This invention relates generally to heat exchangers and, more particularly, to multiple tube bank, flattened tube, finned heat exchangers.
Heat exchangers have long been used as evaporators and condensers in heating, ventilating, air conditioning and refrigeration (HVACR) applications. Historically, these heat exchangers have been round tube and plate fin (RTPF) heat exchangers. However, all-aluminum flattened tube plate fin heat exchangers are finding increasingly wider use in industry, including the HVACR industry, due to their compactness, thermal-hydraulic performance, structural rigidity, lower weight and reduced refrigerant charge, in comparison to conventional RTPF heat exchangers. Flattened tubes commonly used in HVACR applications typically have an interior subdivided into a plurality of parallel flow channels. Such flattened tubes are commonly referred to in the art as multi-channel tubes, mini-channel tubes or micro-channel tubes.
A typical flattened tube, finned heat exchanger includes a first manifold, a second manifold, and a single tube bank formed of a plurality of longitudinally extending flattened heat exchange tubes disposed in spaced parallel relationship and extending between the first manifold and the second manifold. The first manifold, second manifold and tube bank assembly is commonly referred to in the heat exchanger art as a slab. Additionally, a plurality of fins are disposed between the neighboring pairs of heat exchange tubes for increasing heat transfer between a fluid, commonly air in HVACR applications, flowing over the outer surface of the flattened tubes and along the fin surfaces and a fluid, commonly refrigerant in HVACR applications, flowing inside the flattened tubes. Such single tube bank heat exchangers, also known as single slab heat exchangers, have a pure cross-flow configuration.
Double bank flattened tube and fin heat exchangers are also known in the art. In conventional double bank flattened tube and fin heat exchangers are typically formed of two conventional fin and tube slabs, one spaced behind the other. A challenge in manufacturing multiple bank heat exchangers is maintaining a desired spacing between the individual tube banks, particularly during the manufacture assembly and furnace brazing of the multiple bank heat exchanger.
A multiple bank, flattened tube and folded fin heat exchange unit is provided wherein spacing between tube banks is achieved by a fin notch protruding outwardly from the fin caps of folded fin(s) into a gap between the trailing edges of the heat exchange tube segments of a first tube bank and the leading edges of the heat exchange tube segments of a second tube bank disposed next rearward of the first tube bank. The fin notch has a notch width defining the desired depth of the gap to be maintained between the two tube banks. The fin notch may have a notch height equal to at least one half of the thickness of the flattened tube heat exchange tube segments. In an embodiment, the fin notch may have a notch height in range from at least one half of the thickness of the flattened heat exchange tube segments to equal to the thickness of the flattened heat exchange tube segments. In an embodiment, the fin notch may have a notch height in range from at least one half of the thickness of the flattened heat exchange tube segments to less than the thickness of the flattened heat exchange tube segments.
For a further understanding of the disclosure, reference will be made to the following detailed description which is to be read in connection with the accompanying drawing, where:
An exemplary embodiment of a multiple bank flattened tube finned heat exchanger unit, generally designated 10, in accordance with the disclosure is depicted in
The first tube bank 100 includes a first manifold 102, a second manifold 104 spaced apart from the first manifold 102, and a plurality of heat exchange tube segments 106, including at least a first and a second tube segment, extending longitudinally in spaced parallel relationship between and connecting the first manifold 102 and the second manifold 104 in fluid communication. The second tube bank 200 includes a first manifold 202, a second manifold 204 spaced apart from the first manifold 202, and a plurality of heat exchange tube segments 206, including at least a first and a second tube segment, extending longitudinally in spaced parallel relationship between and connecting the first manifold 202 and the second manifold 204 in fluid communication. The second tube bank 200 is disposed in alignment with the first tube bank 100 whereby the heat exchange tube segments 206 of the second tube bank 200 aligned with the heat exchange tube segments 106 of the first tube bank 100, for example as illustrated in
Referring in particular to
The interior flow passage of each of the heat exchange tube segments 106, 206 of the first and second tube banks 100, 200, respectively, may be divided by interior walls into a plurality of discrete flow channels 116, 216 that extend longitudinally the length of the tube from an inlet end of the tube to an outlet end of the tube and establish fluid communication between the respective headers of the first and the second tube banks 100, 200. The flow channels 116, 216 provide a plurality of flow paths through which refrigerant, R, may pass between the manifolds 102, 104 and 202, 204, respectively, in heat exchange relationship with the air flow, A, passing over the outer surfaces of the heat exchange tube segments 106, 206. The flow channels 116, 216 may have a circular cross-section, a rectangular cross-section or other non-circular cross-section. Also, the interior flow passages of the heat exchange tube segments 106, 206 may be divided into the same or into a different number of discrete flow channels 116, 216.
In the embodiment of the multi-channel heat exchange tube segments 106, 206 depicted in
In the embodiment of the multiple bank, flattened tube heat exchanger depicted in the drawings, the heat exchange tube segments 106, 206 comprise a plurality of parallel linear segments wherein each individual segment connects directing to a manifold at each end. However, it is to be understood that the tube banks 100, 200 could include serpentine tubes with the heat exchange tube segments 106, 206 being parallel linear tube segments connected by U-bends or hairpin turns to form a serpentine tube connected at its respective ends between the spaced manifolds of the tube bank.
The multiple bank, flattened tube heat exchanger 10 disclosed herein further includes a plurality of folded fins 20. Each folded fin 20 is formed, for example by stamping a continuous sheet of fin material, such as for example aluminum or an aluminum alloy, in a serpentine, ribbon-like fashion thereby providing a plurality of fin faces 22 connected together by fin caps 24. For example, as illustrated diagrammatically in
A longitudinally extending folded fin 20 is disposed between each pair of neighboring heat exchange tube segments 106 of the first tube bank 100 and an aligned pair of neighboring heat exchange tube segments 206 of the second tube bank 200. Each folded fin 20 extends longitudinally, that is along the longitudinal axes of the heat exchange tube segments 106, 206, and transversely, that is perpendicularly to the longitudinal axes of the heat exchange tube segments 106, 206. Folded fins 20 are disposed between each pair of neighboring heat exchange tubes 106, 206 across the width of the effective heat transfer area of the heat exchanger unit 10 whereby the air flow, A, passing through the heat exchanger unit 10 passes over the surfaces of the fin faces 22. Each folded fin 20 is disposed between a respective pair of neighboring tube segments 106 and a respective pair of heat exchange tube segments 206 with the end caps 24 on opposite sides of the folded fin 20 in contact with the faces 112, 212 and 114, 214, respectively, of the heat exchange tube segments.
As depicted in
In the embodiment depicted in
Additionally, each folded fin 20 includes a plurality of fin notches 26 that protrude outwardly from the fin caps 24 of the folded fin 20 into the spacing gap 15 between the trailing edge 110 of the heat exchange tube segment 106 of the first tube bank 100 and the leading edge 208 of the heat exchange tube segment 206 of the second tube bank 200 aligned therewith. The fin notches 26 extending into the spacing gap 15 defines the depth of the spacing gap 15 and maintains the spacing gap 15 at that depth during assembly and brazing of the heat exchanger unit 10. In an embodiment, an outwardly protruding fin notch 26 is provided on each fin cap 24. However it is to be understood that in other embodiments of the multiple bank flattened tube heat exchanger unit 10 disclosed herein, some plurality of caps 24 less than all the caps 24 have a fin notch 26 formed therein.
Referring now to
In the embodiment of the folded fin 26 as depicted in
Referring now to
During the brazing process of the assembled heat exchanger, the folded fins 20 are metallurgically bonded to the heat exchange tube segments 106, 206 with the fin notches 26 establishing the desired spacing gap 15 between the heat exchange tube segments 106 of the first tube bank 100 and the heat exchange tube segments 206 of the second tube bank 200. The fin notches 26 serve to maintain that desired spacing gap and provide additional structural rigidity during shipment, site installation, and operation of the multiple bank, flattened tube heat exchanger 10.
Additionally, an opening 36 formed in the fin cap 24 upon stamping of the fin notch 26 provides a condensate/moisture drainage opening through which water collecting on the heat exchange tube segments 106 and fin faces 22 during application may drain from the heat exchanger 10. The opening 36 formed in the fin cap 24 upon stamping of the fin notch 26 also interrupts a heat conductive flow path along the fin cap 24, thereby reducing heat conduction between the heat exchange tube segments 106 of the first tube bank 100 and the respective aligned heat exchange tube segments 206 of the second tube bank 200.
Although depicted as having two tube banks, it is to be understood that the multiple bank flattened tube heat exchanger 10 disclosed herein may include a third tube bank, or even more tube banks, incorporating folded fins 20 that extend across all tube banks of the multiple bank heat exchanger and include fin notches 26 on the end caps 24 that protrude outwardly into the spacing gaps between the respective trailing edge of each forward tube bank and the leading edge of the next aft tube bank.
While the present invention has been particularly shown and described with reference to the exemplary embodiments as illustrated in the drawing, it will be recognized by those skilled in the art that various modifications may be made without departing from the spirit and scope of the invention. Therefore, it is intended that the present disclosure not be limited to the particular embodiment(s) disclosed as, but that the disclosure will include all embodiments falling within the scope of the appended claims.
Filing Document | Filing Date | Country | Kind |
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PCT/US2013/073077 | 12/4/2013 | WO | 00 |
Number | Date | Country | |
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61764011 | Feb 2013 | US |