The present disclosure relates to a refrigerant cycle apparatus and an installation method for the refrigerant cycle apparatus.
EP 3505842 A1 discloses an installation method for a refrigerant cycle apparatus. In this installation method, first, a refrigerant having non-flammability and a high global warming potential (GWP) is removed from a refrigerant cycle apparatus having been already installed. Next, a refrigerant having flammability and a low GWP is put into the refrigerant cycle apparatus.
An installation method according to one aspect is for a refrigerant cycle apparatus. The refrigerant cycle apparatus includes a first heat source unit, a utilization unit, and a connection pipe. The method includes a refrigerant recovery step and a refrigerant accommodation step. In the refrigerant recovery step, a first refrigerant is recovered from the first heat source unit. The first refrigerant has a first GWP and at least one of flammability or toxicity. In the refrigerant accommodation step, a second refrigerant is accommodated in the first heat source unit. The second refrigerant is recovered and regenerated from an existing facility, has a second GWP, and has at least one of non-flammability or non-toxicity.
In this method, the second refrigerant can be used in the refrigerant cycle apparatus configured using a new first heat source unit. Therefore, the refrigerant cycle apparatus of a new model can be installed in an environment that does not permit use of the first refrigerant having flammability or toxicity.
A refrigerant cycle apparatus according to another aspect includes the first heat source unit, the utilization unit, and the connection pipe. The first heat source unit accommodates the second refrigerant after the first refrigerant accommodated in the first heat source unit is taken out. The first refrigerant has the first GWP and at least one of flammability or toxicity. The second refrigerant has the second GWP and at least one of non-flammability or non-toxicity. The second refrigerant is recovered and regenerated from the existing facility. The connection pipe connects the first heat source unit and the utilization unit.
In this configuration, the refrigerant cycle apparatus uses the second refrigerant. Therefore, the refrigerant cycle apparatus using the first heat source unit of a new model can be used in an environment that does not permit use of the first refrigerant.
In the present disclosure, two types of refrigerants, a first refrigerant R1 and a second refrigerant R2, are used.
The first refrigerant R1 has a first GWP and at least one of flammability or toxicity. As used herein, the term “flammability” includes Class A2L (“low flammability”), Class A2 (“flammability”), and Class A3 (“high flammability”) in the safety classification designated in ISO 817. Furthermore, as used herein, “toxicity” includes Class B2L, Class B2, and Class B3 in the safety classification designated in ISO 817.
The second refrigerant R2 has a second GWP and at least one of non-flammability or non-toxicity. The second GWP is larger than the first GWP. The second refrigerant R2 may be, for example, a mixed refrigerant including a component identical to a component of the first refrigerant R1.
The first refrigerant R1 is, for example, R32. The second refrigerant R2 is, for example, R410A.
The refrigerant cycle apparatus 100 includes a utilization unit 10, a connection piping 20, a first heat source unit 30, and a remote controller 40.
The refrigerant cycle apparatus 100 includes one or a plurality of utilization units 10. The utilization unit 10 is installed in a room used by the user. One utilization unit 10 includes a utilization expansion valve 11, a utilization heat exchanger 12, and a utilization fan 13.
The utilization expansion valve 11 controls a flow rate of the second refrigerant R2. The utilization expansion valve 11 functions as a decompressor for the second refrigerant R2, and thus, for example, can change the second refrigerant R2 in a liquid state into the second refrigerant R2 in a gas-liquid two-phase state.
The utilization heat exchanger 12 exchanges heat between the second refrigerant R2 and air. When the refrigerant cycle apparatus 100 performs a cooling operation, the utilization heat exchanger 12 functions as an evaporator or a heat absorber for the second refrigerant R2. When the refrigerant cycle apparatus 100 performs a heating operation, the utilization heat exchanger 12 functions as a condenser or a heat radiator for the second refrigerant R2.
The utilization fan 13 generates an air flow passing through the utilization heat exchanger 12 to promote heat exchange at the utilization heat exchanger 12.
The connection piping 20 connects the utilization unit 10 and the first heat source unit 30. The connection piping 20 includes a liquid refrigerant pipe 21 and a gas refrigerant pipe 22. The liquid refrigerant pipe 21 principally guides, for example, the second refrigerant R2 in a liquid state or in a gas-liquid two-phase state. The gas refrigerant pipe 22 principally guides, for example, the second refrigerant R2 in a gas state.
The first heat source unit 30 is installed outside the room used by the user, typically outdoors. The first heat source unit 30 includes a compressor 31, a four-way switching valve 32, a heat source heat exchanger 33, a heat source fan 34, a heat source expansion valve 35, a liquid refrigerant port 36, a gas refrigerant port 37, and first lubricating oil L1.
The compressor 31 sucks the second refrigerant R2 in a low-pressure gas state and discharges the second refrigerant R2 in a high-pressure gas state.
The four-way switching valve 32 changes connection of pipes. During cooling operation, the four-way switching valve 32 achieves connection depicted by solid lines in
The heat source heat exchanger 33 exchanges heat between the second refrigerant R2 and air. When the refrigerant cycle apparatus 100 performs a cooling operation, the heat source heat exchanger 33 functions as a condenser or a heat radiator for the second refrigerant R2. When the refrigerant cycle apparatus 100 performs the heating operation, the heat source heat exchanger 33 functions as an evaporator or a heat absorber for the second refrigerant R2.
The heat source fan 34 generates an air flow passing through the heat source heat exchanger 33 to promote heat exchange at the heat source heat exchanger 33.
The heat source expansion valve 35 controls a flow rate of the second refrigerant R2. The heat source expansion valve 35 functions as a decompressor for the second refrigerant R2, and thus, for example, can change the second refrigerant R2 in a liquid state into the second refrigerant R2 in a gas-liquid two-phase state.
The refrigerant cycle apparatus 100 may include only one of the utilization expansion valve 11 or the heat source expansion valve 35.
The liquid refrigerant port 36 is an openable and closable valve. The liquid refrigerant port 36 is connected to the liquid refrigerant pipe 21. The liquid refrigerant port 36 is opened when the refrigerant cycle apparatus 100 is used. The liquid refrigerant port 36 is closed when the first heat source unit 30 is installed, for example.
The gas refrigerant port 37 is an openable and closable valve. The gas refrigerant port 37 is connected to the gas refrigerant pipe 22. The gas refrigerant port 37 is opened when the refrigerant cycle apparatus 100 is used. The gas refrigerant port 37 is closed when the first heat source unit 30 is installed, for example.
The first heat source unit 30 accommodates the first lubricating oil L1 for lubricating a sliding portion of the compressor 31.
The remote controller 40 is provided so as to correspond to each utilization unit 10. The remote controller 40 enables the user to provide an instruction to the refrigerant cycle apparatus 100. The remote controller 40 can communicate with the utilization unit 10.
The existing refrigerant cycle apparatus 200 includes the utilization unit 10, the connection piping 20, and a second heat source unit 90. The existing refrigerant cycle apparatus 200 uses the second refrigerant R2.
The utilization unit 10 of the existing refrigerant cycle apparatus 200 is the same as the utilization unit 10 included in the refrigerant cycle apparatus 100.
The connection piping 20 of the existing refrigerant cycle apparatus 200 is the same as the connection piping 20 included in the refrigerant cycle apparatus 100.
The second heat source unit 90 of the existing refrigerant cycle apparatus 200 is different from the first heat source unit 30 included in the refrigerant cycle apparatus 100. The second heat source unit 90 includes a compressor 91, the four-way switching valve 32, a heat source heat exchanger 93, a heat source fan 94, a heat source expansion valve 95, a liquid refrigerant port %, and a gas refrigerant port 97. These constituent parts have functions similar to functions of constituent parts of the first heat source unit 30. The second heat source unit 90 is assumed to be a product of an older model than the first heat source unit 30.
The second heat source unit 90 accommodates second lubricating oil L2 for lubricating a sliding portion of the compressor 91.
The existing refrigerant cycle apparatus 200 is installed by the following method.
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In the factory F, a refrigerant storage container 51 that accommodates the second refrigerant R2 for additional filling is prepared. In the present description, it is assumed that the number of refrigerant storage containers 51 is one. Alternatively, the number of refrigerant storage containers 51 may be two or more.
One or a plurality of utilization units 10 and the connection piping 20 are installed in a building B.
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Non-flammable refrigerants currently on the market, such as the second refrigerant R2, are being replaced by refrigerants having a small GWP but having flammability or toxicity (hereinafter, referred to as a “flammable refrigerant or the like”), such as the first refrigerant R1, for the purpose of suppressing global warming. It is therefore expected that a refrigerant cycle apparatus using a flammable refrigerant or the like, such as the above-mentioned refrigerant cycle apparatus 100 to be installed, will become dominant among refrigerant cycle apparatuses manufactured in factories in the future. On the other hand, in some buildings, the use of a flammable refrigerant or the like may be deemed undesirable from the view-point of safety. In this way, there is still a need for both a non-flammable refrigerant and a flammable refrigerant or the like in the market.
In order to respond to all refrigerant needs, it is conceivable to adopt the following installation procedure. First, a refrigerant circuit of a refrigerant cycle apparatus to be shipped from a factory is evacuated or filled with air. Next, the refrigerant cycle apparatus is transported to an installation site. Finally, the installed refrigerant cycle apparatus is filled with a desired refrigerant.
However, the refrigerant cycle apparatus not accommodating a refrigerant could be damaged by transportation.
Therefore, there are some need for an installation method that enables the user to employ a flammable refrigerant or the like.
An installation method according to a first embodiment will be described. In this installation method, the second heat source unit 90 included in the existing refrigerant cycle apparatus 200 is replaced with the first heat source unit 30 to be newly shipped. Specifically, the refrigerant cycle apparatus 100 is installed by the following method.
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Next, the first refrigerant R1 is recovered from the first heat source unit 30. At this time, the first refrigerant R1 in a gas state may be recovered from the first heat source unit 30 through the gas refrigerant port 37. During the recovery of the first refrigerant R1, the first lubricating oil L1 accommodated in the first heat source unit 30 may be left in the first heat source unit 30. By recovering the first refrigerant R1 in a gas state, the first lubricating oil L1 in a liquid state can remain in the first heat source unit 30.
The recovered first refrigerant R1 is regenerated by a refrigerant regenerator 70. In this regeneration processing, the refrigerant regenerator 70 may remove water included in the first refrigerant R1 from the first refrigerant R1.
The regenerated first refrigerant R1 is transferred from the refrigerant regenerator 70 to the first refrigerant storage container 51.
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The regenerated second refrigerant R2 is transferred from the refrigerant regenerator 70 to the second refrigerant storage container 52 and the third refrigerant storage container 53.
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Next, the first heat source unit 30 is connected to the connection piping 20. Accordingly, the refrigerant cycle apparatus 100 is configured.
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The display unit 41 may display not only the name of the second refrigerant R2 but also at least part of the properties (for example, flammability or non-flammability, toxicity or non-toxicity, specific gravity, or the like) of the second refrigerant R2, the fact that the second refrigerant R2 accommodated in the refrigerant cycle unit 100 has been once recovered from any refrigerant circuit, and the fact that the second refrigerant R2 accommodated in the refrigerant cycle unit 100 has been regenerated. The display unit 41 may display the above information not only as characters but also in a form such as a bar code or a QR code (registered trademark).
An optimum operation of the refrigerant cycle apparatus 100 (for example, an opening degree of the expansion valve and a number of rotations of the compressor) varies depending on a type of refrigerant used. Thus, a control unit of the refrigerant cycle apparatus 100 needs to know the type of refrigerant to be used.
The refrigerant cycle apparatus 100 may include a refrigerant setting switch for the purpose of notifying the control unit of the type of refrigerant. In this case, an installation operator can manually switch the refrigerant setting switch to notify the control unit of the type of refrigerant. The control unit can change the operation of the refrigeration cycle apparatus 100 in accordance with the type of refrigerant designated by the refrigerant setting switch.
Alternatively, the control unit of the refrigerant cycle apparatus 100 may automatically recognize the type of refrigerant. For example, the control unit can recognize the type of refrigerant used by knowing a balance point of a refrigerant cycle.
(3-1)
In the installation method according to the present embodiment, the second refrigerant R2 can be used in the refrigerant cycle apparatus 100 configured using a new first heat source unit 30. Therefore, the refrigerant cycle apparatus 100 of a new model can be installed in an environment that does not permit use of the first refrigerant R1 having flammability or toxicity.
(3-2)
In the installation method according to the present embodiment, the refrigerant cycle apparatus 100 of a new model can be configured using a part of the existing refrigerant cycle apparatus 200. Therefore, costs of the refrigerant cycle apparatus 100 can be reduced.
(3-3)
In the installation method according to the present embodiment, the second refrigerant R2 is accommodated in the second refrigerant storage container 52 and the third refrigerant storage container 53. It is therefore easy to know the amount of the recovered second refrigerant R2 by the number of refrigerant storage containers used.
(3-4)
In the installation method according to the present embodiment, at least one of the second lubricating oil L2 or water is removed from the second refrigerant R2. Therefore, the recovered second refrigerant R2 can be reused in an apparatus that does not permit mixing of the second lubricating oil L2 or water.
(3-5)
In the installation method according to the present embodiment, the first lubricating oil L1 may be left in the first heat source unit 30. Therefore, when the second refrigerant R2 permits the use of the first lubricating oil L1, an installation cost can be reduced.
(3-6)
In the installation method according to the present embodiment, the first refrigerant R1 may be recovered in a gas state from the first heat source unit 30. It is therefore possible to suppress a situation in which the first lubricating oil L1 accommodated in the first heat source unit 30 is taken out from the first heat source unit 30 together with the first refrigerant R1.
(3-7)
In the installation method according to the present embodiment, the first refrigerant R1 recovered from the first heat source unit 30 is regenerated. Therefore, the first refrigerant R1 can be reused.
(3-8)
The installation method according to the present embodiment enables a maintenance worker of the refrigerant cycle apparatus 100 to easily understand that the second refrigerant R2 is used in the refrigerant cycle apparatus 100 by viewing the display S or the display unit 41. It is therefore possible to suppress a situation in which the refrigerant cycle apparatus 100 is used in an incorrect manner.
(3-9)
In the installation method according to the present embodiment, the second refrigerant R2 may include a component identical to the component of the first refrigerant R1. Thus, the first refrigerant R1 recovered in the step of recovering the first refrigerant R1 can be reused in the refrigerant cycle apparatus 100.
For example, a case where the first refrigerant R1 is R32 and the second refrigerant R2 is R410A is considered. R410 is a mixture of R32 and R125. Thus, the first refrigerant R1 (or R32) recovered and regenerated from the existing refrigerant cycle apparatus 200 can be used as a raw material of the regenerated second refrigerant R2 (or R410A) used in the refrigerant cycle apparatus 100.
By regenerating the recovered first refrigerant R1 in this manner, the regenerated first refrigerant R1 can be used in a different apparatus.
(3-10)
In the installation method according to the present embodiment, by regenerating the second refrigerant R2 recovered from the existing refrigerant cycle apparatus 200, a production amount of the second refrigerant R2 having a large second GWP can be reduced as compared with a case where the installation method according to the present embodiment is not used. Therefore, global warming can be suppressed.
(3-11)
The refrigerant cycle apparatus 100 according to the present embodiment uses the second refrigerant R2. Therefore, the refrigerant cycle apparatus 100 using the first heat source unit 30 of a new model can be used in an environment that does not permit use of the first refrigerant R1.
(3-12)
The maintenance worker of the refrigerant cycle apparatus 100 can easily obtain information on the refrigerant used in the refrigerant cycle apparatus 100 according to the present embodiment by viewing the display S or the display unit 41. It is therefore possible to suppress a situation in which the refrigerant cycle apparatus 100 is used in an incorrect manner.
An installation method according to a second embodiment will be described. This installation method is different from the installation method according to the first embodiment in that the first heat source unit 30 is used as a refrigerant storage container for accommodating the second refrigerant R2.
In the installation method according to the second embodiment, the second heat source unit 90 included in the existing refrigerant cycle apparatus 200 is replaced with the first heat source unit 30 to be newly shipped, as in the first embodiment.
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(1-2) Second step (step S202)
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Next, the first refrigerant R1 is recovered from the first heat source unit 30. At this time, the first refrigerant R1 in a gas state may be recovered from the first heat source unit 30 through the gas refrigerant port 37. During the recovery of the first refrigerant R1, the first lubricating oil L1 accommodated in the first heat source unit 30 may be left in the first heat source unit 30. By recovering the first refrigerant R1 in a gas state, the first lubricating oil L1 in a liquid state can remain in the first heat source unit 30.
The recovered first refrigerant R1 is regenerated by a refrigerant regenerator 70. In this regeneration processing, the refrigerant regenerator 70 may remove water included in the first refrigerant R1 from the first refrigerant R1.
The regenerated first refrigerant R1 is transferred from the refrigerant regenerator 70 to the first refrigerant storage container 51.
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The regenerated second refrigerant R2 is transferred from the refrigerant regenerator 70 to the first heat source unit 30 and the second refrigerant storage container 52.
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The setting of the type of refrigerant in the second embodiment is similar to that in the first embodiment.
In the installation method according to the present embodiment, the first heat source unit 30 is used as a storage container for the second refrigerant R2. Therefore, since the number of refrigerant storage containers required for installing the refrigerant cycle apparatus 100 can be reduced, the installation cost can be reduced.
An installation method according to a third embodiment will be described. In this installation method, unlike the first embodiment and the second embodiment, the second refrigerant R2 recovered from a separate-system refrigerant cycle apparatus 300 that does not share constituent parts with the refrigerant cycle apparatus 100 is used in the refrigerant cycle apparatus 100. The separate-system refrigerant cycle apparatus 300 of a different system is an existing facility. The refrigerant cycle apparatus 100 is installed by the following method.
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Next, the second refrigerant R2 is recovered from the third heat source unit 390. The recovered second refrigerant R2 is regenerated by the refrigerant regenerator 70. The regenerated second refrigerant R2 is transferred from the refrigerant regenerator 70 to the first refrigerant storage container 51 and the second refrigerant storage container 52.
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In the building B, the refrigerant cycle apparatus 100 is installed using a new first heat source unit 30. The refrigerant cycle apparatus 100 is filled with the first refrigerant R1.
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The recovered first refrigerant R1 is regenerated by a refrigerant regenerator 70. In this regeneration processing, the refrigerant regenerator 70 may remove water included in the first refrigerant R1 from the first refrigerant R1.
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The setting of the type of refrigerant in the third embodiment is similar to that in the first embodiment.
In the installation method according to the present embodiment, the refrigerant cycle apparatus 100 that is new as a whole can be installed using the first heat source unit 30 of a new mode.
Although the embodiments of the present disclosure have been described above, it will be understood that various changes in form and details can be made without departing from the spirit and scope of the present disclosure described in claims.
This is a continuation of International Application No. PCT/JP2020/009279 filed on Mar. 4, 2020. The entire disclosures of this application is incorporated by reference herein.
Number | Date | Country | |
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Parent | PCT/JP2020/009279 | Mar 2020 | US |
Child | 17898040 | US |