This application is a National Stage of International Patent Application No. PCT/CN2016/108739, filed on Dec. 6, 2016, which claims priority and benefits of Chinese Patent Application No. 201521051917.0, filed with State Intellectual Property Office on Dec. 16, 2015, the entire contents of which are incorporated herein by reference.
The present disclosure relates to a technical field of heat exchange, and more particularly to a heat exchanger coil and a heat exchanger having the same.
A parallel-flow heat exchanger such as a multichannel heat exchanger includes a fin, a flat tube and a header. A refrigerant flows in the flat tube and the header, and the fin exchanges heat with ambient air. When an evaporation temperature of the refrigerant is low, and the ambient air has a high humidity, there is a large temperature difference between the fin and the ambient air, which may speed up frosting and shorten a frosting cycle, and thus affect an energy efficiency ratio of a heat exchanger because a gap between flat tubes is jammed in a short time.
Embodiments of the present disclosure seek to solve at least one of the problems existing in the related art to at least some extent. The present disclosure provides a heat exchanger coil having a long frosting cycle and a high energy efficiency ratio.
The present disclosure further provides a heat exchanger having the above heat exchanger coil.
In order to achieve above objectives, a first aspect of embodiments of the present disclosure is directed toward a heat exchanger coil, including: a plurality of flat tubes, each flat tube having a length direction oriented along a vertical direction; and a plurality of fins, in which each fin is disposed between adjacent flat tubes and includes a plurality of fin units arranged along the length direction of the flat tube and connected sequentially into a corrugated shape. Each fin unit has a windward end portion and a leeward end portion opposite to each other in a width direction of the flat tube. At least one end portion of the windward end portion and the leeward end portion of each fin unit extends beyond the plurality of flat tubes along the width direction of the flat tube and is provided with a protrusion.
The heat exchanger coil according to embodiments of the present disclosure has a long frosting cycle and a high energy efficiency ratio.
A second aspect of embodiments of the present disclosure is directed toward a heat exchanger. The heat exchanger includes: a first header; a second header; and a heat exchanger coil according to the first aspect of embodiments of the present disclosure. A first end of each flat tube of the heat exchanger coil is connected to the first header, and a second end of each flat tube of the heat exchanger coil is connected to the second header.
The heat exchanger according to embodiments of the present disclosure has a long frosting cycle and a high energy efficiency ratio, because the heat exchanger is provided with the heat exchanger coil according to the first aspect of embodiments of the present disclosure.
Other advantages of the invention will be readily appreciated as the same becomes better understood by reference to the following detailed description when considered in connection with the accompanying drawings, wherein:
heat exchanger 1;
flat tube 10; fin 20;
fin unit 100; windward end portion 110; leeward end portion 120; protrusion 130; first protrusion segment 131; second protrusion segment 132; drain hole 140; turn-up 141; first turn-up segment 142; second turn-up segment 143; louver 150; heat exchange protrusion 160.
Reference will be made in detail to embodiments of the present disclosure. The embodiments described herein with reference to drawings are explanatory, illustrative, and used to generally understand the present disclosure. The embodiments shall not be construed to limit the present disclosure. The same or similar elements and the elements having same or similar functions are denoted by like reference numerals throughout the descriptions.
Referring to the drawings, a heat exchanger coil 1 according to an embodiment of the present disclosure is described below.
As show in
In order for convenient understanding, the plurality of flat tubes 10 is taken as reference to describe relative positions of components. The plurality of flat tubes 10 are spaced apart from and parallel with one another, i.e., each flat tube 10 has a same orientation. A length direction of the flat tube 10 is indicated by an arrow A in the drawings, a width direction of the flat tube 10 is indicated by an arrow B in the drawings, and a thickness direction of the flat tube 10 is indicated by an arrow C in the drawings.
Specifically, the plurality of flat tubes 10 are spaced apart from and parallel with one another along the thickness direction C thereof, and the length direction of the flat tube 10 may be orientated along a vertical direction or a horizontal direction. Each fin 20 is disposed between adjacent flat tubes 10. Each fin 20 includes a plurality of fin units 100 arranged along the length direction A of the flat tube 10, and the plurality of fin units 100 may be sequentially connected together into a corrugated shape along the length direction A of the flat tube 10, so as to form a corrugated fin 20.
Each fin unit 100 has a windward end portion 110 and a leeward end portion 120, and the windward end portion 110 and the leeward end portion 120 are opposite to each other in the width direction B of the flat tube 10. It should be understood that the windward end portion 110 refers to one of two end portions of each fin unit 100, which is firstly in contact with an air flow to exchange heat with the air flow, and the leeward end portion 120 refers to the other one of the two end portions of each fin unit 100, which is in contact with the air flow to exchange heat with the air flow later. At least one of the windward end portion 110 and the leeward end portion 120 of each fin unit 100 extends beyond the plurality of flat tubes 10 along the width direction B of the flat tube 10. In other words, at least one end portion of each fin unit 100 extends beyond the plurality of flat tubes 10 along the width direction B of the flat tube 10. The at least one of the windward end portion 110 and the leeward end portion 120 of each fin unit 100 is provided with at least one of a protrusion 130 and a drain hole 140, that is a portion of each fin unit 100 extending beyond the plurality of flat tubes 10 along the width direction B thereof is provided with at least one of the protrusion 130 and the drain hole 140.
In the heat exchanger coil 1 according to an embodiment of the present discourse, since at least one of the windward end portion 110 and the leeward end portion 120 of each fin unit 100 extends beyond the plurality of flat tubes 10 along the width direction B thereof, on one hand, a heat exchange area of the plurality of fins 20 can be increased, which means a thinner layer of frost in the condition of equal frost quantity, and on the other hand, a portion of each fin unit 100 extending beyond the plurality of flat tubes 10 may lead the frost among the plurality of flat tubes 10 outwards, which may reduce a degree of the plurality of fins 20 being jammed by frost, prolong a frosting cycle and thus improve an energy efficiency ratio of the heat exchanger coil 1.
Further, the portion of each fin unit 100 extending beyond the plurality of flat tubes 10 is provided with at least one of the protrusion 130 and the drain hole 140. The protrusion 130 can improve air agitation to increase the heat exchange efficiency, and the drain hole 140 can facilitate discharge of the melted frost while defrosting.
As shown in
Accordingly, the heat exchanger coil 1 according to the embodiment of the present disclosure has advantages of a long frosting cycle and a high energy efficiency ratio.
Referring to the drawings, the heat exchanger coil 1 according to specific embodiments of the present disclosure is described in the flowing. As show in
Specifically, as shown in
Optionally, as shown in
Air firstly flows through the protrusion 130 on the windward end portion 110 and then flows to the louver 150. Because the windward end portion 110 extends beyond the plurality of flat tubes 10, the temperature thereat is not too low. Moreover, as a heat exchange efficiency of the protrusion 130 is lower than that of the louver 150, the air will not be quickly frosted but only loses some moisture when encountering cold while flowing through the protrusion 130, and moisture at the windward end portion 110 can be easily drained so as to achieve dehumidification. The air after dehumidification flows through the louver 150, and the frost on the louver 150 can be effectively reduced because the air has less moisture. Furthermore, the moisture at the protrusion 130 can be conveniently drained, and thus the frost on the windward end portion 110 is reduced. Therefore, the frost among the plurality of flat tubes 10 can be leaded out of the plurality of flat tubes 10 to prolong a cycle of the plurality of fins 20 being jammed by frost. Providing the drain hole 140 may facilitate drainage of the melted frost on the portion of each fin unit 100 extending beyond the plurality of flat tubes 10.
Specifically, as shown in
Each protrusion 130 may be in a shape of a triangular prism extending along the thickness direction C of the flat tube 10, to improve the air agitation and facilitate drainage, and adjacent protrusions 130 are spaced apart from or connected with each other along the width direction B of the flat tube 10.
Optionally, as shown in
Furthermore, as shown in
Advantageously, as shown in
Further, as shown in
Specifically, as shown in
Further, as shown in
Optionally, as shown in
Specifically, each fin unit 100 may be provided with a plurality of protrusions 130 arranged along the width direction B of the flat tube 10, each protrusion 130 may be in a shape of a triangular prism extending along the thickness direction C of the flat tube 10, and adjacent protrusions 130 are spaced apart from or connected with each other along the width direction B of the flat tube 10.
Air firstly flows through the protrusions 130 on the windward end portion 110 and then flows to the louver 150. Because the windward end portion 110 extends beyond the plurality of flat tubes 10, the temperature thereat is not too low. Moreover, as a heat exchange efficiency of the protrusions 130 is lower than that of the louver 150, the air will not be quickly frosted but only loses some moisture when encountering cold while flowing through the protrusions 130, and moisture at the windward end portion 110 can be easily drained so as to achieve dehumidification. The air after dehumidification flows through the louver 150, the frost on the louver 150 can be effectively reduced because the air has less moisture, and the moisture at the protrusions 130 can be conveniently drained to reduce frost on the windward end portion 110. Therefore, the frost among the plurality of flat tubes 10 can be leaded out of the plurality of flat tubes 10 to prolong a cycle of the plurality of fins 20 being jammed by frost.
Optionally, as shown
In other words, the closer to the windward end portion 110, the smaller the length of the louver 150. With respect to the longest louver 150, a plurality of heat exchange protrusions 160 are provided between the shorter louver 150 and the flat tube 10 adjacent to the shorter louver 150, and each heat exchange protrusion 160 may have a spherical segment shape. On one hand, a heat transfer path between the portion of each fin unit 100 extending beyond the flat tubes 10 and the flat tubes 10 is enlarged to improve a heat exchange efficiency of the portion of the fin unit 100 extending beyond the flat tubes 10, and on the other hand, the heat exchange protrusions 160 improve the air agitation and facilitate the heat exchange.
Advantageously, each fin unit 100 is provided with at least one of the protrusion 130, the drain hole 140, the louver 150 and the heat exchange protrusion 160 at a portion thereof between adjacent rows. Of course, each fin unit 100 may not be provided with any structure at the portion thereof between the adjacent rows.
For example, as shown in
As shown in
As shown in
A heat exchanger according to an embodiment of the present disclosure is described in the following. The heat exchanger according to the embodiment of the present disclosure includes a first header, a second header and a heat exchanger coil.
The heat exchanger coil is the heat exchanger coil 1 according to the above embodiments of the present disclosure, a first end of each flat tube 10 of the heat exchanger coil 1 is connected to the first header, and a second end of each flat tube 10 of the heat exchanger coil 1 is connected to the second header.
The heat exchanger according to the embodiment of the present disclosure is provided with the heat exchanger coil 1 according to the above embodiments of the present disclosure, thus having a long frosting cycle and a high energy efficiency ratio.
Other configurations and operations of the heat exchanger according to the embodiment of the present disclosure are known to those skilled in the related art, which thus will not be described in detail herein.
In the present disclosure, unless specified or limited otherwise, a structure in which a first feature is “on” or “below” a second feature may include an embodiment in which the first feature is in direct contact with the second feature, and may also include an embodiment in which the first feature and the second feature are not in direct contact with each other, but are contacted via an additional feature formed therebetween. Furthermore, a first feature “on,” “above,” or “on top of” a second feature may include an embodiment in which the first feature is right or obliquely “on,” “above,” or “on top of” the second feature, or just means that the first feature is at a height higher than that of the second feature; while a first feature “below,” “under,” or “on bottom of” a second feature may include an embodiment in which the first feature is right or obliquely “below,” “under,” or “on bottom of” the second feature, or just means that the first feature is at a height lower than that of the second feature.
Reference throughout this specification to “an embodiment,” “some embodiments,” “one embodiment”, “another example,” “an example,” “a specific example,” or “some examples,” means that a particular feature, structure, material, or characteristic described in connection with the embodiment or example is included in at least one embodiment or example of the present disclosure. Thus, the appearances of the phrases such as “in some embodiments,” “in one embodiment”, “in an embodiment”, “in another example,” “in an example,” “in a specific example,” or “in some examples,” in various places throughout this specification are not necessarily referring to the same embodiment or example of the present disclosure. Furthermore, the particular features, structures, materials, or characteristics may be combined in any suitable manner in one or more embodiments or examples.
Although explanatory embodiments have been shown and described, it would be appreciated by those skilled in the art that the above embodiments cannot be construed to limit the present disclosure, and changes, alternatives, and modifications can be made in the embodiments without departing from spirit, principles and scope of the present disclosure.
Number | Date | Country | Kind |
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2015 2 1051917 U | Dec 2015 | CN | national |
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PCT/CN2016/108739 | 12/6/2016 | WO | 00 |
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WO2017/101714 | 6/22/2017 | WO | A |
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