This application is a U.S. national stage application of PCT/JP2013/061878 filed on Apr. 23, 2013, which claims priority to international application no. PCT/JP2012/002872, filed on Apr. 26, 2012, the contents of which are incorporated herein by reference.
The present invention relates to a heat exchanger included in a refrigeration cycle apparatus, such as an air-conditioning apparatus, a refrigeration cycle apparatus including the heat exchanger and an air-conditioning apparatus.
This kind of heat exchanger includes a plurality of passages. A refrigerant is evenly distributed (or divided into streams) to the passages in order to improve the performance of heat transfer of the heat exchanger. A technique has recently been developed to arrange a plurality of heat exchange units, each including a plurality of fins and a plurality of flat tubes, in a row direction which serves as an air passing direction, in which air passes through the heat exchange units, in order to further increase the efficiency of heat exchange (see, Patent Literature 1, for example).
In Patent Literature 1, first ends of the flat tubes of a first heat exchange unit are in communication with first ends of the flat tubes of a second heat exchange unit through a row straddling header. An inlet header evenly divides the refrigerant into streams, which flow through the flat tubes of the first heat exchange unit. The streams temporarily merge into a stream of the refrigerant in the row straddling header, the refrigerant turns to the second heat exchange unit, the refrigerant is again divided into streams which flow through the flat tubes of the second heat exchange unit, the streams merge into a stream of the refrigerant in an outlet header, and the refrigerant flows out of the outlet header.
Patent Literature 1: Japanese Unexamined Patent Application Publication No. 2003-75024 (Abstract, FIG. 1)
In Patent Literature 1, the refrigerant is evenly divided into streams which flow through the flat tubes of the first heat exchange unit and the streams temporarily merge into a stream of the refrigerant in the row straddling header. Accordingly, an initial evenly divided state is not maintained. Disadvantageously, uneven distribution of the refrigerant to the flat tubes of the second heat exchange unit results in a reduction in heat exchange efficiency of the heat exchanger.
The present invention has been made in consideration of the above-described disadvantage. An object of the present invention is to provide a heat exchanger including a plurality of heat exchange units arranged in an air passing direction in which air passes through the heat exchange units, the heat exchanger being capable of reducing uneven division of a refrigerant flowing from inlets of refrigerant passages to outlets thereof and thus exhibiting improved heat exchange performance, to provide a refrigeration cycle apparatus including the heat exchanger and to provide an air-conditioning apparatus.
The present invention provides a heat exchanger including a plurality of heat exchange units each including a plurality of heat transfer tubes through which a refrigerant in a gas-liquid two-phase state flows and a plurality of fins arranged such that air passes between adjacent fins in an air passing direction, the heat transfer tubes being arranged at multiple levels in a level direction perpendicular to the air passing direction, the heat exchange units being arranged in multiple rows in a row direction, serving as the air passing direction. The heat exchanger further includes a row straddling header. The heat exchange units at opposite ends in the row direction of the heat exchange units arranged in the multiple rows serve as an inlet heat exchange unit into which the refrigerant flows and an outlet heat exchange unit out of which the refrigerant flows. First ends of the heat transfer tubes being arranged at the multiple levels of adjacent heat exchange units in the row direction of the heat exchange units arranged in the multiple rows are in communication with the row straddling header to provide refrigerant passages through which the refrigerant flows such that the refrigerant flowing from inlets of the heat transfer tubes being arranged at the multiple levels of the inlet heat exchange unit turns in the row straddling header to outlets of the heat transfer tubes being arranged at the multiple levels of the outlet heat exchange unit. The row straddling header has an inner space separated into a plurality of chambers arranged in the level direction and the refrigerant passage is isolated for each chamber.
According to the present invention, the heat exchanger is capable of reducing uneven division of the refrigerant throughout the passages because an evenly divided state at an inlet of the heat exchanger is maintained to an outlet thereof, thus exhibiting improved heat exchange performance.
A heat exchanger 1 includes a first heat exchange unit 10 and a second heat exchange unit 20 arranged in a row direction, serving as an air passing direction in which air passes through the heat exchanger 1, an inlet header 30 that serves as a refrigerant divider, a row straddling header 40, and an outlet header 50.
The first heat exchange unit (outlet heat exchange unit) 10 includes a plurality of fins 11 arranged at regular intervals such that air passes between adjacent fins 11, and a plurality of flat tubes (heat transfer tubes) 12, through which a refrigerant flows, extending through the fins 11 in a direction of arrangement of the fins 11. The flat tubes 12 are arranged at multiple levels in a level direction perpendicular to the air passing direction. Each flat tube 12 has a plurality of through-holes 12a, serving as a refrigerant passage, as illustrated in
The inlet header 30 is disposed adjacent to one end of the second heat exchange unit 20 so as to extend in the level direction. The inlet header 30 is in communication with all of the flat tubes 22 of the second heat exchange unit 20. The inlet header 30 evenly divides the refrigerant flowing from a refrigerant inlet pipe 31 into streams and allows the streams to flow through the flat tubes 22.
The outlet header 50 is disposed adjacent to one end of the first heat exchange unit 10 so as to extend in the level direction. The outlet header 50 is in communication with all of the flat tubes 12 of the first heat exchange unit 10. The outlet header 50 combines the refrigerant streams having passed through the flat tubes 12 into a single stream of the refrigerant and allows the refrigerant to flow through a refrigerant outlet pipe 51.
The row straddling header 40 is disposed adjacent to the other end of each of the first and second heat exchange units 10 and 20 so as to extend in the level direction and straddle across the first and second heat exchange units 10 and 20. The row straddling header 40 is hollow and has an interior separated by partitions 41 into a plurality of chambers 42 arranged in the level direction. The number of chambers 42 is equal to the number of levels at which the flat tubes 12 and 22 are arranged. Each chamber 42 is provided with two through-holes 43 to which the ends of the flat tubes 12 and 22 at the same level are connected. The chamber 42 with such a configuration functions as a return passage into which the refrigerant having passed through the flat tube 22 flows and in which this refrigerant turns to the flat tube 12 as indicated by each arrow in
In the above-described configuration, a passage extending from an inlet of the flat tube 22 of the second heat exchange unit 20 to an outlet of the flat tube 12 of the first heat exchange unit 10 is isolated for each level (or each chamber 42).
The flat tubes 12 and 22, the fins 11 and 21, the inlet header 30, the row straddling header 40, and the outlet header 50 are made of, for example, aluminum or aluminum alloy.
To make the heat exchanger 1 with the above-described configuration, the flat tubes 12 and 22, the fins 11 and 21, the inlet header 30, the row straddling header 40, and the outlet header 50 are assembled and joined together by furnace soldering.
A refrigeration cycle apparatus 60 includes a compressor 61, a condenser 62, an expansion valve 63, which serves as a pressure reducing device, and an evaporator 64. The heat exchanger 1 is used as at least one of the condenser 62 and the evaporator 64. The refrigerant discharged from the compressor 61 flows into the condenser 62, where the refrigerant exchanges heat with air passing through the condenser 62 and thus turns into a high-pressure liquid refrigerant. The refrigerant flows out of the condenser 62. The high-pressure liquid refrigerant leaving the condenser 62 is pressure-reduced by the expansion valve 63, so that the refrigerant turns into a low-pressure two-phase refrigerant. The refrigerant flows into the evaporator 64. The low-pressure two-phase refrigerant, which has flowed into the evaporator 64, exchanges heat with air passing through the evaporator 64 and thus turns into a low-pressure gas refrigerant. The refrigerant is again sucked into the compressor 61.
When the heat exchanger 1 is used as the condenser 62, the refrigerant is allowed to flow from a downstream side to an upstream side in the air flow direction A in a return manner (hereinafter, this flow will be referred to as “counter flow”). On the other hand, as illustrated in
The flow of the refrigerant in the case where the heat exchanger 1 is used as the condenser 62 will now be described with reference to
The refrigerant flows through the refrigerant inlet pipe 31 into the inlet header 30, where the refrigerant is evenly divided into streams and the refrigerant streams flow into the inlets of the flat tubes 22 of the second heat exchange unit 20. The refrigerant streams pass through the flat tubes 22 and flow into the chambers 42 of the row straddling header 40. Each refrigerant stream turns to and flows into the flat tube 12 in the chamber 42.
Each refrigerant stream, obtained by evenly dividing the refrigerant, flows into the chamber 42, flows out of the chamber 42 without mixing with the other refrigerant streams in the other chambers 42, and then flows into the flat tube 12 of the first heat exchange unit 10. Accordingly, the refrigerant streams flowing out of the chambers 42 flow into the flat tubes 12 while being maintained in an evenly divided state. The refrigerant streams having passed through the flat tubes 12 merge into a single stream of the refrigerant in the outlet header 50. The refrigerant flows through the refrigerant outlet pipe 51 to the outside. When the heat exchanger 1 is used as the condenser 62, the refrigerant can be easily divided evenly because the refrigerant in a gas state flows into the heat exchanger 1. Accordingly, the inlet header 30, serving as a refrigerant divider, may be omitted. A component whose interior communicates with the flat tubes 22 of the second heat exchange unit 20 may be used.
Advantages of flowing the refrigerant in counter flow will now be described. The advantages of the refrigerant counter flow are associated with a temperature distribution of the refrigerant in a refrigerant passage from an inlet to an outlet.
As regards the single refrigerant or the azeotropic refrigerant mixture, as illustrated in
As regards the non-azeotropic refrigerant, as illustrated in
The condenser 62 is required to provide subcooling of, for example, about 10 degrees C. It is therefore necessary to ensure a sufficient amount of heat exchanged with air in a latter half of each refrigerant passage from the inlet to the outlet of the condenser 62.
If the parallel flow (see
Although the advantages of the counter flow in the condenser 62 are obtained in the use of a single refrigerant or an azeotropic refrigerant, the advantages are particularly enhanced in the use of a non-azeotropic refrigerant. Specifically, the non-azeotropic refrigerant in a two-phase gas-liquid state has a temperature glide because the gas saturation temperature differs from the liquid saturation temperature, as described above. Consequently, the temperature difference between the non-azeotropic refrigerant and air is larger than that between the azeotropic refrigerant and air. Thus, the advantages are enhanced.
In the above description, the heat exchanger 1 is used as the condenser 62. A case where the heat exchanger 1 is used as the evaporator 64 will now be described. Although either the counter flow or the parallel flow may be used when the heat exchanger 1 is used as the evaporator 64, the counter flow is preferable. In the case where the heat exchanger 1 is used as the evaporator 64, if the refrigerant is a non-azeotropic refrigerant, the refrigerant in a two-phase gas-liquid state has a temperature glide as described above and the temperature difference is accordingly increased, thus improving the heat exchange performance. Consequently, advantages of the counter flow are greater than those of the parallel flow.
The evaporator 64 provides superheat to increase the heat exchange performance. Typically, superheat which is about 1 or 2 degrees C. is less than subcooling which is 10 degrees C. Accordingly, advantages of the counter flow in the condenser 62 are greater than those in the evaporator 64.
If the heat exchanger 1 is exclusively used as an evaporator or a condenser, the configuration of
The configuration of
When the heat exchanger 1 with such a configuration is used as the evaporator 64, the parallel flow is provided, specifically, the refrigerant flows through the outlet header 50a, the first heat exchange unit 10, the row straddling header 40, the second heat exchange unit 20, and the inlet header 30 in that order. As described above, the refrigerant flows into the outlet header 50a when the heat exchanger 1 is used as the evaporator 64. Accordingly, the outlet header 50a is allowed to function as a refrigerant divider so that the refrigerant in a two-phase gas-liquid state which has flowed into the outlet header 50a is evenly divided into streams and the refrigerant streams flow into the respective flat tubes 12. On the other hand, when the heat exchanger 1 is used as the condenser 62, the counter flow is provided, specifically, the refrigerant flows through the inlet header 30, the second heat exchange unit 20, the row straddling header 40, the first heat exchange unit 10, and the outlet header 50a in that order.
According to Embodiment described above, the refrigerant stream passing through the flat tubes 12 and 22 at each level flows through the isolated refrigerant passage from the inlet to the outlet thereof in the first and second heat exchange units 10 and 20 without mixing with the other refrigerant streams at the other levels. Accordingly, the evenly divided state at the inlet is successfully maintained to the outlet, thus reducing uneven flow division. Consequently, the heat exchange efficiency of the heat exchanger 1 can be enhanced, thus achieving a highly efficient operation of the refrigeration cycle apparatus 60 including the heat exchanger 1.
When the heat exchanger 1 is used as the condenser 62, the refrigerant is allowed to flow in a counter flow manner, thus increasing the heat exchange efficiency. The advantages of the counter flow are significantly enhanced in the case where the refrigerant enclosed in the refrigeration cycle apparatus 60 is a non-azeotropic refrigerant.
The configuration of the heat exchanger according to the present invention is not limited to that illustrated in
Specifically, whether the evenly divided state can be maintained depends on a head difference in each chamber 42. An interval between the partitions 41 may be determined in consideration of the head difference. Providing a minimum number of partitions 41 results in a reduction in cost.
The velocity of air from an air-sending fan to supply air to the heat exchanger 1 is not uniform on the entire surface of the heat exchanger 1. There exists an air velocity distribution. For example, in a multi-air-conditioning apparatus for a building, an air-sending fan is disposed upstream of the heat exchanger 1. The air velocity in upper part of the heat exchanger is accordingly higher than that in lower part thereof. When the heat exchanger 1 is used as the evaporator 64, gasification in part with high air velocity is promoted more than that in part with low air velocity. The refrigerant is easily divided evenly in the part with high air velocity. In part of the row straddling header 40 which communicates with the flat tubes 12 and 22 extending in the part with high air velocity, therefore, the height (or length in the level direction) of each chamber 42 may be increased (or extended) by increasing the distance between the partitions 41.
A generally L-shaped heat exchanger can be formed by bending the generally I-shaped heat exchanger 1 in a direction indicated by an arrow in
Whether to form the heat exchanger 1 into an I-shape or an L-shape may be determined depending on a space for mounting the heat exchanger 1 in a casing that accommodates the heat exchanger 1. The shape may be determined so that the heat exchanger 1 can be mounted in an optimized mounting space at high density. The shape may be a U-shape or rectangular in addition to the I-shape and the L-shape. In any case, high-density placement in the mounting space allows for high heat exchange efficiency. In such a case, the heat exchanger 1 is configured such that the ends of the first and second heat exchange units 10 and 20 on each side are aligned.
The refrigerant divider 70 includes a header 71 that communicates with an end of each flat tube 12 and a distributor 74. The header 71 has an interior separated by one or more partitions 72 into a plurality of chambers 73 arranged in a longitudinal direction of the header 71. Each chamber 73 is connected to the distributor 74 with a capillary tube 75. In the refrigerant divider 70, the distributor 74 substantially evenly divides the refrigerant into streams and the refrigerant streams flow through the capillary tubes 75 into the chambers 73.
Each chamber 73 has a longitudinal length less than that of the header 71 measured when the header 71 has a continuous interior without being separated by the partitions 72. This reduces the influence of a head difference due to gravity, so that the refrigerant can be evenly divided into streams and the refrigerant streams can be supplied to the flat tubes 22 communicating with the respective chambers 73. The partition 72 is preferably disposed not for each level, but every multiple levels, as illustrated in
Number | Date | Country | Kind |
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PCT/JP2012/002872 | Apr 2012 | WO | international |
Filing Document | Filing Date | Country | Kind |
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PCT/JP2013/061878 | 4/23/2013 | WO | 00 |
Publishing Document | Publishing Date | Country | Kind |
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WO2013/161799 | 10/31/2013 | WO | A |
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Number | Date | Country | |
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20150059401 A1 | Mar 2015 | US |