The present invention relates to the field of heat exchangers, in particular to a heat exchanger having multi-channels manifold for improving homogenous distribution of refrigerant in a core of the heat exchanger.
Generally, heat exchangers are used in many applications to exchange heat between two or more fluids. The fluid circuits can be adapted for a refrigerant and a coolant, respectively. The refrigerant flow path can defined through the heat exchange elements provided in the heat exchanger. Generally, U-flow or two pass heat exchangers are preferred because heat exchange fluid i.e., the refrigerant, takes more time to flow across heat exchange tubes. As a result, the rate of heat exchange and thermal efficiency of the heat exchanger are increased. Although the rate of heat exchange and thermal efficiency are increased in two pass type heat exchangers, the heat exchangers experience some problems, such as non-uniform distribution of the heat exchange fluid across the heat exchange tubes. Particularly, the flow of heat exchange fluid in a first pass of the heat exchange tubes is non-uniform due to density difference in the heat exchange fluid. Such non-uniform distribution of the heat exchange fluid, the thermal efficiency of the heat exchanger is reduced and the heat exchange tubes can experience thermal shock at some heat exchange tubes.
To overcome such problems, the first pass of heat exchange tubes is further divided into two passes. Consequently, the heat exchange fluid flows uniformly across the first pass of the heat exchanger. As the first pass of heat exchange tubes is further divided into two passes, the pressure drop in the heat exchange fluid is increased. Due to this fact, the heat exchange fluid needs to be supplied at a higher pressure at an inlet of the heat exchanger, and a high power pump/compressor is required to achieve the uniform distribution of the heat exchange fluid across the heat exchange tubes, that can increase cost and size of the system. Further, non-uniform distribution of the heat exchange fluid across the heat exchange tubes of the heat exchanger reduces thermal efficiency and leads to thermal shock in some of the heat exchange tubes. As a result, service life of the heat exchange is reduced.
Accordingly, there is a need for an improved heat exchanger that promotes uniform flow of heat exchange fluid without increasing the pressure drop in the heat exchange fluid. Further, there is another need for a heat exchanger that enables uniform distribution of the heat exchange fluid in the heat exchange tubes without affecting cost and size of the heat exchanger.
In the present description, some elements or parameters can be indexed, such as a first element and a second element. In this case, unless stated otherwise, this indexation is only meant to differentiate and name elements which are similar but not identical. No idea of priority should be inferred from such indexation, as these terms can be switched without betraying the invention. Additionally, this indexation does not imply any order in mounting or use of the elements of the invention.
In view of the foregoing, an embodiment of the present invention herein provides a heat exchanger for a heat exchange fluid. The heat exchanger includes a first manifold having an inlet, being connected to the first manifold, at least one first channel and at least one second channel, and a second manifold spaced apart from the first manifold. The heat exchanger further comprises a plurality of heat exchange tubes fluidically connecting the first manifold and the second manifold. Further, the plurality of heat exchange tubes is divided into a first section of tubes and a second section of tubes. The first channel is directly connected to the inlet and a first set of tubes amongst the first section of tubes, while the second channel is directly connected to the inlet and a second set of tubes amongst the first section of tubes. Further, the first manifold is adapted to prevent the heat exchange fluid from travelling between the first channel and the second channel within the first manifold.
Further, the heat exchanger includes an outlet coupled to the first manifold. Further, the first section of tubes and the second section of tubes are arranged in at least two parallel stacks to provide at least one U-turn for the heat exchange fluid. Further, the first section of tubes fluidically connects with the second section of tubes through the second manifold
According to one aspect of the present invention, the first manifold includes a third channel directed connected to the outlet and a third set of tubes amongst the second section of tubes and a fourth channel directly connected to the outlet and a fourth set of tubes amongst the second section of tubes.
In one embodiment, the second manifold includes a partition. Further, the first set of tubes fluidically connects with the third set of tubes through the second manifold and the second set of tubes fluidically connects with the fourth set of tubes through the partition of the second manifold.
According to one aspect of the present invention, the heat exchanger further includes a connector block having the inlet formed on a first side of the connector block, wherein the inlet divides into a first passage and a second passage at a second side of the connector block. Further, the first passage and the second passage are parallel with respect to each other.
In one embodiment, the first passage and the second passage of the connector block fluidically connect with the first channel and the second channel of the first manifold respectively.
According to one aspect of the present invention, the connector block further comprises the outlet formed on the first side of the connector block, wherein the outlet divides into a third passage and a fourth passage at the second side of the connector block. Further, the third passage and the fourth passage are parallel with respect to each other.
In one embodiment, the third passage and the fourth passage of the connector block fluidically connect with the third channel and the fourth channel of the first manifold respectively.
The other characteristics, details and advantages of the invention can be inferred from the description of the invention hereunder. A more complete appreciation of the invention and many of the attendant advantages thereof will be readily obtained as the same becomes better understood by reference to the following detailed description when considered in connection with the accompanying figures, wherein:
shown in
It must be noted that the figures disclose the invention in a detailed enough way to be implemented, the figures helping to better define the invention if needs be. The invention should however not be limited to the embodiment disclosed in the description.
The present invention relates to a heat exchanger, particularly to heat exchanger manifolds. In a U-flow or two-pass heat exchanger, the flow of heat exchange fluid in a first pass of heat exchange tubes is not uniform due to density difference in the heat exchange fluid. To promote uniform flow of heat exchange fluid, the first pass of heat exchange tubes is further divided into two sets of heat exchange tubes and a heat exchanger manifold is provided with two channels. The two channels are connected with the two sets of heat exchange tubes respectively and are adapted to supply the heat exchange fluid to the two sets of heat exchange tubes simultaneously. Therefore, the heat exchange fluid uniformly flows through the two sets of heat exchange tubes, without increasing the pressure drop.
The heat exchange core 302 further comprises a baffle 310 to guide the coolant, entering from the first inlet 104A, across the heat exchange tubes 304. In one embodiment, the baffle 310 is provided between the first section of heat exchange tubes 304A and the second section of heat exchange tubes 304B. In one embodiment, the heat exchange core 302 includes the plurality of heat exchange tubes 304 stacked with a plurality of heat exchange fins in an alternate fashion. In another embodiment, the heat exchange tubes 304 can be flat tubes. Further, the connector block 202 enables introduction/reception of the refrigerant to/from the heat exchange core 302. The refrigerant flow and the coolant flow in and around the heat exchange core 302 are in heat-exchange configuration to enable heat exchange between the refrigerant and the coolant.
In one embodiment, the first set of heat exchange tubes 304A-1 can be one half of heat exchange tubes among the first section of heat exchange tubes 304A, and the second set of heat exchange tubes 304A-2 can be another half of heat exchange tubes among the first section of heat exchange tubes 304A. The first channel 402A and the second channel 402B are further connected to the inlet 204A to introduce the first set of heat exchange tubes 304A-1 and the second set of heat exchange tubes 304A-2. Particularly, the first channel 402A is directly connected to the inlet 204A and the first set of heat exchange tubes 304A-1, while the second channel 402B is directly connected to the inlet 204A and the second set of heat exchange tubes 304A-2.
In one embodiment, the first set of heat exchange tubes 304A-1 can be even numbered heat exchange tubes amongst the first section of heat exchange tubes 304A, and the second set of heat exchange tubes 304A-2 can be odd numbered heat exchange tubes amongst the first section of heat exchange tubes 304A. Further, the first set of heat exchange tubes 304A-1 and the second set of heat exchange tubes 304A-2 can include any number and/or order of heat exchange tubes among the first section of heat exchange tubes 304A. In another embodiment, the first set of heat exchange tubes 304A-1 and the second set of heat exchange tubes 304A-2 can include one or more number of heat exchange tubes among the first section of heat exchange tubes 304A as common. In other words, no of heat exchange tubes in the first set of heat exchange tubes 304A-1 and the second set of heat exchange tubes 302A-2 are different in number.
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Number | Date | Country | Kind |
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20461595.9 | Dec 2020 | EP | regional |
Filing Document | Filing Date | Country | Kind |
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PCT/EP2021/084691 | 12/8/2021 | WO |