A heat exchanger includes adjacent flow paths that transfer heat from a hot flow to a cooling flow. The flow paths are defined by a combination of plates and fins that are arranged to transfer heat from one flow to another flow. Thermal gradients present in the sheet material create stresses that can be very high in certain locations. Increasing temperatures and pressures can result in stresses on the structure that can exceed material and assembly capabilities.
Turbine engine manufactures utilize heat exchangers throughout the engine to cool and condition airflow for cooling and other operational needs. Improvements to turbine engines have enabled increases in operational temperatures and pressures. The increases in temperatures and pressures improve engine efficiency but also increase demands on all engine components including heat exchangers.
Turbine engine manufacturers continue to seek further improvements to engine performance including improvements to thermal, transfer and propulsive efficiencies.
In a featured embodiment, a heat exchanger assembly includes an inlet manifold defining an expanding area in a direction of flow; and an inlet in flow communication with the inlet manifold, the inlet including a wall for inducing a rotational inertia to flow entering the inlet manifold.
In another embodiment according to the previous embodiment, the inlet comprises a constant cross-sectional area over an inlet length prior to the inlet manifold.
In another embodiment according to any of the previous embodiments, the inlet comprises a pipe and the wall comprises a plurality of walls spirally arranged within the inlet length.
In another embodiment according to any of the previous embodiments, the pipe is round and includes an inner surface and the plurality of walls are disposed transverse to the inner surface.
In another embodiment according to any of the previous embodiments, the plurality of walls include a height and the height is less than a width of the pipe.
In another embodiment according to any of the previous embodiments, the plurality of walls extend across a width of the pipe and define separate channels.
In another embodiment according to any of the previous embodiments, the plurality of walls are continuous for the entire inlet length.
In another embodiment according to any of the previous embodiments, the plurality of walls are intermittently arranged for at least a portion of the inlet length.
In another embodiment according to any of the previous embodiments, a density of walls is uniform for the entire inlet length.
In another embodiment according to any of the previous embodiments, a density of walls varies within the inlet length.
In another embodiment according to any of the previous embodiments, a distance between the plurality of walls in a direction parallel to a longitudinal axis and an angle of the walls relative to the longitudinal axis and a swirl induced into the inlet flow is determined by a combination of the distance between the plurality of walls and the angle.
In another embodiment according to any of the previous embodiments, at least one of the distance between the plurality of walls and angle of the plurality of walls varies over a length of the inlet.
In another featured embodiment, a heat exchanger assembly including an inlet manifold defining an increasing flow area. A plate fin heat exchanger plate includes a first end in flow communication with the inlet manifold and including a plurality of inlet openings arranged across an inlet width. An inlet communicating flow to the inlet manifold includes a means for inducing a spiral flow for spreading flow through the inlet manifold across the inlet width.
In another embodiment according to the previous embodiment, the inlet includes a uniform cross-sectional flow area over an inlet length.
In another embodiment according to any of the previous embodiments, inlet comprises a pipe and the means for introducing a spiral inertial comprises a plurality of walls spirally arranged and extending from an interior surface of the pipe within the inlet length.
In another embodiment according to any of the previous embodiments, the plurality of walls include a height from the inner surface and the height that is less than a width of the pipe.
In another embodiment according to any of the previous embodiments, the plurality of walls extend define separate channels within the inlet.
In another featured embodiment, a method of assembling a heat exchanger assembly includes forming an inlet manifold to include an expanding flow area, attaching the inlet manifold to a plate fin heat exchanger that includes a plurality of openings disposed across an inlet width. Forming an inlet to include a constant flow area and a spiral flow inducing means; and attaching the inlet to the inlet manifold for spreading flow entering the inlet manifold across inlet width.
In another embodiment according to the previous embodiment, the spiral flow inducing means comprises a plurality walls extending inward from an inner surface that are arranged in a spiral along an inlet length.
In another embodiment according to any of the previous embodiments, at least one of a distance between the plurality of walls in a direction common with a longitudinal axis of the inlet and an angle of the plurality of walls relative to the longitudinal axis is defined to induce a defined swirl component into the flow entering the inlet manifold.
Although the different examples have the specific components shown in the illustrations, embodiments of this disclosure are not limited to those particular combinations. It is possible to use some of the components or features from one of the examples in combination with features or components from another one of the examples.
These and other features disclosed herein can be best understood from the following specification and drawings, the following of which is a brief description.
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The plate fin heat exchanger 14 includes a plurality of internal passages schematically shown at 26 and an outer surface including a plurality of fins 24. Each of the passages 26 is in communication with the inlet end 32 that includes a plurality of openings 36. The openings 36 are disposed across an inlet width 28 that is in communication with the inlet manifold 12.
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The example inlet pipe 22 includes a means for distributing flow entering the inlet manifold 12 across the entire width 28 of the inlet end 32. In one disclosed example illustrated in
The example inlet pipe 22 includes an inlet length 44 with a substantially constant flow area. A plurality of walls 38 that define spiral channels 56 along the inner surface within the inlet pipe 22 at least for the inlet length 44. The walls 38 are provided within the inlet length 44, but may also extend throughout the entire inlet pipe 22. The walls 38 may also be provided only within the inlet length 44. The inlet length 44 is a length that is predetermined to provide sufficient turns to induce the desired spiral component to incoming hot flow 18. The walls 38 are twisted within the inlet pipe 22 to induce a spiral flow component inlet manifold 12. The induced spiral flow components drive flow towards the extremes of the inlet width 28 schematically indicated at 25. The mixing and distributions provided by the swirling flows provide a more uniform distribution of the hot flow 18 into the plate fin heat exchanger 14.
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Each of the walls 46 extends a height 54 from the internal surface 48. In this example the height 54 is much less than a width 52 of the inlet pipe 22. The width 52 in the disclosed example inlet 22 is a diameter of the inlet 22. The example inlet 22 is a circular pipe including a circular inner surface 48. Each of the walls 46 extend the height 54 towards the center portion of the inlet 22. In this example each of the walls 46 are disposed transversally at an angle 50 normal to the inner surface 48. It should be appreciated that the walls 46 may be disposed at an angle other than normal to provide a desired flow component into the inlet manifold 12.
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An inlet 82 shown in
Another inlet 84 shown in
A further inlet 86 shown in
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Accordingly, the disclosed inlet pipe induces flow characteristics that aid in more uniformly distributing the hot airflow throughout the passages of the heat exchanger.
Although an example embodiment has been disclosed, a worker of ordinary skill in this art would recognize that certain modifications would come within the scope of this disclosure. For that reason, the following claims should be studied to determine the scope and content of this disclosure.