1. Field of the Invention
The present invention relates to a multi-air conditioner having a plurality of outdoor units and indoor units, and more particularly, to a multi-air conditioner which enables to equally distribute a refrigerant and oil by providing a pressure equalizing pipe for connecting the outdoor units and improves operational stability, reliability and efficiency by equally using components of the outdoor units.
2. Description of the Background Art
As for general air-conditioners, there is what is called a heat pump or an air conditioner for four seasons which is designed to allow the flow of a refrigerant to be reversed and thus capable of both cooling and heating.
Meanwhile, a multi-air conditioner is provided with indoor units respectively disposed at a plurality of indoor spaces and with a plurality of outdoor units generally in order to effectively cope with a partial load meaning that only some of the indoor units are operated. Researches have been made with regard to connection structures of refrigerant conveying conduits in such a plurality of indoor units and outdoor units. As one example, a multi-air conditioner provided with a pressure equalizing pipe connecting between the outdoor units is disclosed in U.S. Pat. No. 5,279,131.
Firstly, as shown in
An operation of such conventional multi-air conditioner is as follows.
In a cooling operation, a refrigerant takes indoor heat away from the indoor units 2A, 2B, 2C and 2D including indoor exchangers and moves to the outdoor units 1A and 1B through the liquefied refrigerant conduit 3 and the gasified refrigerant conduit 4. At this time, the refrigerant keeps low-pressure. The pressure of the refrigerant is increased in the compressors 11 provided to the outdoor units and so the high-pressure refrigerant exchanges the heat with the outdoor in the heat exchangers (not shown) of the outdoor units. After that, the pressure of the refrigerant drops in an expansion valve (not shown) and thus the refrigerant becomes low-pressure again. The low-pressure refrigerant circulates again to the indoor units.
In a heating operation, a refrigerant having emitted the heat to the indoor in the indoor exchangers moves to the outdoor units 1A and 1B, keeping high-pressure. The refrigerant which has become low-pressure in the expansion valve (not shown) exchanges the heat with the outdoor in the heat exchangers of the outdoor units 1A an 1B, and then moves to the compressor 11. The refrigerant whose pressure is increased circulates again to the indoor units.
Since the conventional multi-air conditioner in which the pressure equalizing conduit 9 and the oil equalizing conduit 10 communicate with each other between the oil separators 21 of the outdoor units 1A and 1B serves only to equalize the pressure of the high-pressure refrigerant in cooling/heating, it has problems as follows.
Firstly, in the heating operation, efficiency of a system is decreased due to uneven frosting since differences occur where the refrigerant becomes low-pressure between the outdoor units. In addition, in case there is a difference in a capacity of the compressors of the outdoor units or there are outdoor units in which compressors are not operated, operational stability and reliability of a system are decreased due to unequal distribution of the refrigerant and the oil.
Moreover, the pressure of the refrigerant is sharply increased where the refrigerant becomes high-pressure in the outdoor units being operated in the cooling operation, which may cause a damage to the compressors.
In addition, when some of the outdoor units are operated in both cooling and heating, elements being operated can be overloaded, and besides components cannot be evenly used.
Therefore, an object of the present invention is to provide a multi-air conditioner which enables to equally distributing a refrigerant and oil by providing a pressure equalizing pipe for connecting outdoor units and improve operational stability, reliability and efficiency of a system by evenly using components of the outdoor units.
To achieve these and other advantages and in accordance with the purpose of the present invention, as embodied and broadly described herein, there is provided a multi-air conditioner comprising: a plurality of indoor units for exchanging the heat with indoor air; a plurality of outdoor units, each outdoor unit having an outdoor heat exchanger for exchanging the heat and a compressor for compressing a fluid; a connecting pipe for connecting the indoor units with the outdoor units; and a pressure equalizing pipe for communicating the outdoor heat exchanger of one outdoor unit with the compressor of at least one other outdoor unit.
The foregoing and other objects, features, aspects and advantages of the present invention will become more apparent from the following detailed description of the present invention when taken in conjunction with the accompanying drawings.
The accompanying drawings, which are included to provide a further understanding of the invention and are incorporated in and constitute a part of this specification, illustrate embodiments of the invention and together with the description serve to explain the principles of the invention. In the drawings:
Reference will now be made in detail to the preferred embodiments of the present invention, examples of which are illustrated in the accompanying drawings.
As shown therein, the multi-air conditioner in accordance with the present invention comprises: a plurality of indoor units 100 for exchanging the heat with indoor air; a plurality of outdoor units 200 and 300, each outdoor unit having an outdoor heat exchanger 220 for exchanging the heat and a compressor 210 for compressing a fluid; a connecting pipe for connecting the indoor units 100 with the outdoor units 200 and 300; and a pressure equalizing pipe 400 for communicating the outdoor heat exchanger 220 of one outdoor unit with the compressors 210 of at least one other outdoor unit.
The each indoor unit 100 include: an indoor heat exchanger 110 disposed at an indoor space and exchanging the heat with indoor air; and an indoor expansion valve 130 disposed to be connected with the indoor heat exchanger 110 and changing a fluid into low pressure low temperature.
The outdoor units 200 include: a plurality of compressors 210 for compressing the fluid and changing the compressed fluid into high temperature high pressure; an accumulator 215 for separating the fluid supplied to the compressors 210 into a gas and a liquid; a 4-way valve 230 disposed at a discharge side of a plurality of compressors 210 and switching a flow channel of the fluid; an outdoor heat exchanger 220 connected with the 4-way valve 230 and exchanging the heat with the outdoor; and an outdoor expansion valve 240 connected with the outdoor heat exchanger 220 and changing the fluid into low temperature low pressure.
A plurality of compressors 210 are connected to communicate with an oil equalizing pipe 213 in order to properly distribute oil for each compressor, and oil separators 250 for separating the oil included in a refrigerant discharged from the compressors 210 and supplying the oil to an inlet side of the compressors 210. Along a flow direction of the fluid, check valves 255 are provided to the lower oil separators 250, respectively, preventing a backflow of the refrigerant.
The accumulator 215 is connected to the inlet side of the compressors 210, and provides a gaseous fluid alone to the compressors and returns a liquid fluid to the accumulator 215.
The 4-way valve 230 is connected with the outdoor heat exchanger 220, the accumulator 215 and the indoor units 100 in addition to the discharge side of the compressors 210, and changes a flow direction of the fluid according to cooling or heating.
The outdoor heat exchanger 220 is provided with an outdoor unit fan 260 for better heat exchanging. The outdoor heat exchanger 220 has one side provided with the check valve 245 and the outdoor expansion valve 240, and is connected with the indoor units 100.
In heating, the fluid passes through the outdoor expansion valve 240 is changed into low temperature low pressure, whereas in cooling, the fluid makes a detour toward the check valve 245.
The other outdoor unit 300 has the same construction as the above.
The pressure equalizing unit 400 includes: an inner piping part 410 having an end portion of one side which is connected to piping for connecting the 4-way valve 230 with the outdoor heat exchanger 220 and disposed in each of outdoor units 200 and 300; and a connecting piping part 420 connected to communicate with each of other ends of the inner piping part 410 to make the outdoor units 200 and 300 communicate with each other.
Each of inner piping part 410 has opening/closing valves 450 for opening/closing a flow channel, and each of opening/closing valves is mainly in a state of being opened after installation.
There can be a plurality of pressure equalizing pipes 400.
As for the pressure equalizing pipe 400, piping for connecting the 4-way valve 230 with the outdoor heat exchangers 220 of the outdoor units is preferably positioned to connect the outdoor units 200 and 300 to each other, like the embodiment of the present invention.
In addition, in the pressure equalizing pipe 400, piping for connecting the 4-way valve 230 with the compressors 210 of the outdoor units can be positioned to connect the outdoor units 200 and 300 to each other.
Preferably, the multi-air conditioner of the present invention further comprises a control unit for controlling the expansion valve and the outdoor unit fan of at least one among the outdoor units in which compressors are not operated.
As shown in
The controller 500 is made up of a microprocessor, or the like, has the control program, and selectively operates the 4-way valve 230, the outdoor unit fan 260 and the expansion valve 240 according to the selected mode. According to modes, the controller changes a flow direction of the fluid by changing the flow channel of the 4-way valve, or operates the outdoor unit fan and the expansion valve of the outdoor units which are not operated when the compressors of some outdoor units are operated.
Hereinafter, an operation effect of the present invention is described as follows.
Firstly, with reference to
A case that some of the outdoor units are operated is as follows. For convenience of description, let us suppose that the compressors 210 are all operated in the left outdoor unit 200, and the compressors 310 are not operated in the right outdoor unit 300. When only some of a plurality of indoor units are operated, some of the outdoor units are not operated often. The flow of the fluid regarding this is shown with arrows in
Next, the heating operation is as follows, referring to
In the above-described embodiment, two outdoor units are constructed, and the opening/closing valves for opening/closing the pressure equalizing pipe are installed to open/close the inner piping unit of each of the outdoor units and are mainly in a state of being opened after installation of each of the outdoor units. However, it is also possible that in case of more than three outdoor units, the opening/closing valves are constructed as electric ones which are opened/closed by an electric power in each inner piping part, and in case there are a plurality of outdoor units in which compressors are not operated, taking the amount of cooling load and power consumption into accounts, the control unit selectively controls the electric valves in order that a refrigerant flows to the outdoor heat exchanger in some of the outdoor units of which the compressors are not operated and the refrigerant does not flow in others.
In the embodiment, the air conditioner in which each of outdoor units is provided with the 4-way valve for switching the flow channel of the fluid is taken as an example, but it goes without saying that the present invention can be applied to an air conditioner not provided with the 4-way valve.
As described so far, the multi-air conditioner in accordance with the present invention is capable of preventing efficiency degradation of a system due to uneven frosting by equalizing the pressure between where the pressure of the refrigerant becomes low-pressure in the outdoor units in the heating operation.
In addition, when there occurs a difference in a capacity of the compressors between the outdoor units or there are outdoor units of which compressors are not operated, operational stability and reliability of a system can be secured by equally distributing a refrigerant and oil.
Moreover, by equalizing high pressure of the outdoor units which are operated in a cooling operation, the pressure is sharply increased to prevent a damage to the compressors.
Further, when some of the outdoor units are operated in both cooling and heating, efficiency of the system can be raised by evenly using components.
As the present invention may be embodied in several forms without departing from the spirit or essential characteristics thereof, it should also be understood that the above-described embodiments are not limited by any of the details of the foregoing description, unless otherwise specified, but rather should be construed broadly within its spirit and scope as defined in the appended claims, and therefore all changes and modifications that fall within the metes and bounds of the claims, or equivalence of such metes and bounds are therefore intended to be embraced by the appended claims.
Number | Date | Country | Kind |
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10-2004-0037009 | May 2004 | KR | national |
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5526777 | Taomo | Jun 1996 | A |
5548968 | Sada | Aug 1996 | A |
6735973 | Lee | May 2004 | B2 |
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0638777 | Feb 1995 | EP |
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Number | Date | Country | |
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20050257565 A1 | Nov 2005 | US |