening 15 extending in one direction from an end of the inlet pipe 11, having an inlet opening 15 communicating with the inlet pipe 11 at an end on the inlet pipe 11 side in the extension direction De, and arranged side by side in a first direction D1 perpendicular to the extension direction De at an end on the opposite side from the inlet pipe 11 in the extension direction De. The refrigerant coolant 10 includes a connecting portion 12 having a first outlet opening 16 and a second outlet opening 17, a first outlet pipe 13, 213 that communicates with the connecting portion 12 at the first outlet opening 16 and allows the fluid F to flow out to the outdoor unit 2, and a second outlet pipe 14, 214 that communicates with the connecting portion 12 at the second outlet opening 17 and allows the fluid F to flow out to an outdoor unit 2 different from the outdoor unit 2 to which the fluid F is directed from the first outlet pipe 13, 213, and the cross section of the first outlet pipe 13, 213 and the cross section of the second outlet pipe 14, 214 are shaped like a rectangle having one side extending in the extension direction De and a second direction D2 perpendicular to the first direction D1.
[0159] (6) The air conditioning apparatus 100 of the sixth aspect comprises the refrigerant pipe 3 having any one of the refrigerant distribution pipes 10, 210 of (1) to (5), a plurality of the outdoor units 2, and the indoor units 1.
[0160] (7) The refrigerant distribution pipe 10X, 210X, 310X according to the seventh aspect is used in a refrigerant pipe 3 connecting a plurality of outdoor units 2 having compressors 2a to an indoor unit 1, and distributes a fluid F containing an air-conditioning refrigerant and a refrigerating machine oil for lubricating the compressors 2a to the plurality of outdoor units 2, and includes an inlet pipe 11X into which the fluid F flows, a first outlet pipe 13X, 213X, 313X from which the fluid F flows out to the outdoor units 2, and a second outlet pipe 14X, 214X from which the fluid F flows out to the outdoor unit 2 different from the outdoor unit 2 that is the destination of the first outlet pipe 13X, 213X, 313X. , 314X, and the first outflow pipes 13X, 213X, 313X have a higher back pressure in the direction opposite to the flow direction of the fluid F than the second outflow pipes 14X, 214X, 314X, and the cross-sectional area ratio between the first outflow pipes 13X, 213X, 313X and the second outflow pipes 14X, 214X, 314X is set so that the ratio of the value of the first outflow pipes 13X, 213X, 313X to the value of the second outflow pipes 14X, 214X, 314X becomes larger compared to the target distribution ratio of the fluid F between the first outflow pipes 13X, 213X, 313X and the second outflow pipes 14X, 214X, 314X.
[0161] This allows the fluid F to easily flow into the first outflow pipes 13X, 213X, and 313X, which have a large back pressure. Therefore, the fluid F can be distributed to the first outflow pipes 13X, 213X, and 313X and the second outflow pipes 14X, 214X, and 314X at a distribution ratio close to the target distribution ratio.
[0162] (8) The refrigerant distribution of the eighth aspect is the refrigerant distribution pipe 10X, 210X, 310X of (7), in which the first outflow pipe 13X, 213X, 313X is a curved pipe having a first curved portion 19X on the downstream side, and the second outflow pipe 14X, 214X, 314X may be a straight pipe extending in a straight line.
[0163] This increases the options for the shape of the first outflow pipes 13X, 213X, 313X. Here, the first curved portion 19X increases the back pressure that the fluid F receives in the first outflow pipes 13X, 213X, 313X, making it difficult for the fluid F to flow into the first outflow pipes 13X, 213X, 313X, but as described above, the cross-sectional area ratio between the first outflow pipes 13X, 213X, 313X and the second outflow pipes 14X, 214X, 314X is set so that the ratio of the value of the first outflow pipes 13X, 213X, 313X is large, so the fluid F also easily flows into the first outflow pipes 13X, 213X, 313X, which have a large back pressure. Therefore, while increasing the options for the shape of the first outflow pipes 13X, 213X, 313X, it is possible to distribute the fluid F to the first outflow pipes 13X, 213X, 313X and the second outflow pipes 14X, 214X, 314X at a distribution ratio close to the target distribution ratio.
[0164] (9) The refrigerant distribution pipe 10X, 210X, 310X of a ninth aspect is the refrigerant distribution pipe 10X, 210X, 310X of (7), in which the first outflow pipe 13X, 213X, 313X is a curved pipe having a first curved portion 19X on the downstream side, and the second outflow pipe 14X, 214X, 314X is a curved pipe having a second curved portion 42X on the downstream side, and the curvature of the first curved portion 19X may be greater than the curvature of the second curved portion 42X.
[0165] This further increases the options for the shapes of the first outflow pipes 13X, 213X, 313X and the second outflow pipes 14X, 214X, 314X. Because the curvature of the first curved portion 19X is greater than the curvature of the second curved portion 42X, the back pressure that the fluid F receives in the first outflow pipes 13X, 213X, 313X is greater than that in the second outflow pipes 14X, 214X, 314X. This makes it difficult for the fluid F to flow through the first outflow pipes 13X, 213X, 313X. However, as described above, the cross-sectional area ratio between the first outflow pipes 13X, 213X, 313X and the second outflow pipes 14X, 214X, 314X is set so that the ratio of the cross-sectional area of the first outflow pipes 13X, 213X, 313X is greater. This makes it easier for the fluid F to flow into the first outflow pipes 13X, 213X, 313X, which have greater back pressure. Therefore, while increasing the options for the shapes of the first outflow pipes 13X, 213X, 313X and the second outflow pipes 14X, 214X, 314X, it is possible to distribute the fluid F to the first outflow pipes 13X, 213X, 313X and the second outflow pipes 14X, 214X, 314X at a distribution ratio close to the target distribution ratio.
[0166] (10) The air conditioning apparatus 100 of the tenth aspect comprises the refrigerant pipe 3 having the refrigerant distribution pipe 10X, 210X, 310X described in any one of (7) to (9), a plurality of the outdoor units 2, and the indoor unit 1.
[0167] According to the refrigerant distribution pipe and air conditioner of the present disclosure, it is possible to prevent the actual distributed flow rate of refrigeration oil from deviating from the target flow rate.
[0168] DESCRIPTION OF SYMBOLS 1...indoor unit, 2...outdoor unit, 2a...compressor, 3...refrigerant pipe, 3a...gas pipe, 3b...liquid pipe, 4...control unit, 5...indoor gas pipe, 6...main pipe, 7...outdoor branch pipe, 7a...first outdoor branch pipe, 7b...second outdoor branch pipe, 10...refrigerant distribution pipe, 10a...first refrigerant distribution pipe, 10b...second refrigerant distribution pipe, 100...air conditioning device, 11...inlet pipe, 11a...exterior wall surface, 11a1...end portion, 12...connection portion, 12a...inlet portion, 12b...tapered portion, 12c...branch portion, 12c1...first branch pipe, 12d...connection wall, 13...first outflow pipe, 14...second outflow pipe, 15...inflow opening , 15a...center, 16...first outflow opening, 16a...center, 17...second outflow opening, 17a...center, 18...first straight tube section, 19...curved section, 20...second straight tube section, 21...center, 22...center, 23...center, De...extending direction, D1...first direction, D2...second direction, F...fluid, S ...Liquid level, HS...High liquid level, LS...Low liquid level, 210...Refrigerant distribution pipe, 210a...First refrigerant distribution pipe, 210b...Second refrigerant distribution pipe, 213...First outflow pipe, 214...Second outflow pipe, 222...Center, 223...Center, L1a...Dimension, L2a...Dimension, L1b...Dimension, L2b...Dimension 10X...refrigerant distribution pipe, 10aX...first refrigerant distribution pipe, 10bX...second refrigerant distribution pipe, 11X...inlet pipe, 11a1X...end portion, 12X...connection portion, 12aX...inlet portion, 12bX...tapered portion, 12cX...branch portion, 13X...first outlet pipe, 14X...second outlet pipe, 15X...inlet opening, 15aX...center, 16X...first outlet opening, 16aX...center, 17X...second outlet opening, 18X...first straight pipe portion, 19X...first curved portion, 20X...second straight pipe portion, 41X...third straight pipe portion, 42X...second curved portion, 43 X...fourth straight pipe section, 210X...refrigerant distribution pipe, 210aX...first refrigerant distribution pipe, 210bX...second refrigerant distribution pipe, 11aX...outer wall surface, 21X...center, 213X...first outflow pipe, 214X...second outflow pipe, 222X...center, 223X...center, 310X...refrigerant distribution pipe, 310aX...first refrigerant distribution pipe, 310bX...second refrigerant distribution pipe, 313X...first outflow pipe, 314X...second outflow pipe, 322X...center, 323X...center, L1aX...dimension, L2aX...dimension, L1bX...dimension, L2bX...dimension
Claims
1. A refrigerant distribution pipe used in a refrigerant pipe connecting a plurality of outdoor units having compressors to indoor units, distributing a fluid containing an air conditioning refrigerant and refrigeration oil for lubricating the compressors to the plurality of outdoor units, comprising: an inlet pipe into which the fluid flows; a connecting part extending in one direction from an end of the inlet pipe, having an inlet opening communicating with the inlet pipe at an end on the inlet pipe side in the extending direction, and having a first outlet opening and a second outlet opening provided side by side in a first direction perpendicular to the extending direction at an end on the opposite side from the inlet pipe in the extending direction; a first outlet pipe communicating with the connecting part at the first outlet opening, and discharging the fluid to the outdoor units; and a second outlet pipe communicating with the connecting part at the second outlet opening, and discharging the fluid to an outdoor unit other than the outdoor unit to which the fluid is discharged from the first outlet pipe. a center of a cross section of the first outlet opening and a center of a cross section of the second outlet opening are located on one side of the center of the cross section of the inlet opening in a second direction perpendicular to the extension direction and the first direction.
2. A refrigerant distribution pipe according to claim 1, wherein the entire first outlet pipe and the entire second outlet pipe are located on one side of the center of the cross section of the inlet opening in the second direction.
3. A refrigerant distribution pipe as described in claim 1 or 2, wherein the center of the cross section of the first outlet opening and the center of the cross section of the second outlet opening are located closer to the center of the cross section of the inlet opening than the ends on both sides of the outer wall surface of the inlet pipe in the first direction.
4. A refrigerant distribution pipe as described in claim 1 or 2, wherein the cross section of the first outflow pipe and the cross section of the second outflow pipe are formed into a rectangular shape having one side extending in the second direction.
5. A refrigerant distribution pipe used in a refrigerant pipe connecting a plurality of outdoor units having compressors to indoor units, distributing a fluid containing an air conditioning refrigerant and refrigerating machine oil for lubricating the compressors to the plurality of outdoor units, comprising: an inlet pipe into which the fluid flows; a connecting part extending in one direction from an end of the inlet pipe, having an inlet opening communicating with the inlet pipe at an end on the inlet pipe side in the extending direction, and having a first outlet opening and a second outlet opening provided side by side in a first direction perpendicular to the extending direction at an end on the opposite side to the inlet pipe in the extending direction; a first outlet pipe communicating with the connecting part at the first outlet opening, and discharging the fluid to the outdoor units; and a second outlet pipe communicating with the connecting part at the second outlet opening, and discharging the fluid to an outdoor unit other than the outdoor unit to which the fluid is discharged from the first outlet pipe. a cross section of the first outflow pipe and a cross section of the second outflow pipe each being shaped like a rectangle having one side extending in the extension direction and in a second direction perpendicular to the first direction; 6. An air conditioning apparatus comprising: a refrigerant pipe having the refrigerant distribution pipe according to claim 1 or 5; a plurality of outdoor units; and an indoor unit.
7. A refrigerant distribution pipe used in a refrigerant pipe connecting a plurality of outdoor units having compressors to indoor units, distributing a fluid containing an air conditioning refrigerant and refrigeration oil for lubricating the compressors to the plurality of outdoor units, the refrigerant distribution pipe comprising: an inlet pipe into which the fluid flows; a first outlet pipe through which the fluid flows out to the outdoor units; and a second outlet pipe through which the fluid flows out to an outdoor unit different from the outdoor unit to which the fluid flows from the first outlet pipe, wherein the first outlet pipe has a higher back pressure in the direction opposite to the flow direction of the fluid than the second outlet pipe, and the cross-sectional area ratio of the first outflow pipe to the second outflow pipe is set so that the ratio of the value of the first outflow pipe to the value of the second outflow pipe is larger than a target distribution ratio of the fluid between the first outflow pipe and the second outflow pipe.
8. A refrigerant distribution pipe as described in claim 7, wherein the first outflow pipe is a curved pipe having a first curved portion on the downstream side, and the second outflow pipe is a straight pipe extending linearly.
9. A refrigerant distribution pipe as described in claim 7, wherein the first outflow pipe is a curved pipe having a first curved portion on the downstream side, the second outflow pipe is a curved pipe having a second curved portion on the downstream side, and the curvature of the first curved portion is greater than the curvature of the second curved portion.
10. An air conditioning apparatus comprising: a refrigerant pipe having the refrigerant distribution pipe according to claim 7 or 8; a plurality of outdoor units; and an indoor unit.
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