Genetically manufactured heat exchanger with special surface roughness
Patent Information
- Authority / Receiving Office
- DE · DE
- Patent Type
- Patents
- Current Assignee / Owner
- HAMILTON SUNDSTRAND CORP
- Filing Date
- 2023-05-19
- Publication Date
- 2026-04-22
AI Technical Summary
Aviation heat exchanger designs face challenges in balancing weight, size, and performance requirements, with existing technologies struggling to optimize geometry for efficient fluid flow, heat transfer, and pressure drop.
The use of additive manufacturing to create heat exchanger cores with selectively roughened inner and outer surfaces, featuring airfoil-shaped tubes with strategically placed roughened regions on the outer and inner surfaces to induce turbulence and varied cross-sectional areas to enhance heat transfer and manage pressure drop.
The solution optimizes heat exchanger efficiency by improving fluid flow, reducing flow resistance, and enhancing heat transfer while managing pressure drops, thereby limiting metal temperatures within design constraints.
Description
BACKGROUND
[0001] The present disclosure is related to heat exchanger core designs with selective surface roughness.
[0002] Aviation heat exchanger designs must balance competing objectives with respect to weight, size, and performance requirements. Additively manufactured heat exchangers offer a degree of geometry customization to achieve maximum optimization.
[0003] US 2021 / 180888 A1 discloses a heat exchanger core according to the preamble of claim 1.SUMMARY
[0004] A heat exchanger core comprises a first fluid inlet side and a second fluid outlet side along which a first fluid F1 is received along a first fluid axis, a midpoint being disposed along the first fluid axis between the first fluid inlet side and the first fluid outlet side; a second fluid inlet side and a second fluid outlet side along which a second fluid F2 is received along a second fluid axis, a midpoint being disposed along the second fluid axis between the second fluid inlet side and the second fluid outlet side; a plurality of tubes extending along the first fluid axis between the first fluid inlet side and the first fluid outlet side; wherein each of the plurality of tubes comprises: a leading edge; a trailing edge opposite the leading edge; and a pair of oppositely disposed sidewalls extending from the leading edge to the trailing edge; wherein the leading edge, trailing edge, and the pair of sidewalls define an inner surface and an outer surface of each of the plurality of tubes; wherein each of a first subset of the plurality of tubes further comprises a roughened region on the outer surface of one of the pair of sidewalls; and wherein the first subset of the plurality of tubes are positioned between the midpoint along the second fluid axis and the second fluid inlet side.BRIEF DESCRIPTION OF THE DRAWINGS
[0005] FIG. 1 is a simplified perspective view of a heat exchanger core of a counter flow heat exchanger. FIG. 2 is a cross-sectional view of the heat exchanger core taken at plane A-A of FIG. 1. FIG. 3 is a cross-sectional view of an individual tube of the heat exchanger core. FIG. 4 is a simplified cross-sectional view of a straightened wall segment of the individual tube showing a roughed region.
[0006] While the above-identified figures set forth one or more embodiments of the present disclosure, other embodiments are also contemplated, as noted in the discussion. In all cases, this disclosure presents the invention by way of representation and not limitation. The figures may not be drawn to scale, and applications and embodiments of the present invention may include features and components not specifically shown in the drawings.DETAILED DESCRIPTION
[0007] This disclosure presents heat exchanger core arrangements using various tube geometries and selective surface roughness. Individual core tubes can be aerodynamically shaped to improve fluid flow external to the core tubes. External surface roughness can be selectively introduced to induce some turbulence and increase heat transfer. Internally, one or a combination of surface roughness and varied cross-sectional area can be introduced to balance heat transfer and pressure drop of the internal fluid flow. Additive manufacturing allows for such designs.
[0008] FIG. 1 is a simplified perspective view of heat exchanger core 10. Core 10 includes first fluid inlet side 12, first fluid outlet side 14, second fluid inlet side 16, and second fluid outlet side 18. In operation, first fluid F 1 flows from an inlet header (not shown) and into first core 10 at first fluid inlet side 12. First fluid F 1 travels along the x-axis through core 10 and exits through first fluid outlet side 14. First fluid outlet side 14 can be in fluid communication with an outlet header (not shown). Second fluid F 2 enters core 10 at second fluid inlet side 16 and travels along the y-axis, exiting core 10 at second fluid outlet side 18. Second fluid inlet side 16 and second fluid outlet side 18 are offset roughly 90° from first fluid inlet side 12 and first fluid outlet side 14. As such, core 10 is configured in a cross-flow arrangement in FIG. 1, with the two fluid flows F 1 and F 2 generally orthogonal to one another. In an alternative embodiment, second fluid F 2 can flow along the x-axis in an opposite flow direction (i.e., a counter flow arrangement), or in the same flow direction (i.e., a parallel flow arrangement). First fluid F 1 can be a relatively cool fluid having a lower temperature than second fluid F 2 , which can be a relatively hot fluid, but the designations can be reversed in alternative embodiments.
[0009] FIG. 2 is a simplified cross-sectional view of core 10 taken at plane A-A of FIG. 1 showing core tubes 20. FIG. 3. is an enlarged cross-sectional view of a single core tube 20. FIG. 4 is a simplified cross-sectional view of a relatively straight segment of one sidewall 28 of core tube 20 having surface roughness. FIGS. 2-4 are discussed together.
[0010] As shown in FIG. 2, core 10 includes multiple core tubes 20 arranged in rows and columns filling the area defined by the y-z plane of core 10. Each core tube 20 extends longitudinally along the x-axis from first fluid inlet 12 to first fluid outlet 14, and each is configured to receive and pass along a portion of first fluid F 1 through its inner space, or core tube cavity 22. First fluid F 1 is shown within inner cavities 22 of a single row of core tubes 20, but most or all of core tubes 20 would be expected to pass an amount of first fluid F 1 in operation of core 10. Second fluid F 2 passes from second fluid inlet 16 to second fluid outlet 18 along the outside of core tubes 20.
[0011] In the embodiment shown, core tubes 20 have an airfoil-shaped cross-sectional geometry (i.e., in the y-z plane) including leading edge 24 and an oppositely disposed trailing edge 26. A pair of oppositely disposed sidewalls 28 connects leading edge 24 to trailing edge 26. Sidewalls 28 include an inner surface 30, an outer surface 32, and a wall thickness T W (labeled in FIG. 4) defined therebetween at a given location. The dimensions of an airfoil-shaped core tube 20 include chord C and max thickness T M . Chord C is the major dimension of core tube 20, extending along the y-axis from leading edge 24 to trailing edge 26. Max thickness T M is the thickest / widest point of core tube 20 along the z-axis. Regions 34, 36, and 38 represent some areas where surface roughness can be introduced, as is discussed in greater detail below.
[0012] With respect to second fluid F 2 , the airfoil shape helps reduce flow resistance and turbulence of second fluid F 2 across core tubes 20. If outer surface 32 at leading edge 24 is smooth, fluid flow will split into two streams of smooth (i.e., laminar) flow. Assuming a smooth outer surface 32 for the entirety of a respective core tube 20, flow streams may become slightly unstable as they move aft of leading edge 24, however, laminar flow will form at each leading edge 24 as the flow of second fluid F 2 advances toward second fluid outlet side 18. While such flow characteristics may be desirable for preventing flow bypass of core 10 from a high degree of flow resistance, this can lead to suboptimal heat transfer between the core tube 20 inner cavities 22 and outer surfaces 32. Accordingly, surface roughness can be added to outer surface 32 to create a turbulent flow to increase heat transfer through the respective core tube 20. More specifically, one or more roughed regions 34 can be included on outer surface 32 of one, or preferably both, sidewalls 28 to increase turbulence in the otherwise laminar flow coming off leading edge 24. In an alternative embodiment, it can be desirable to alternatively and / or additionally include roughened region 36 on outer surface 32 at leading edge 24. Such roughness may be implemented in subsets of early (i.e., upstream) and / or late (i.e., downstream) core tubes 20 to increase flow turbulence of second fluid F 2 near inlet side 16 and / or outlet side 18. It should be understood that roughened regions 34 and / or 36, as described, need not be included on every core tube 20, rather, they may be strategically placed on a subset of core tubes 20 to induce desired flow and heat transfer characteristics. Further, roughened regions 34 and / or 36 can be disposed along a greater circumferential extent of outer surface 32 than what is indicated by the brackets in FIG. 3.
[0013] With respect to first fluid F 1 , core tubes 20 can further be designed to optimize heat transfer and pressure drop (i.e., ΔP) within a respective core tube 20 between first fluid inlet side 12 and first fluid outlet side 14. An amount of pressure drop in a given design is both accounted for and necessary for heat transfer, however roughened surfaces, if incorporated too liberally into a design, can exacerbate pressure drop beyond an acceptable level and lead to a non-uniform mass flow across all or a subset of core tubes 20. To optimize core tubes 20 for both heat transfer and pressure drop, one or more roughed regions 38 can be incorporated on inner surface 30 of a respective core tube 20. For example, the temperature difference between first fluid F 1 and second fluid F 2 will be greatest at first fluid inlet side 12, thus heat transfer will also tend to be greatest at this location. Accordingly, roughened regions 38 can be incorporated downstream of first fluid inlet side 12, for example, beginning at a midpoint between first fluid inlet side 12 and first fluid outlet side 14. For a respective core tube 20, roughened region 38 may be continuous (e.g., along the x-axis or circumferentially along inner surface 30) or can be discrete roughened regions 38. As with roughed regions 34 and 36, it should be understood that roughened regions 38, as described, need not be included within every core tube 20, rather, they may be strategically placed on a subset of core tubes 20 to induce desired flow and heat transfer characteristics. Further, roughened regions 38 may be incorporated in conjunction with or exclusive of the implementation of roughened regions 34 and / or 36.
[0014] With continued reference to first fluid F 1 , it may be desirable to complement inner surface roughness (i.e., roughened regions 38) with varied core tube 20 cross-sectional shapes, diameters, and / or wall thicknesses. As an amount of first fluid F 1 travels along a respective core tube 20, the fluid temperature will increase as it travels away from first fluid inlet side 12 due to thermal transfer between first fluid F 1 and second fluid F 2 . An increase in fluid temperature leads to an increase in fluid volume and pressure drop. Accordingly, increasing the cross-sectional area (i.e., in the y-z plane) of a respective core tube 20 can be used to control pressure drop. This can be accomplished, for example, by expanding internal cavity 22 along the z-axis. Specifically for an airfoil shaped core tube 20, this can mean increasing max thickness T M , or other dimension along the z-axis at a point between T M and trailing edge 26 to create a more elliptical shape. Due to spatial constraints or second fluid F 2 flow requirements, it may not be possible to increase the cross-sectional area of internal cavity 22 by expanding the overall cross-sectional area (i.e., defined by outer surface 32) of a respective core tube 20, rather, this can be achieved by reducing wall thickness T W . Reduced wall thickness T W can also increase heat transfer. As with the various roughened regions 34, 36, 38 described herein, variances in cross-sectional geometry and / or wall thickness can be selectively implemented at locations downstream of first fluid inlet side 12, and in all or just a subset of core tubes 20.
[0015] Core tubes 20 can be formed in a layer-by-layer fashion along the x, y, and z-axes using a suitable additive manufacturing process for metal (e.g., Inconel, aluminum, titanium, etc.) build materials, such as a laser powder bed fusion technique. Surface texture can be varied by varying additive manufacturing process parameters. For example, to create large and / or irregular surface roughness, both the scanning speed (measured in mm / s) and power (measure in W) of the laser can be increased relative to the settings used to form a relatively smooth surface. To create a more uniform (e.g., ribbed) surface roughness, scanning speed can be increased and laser power decreased compared to the smooth surface settings.
[0016] The disclosed heat exchanger core designs balance flow, pressure, and heat transfer considerations to optimize heat exchanger efficiency. Additionally, variable surface roughness can be used to limit metal temperatures in situations where temperatures could otherwise exceed material property capabilities. Such heat exchanger cores can be implemented in transportation (e.g., aerospace) and industrial applications.Discussion of Possible Embodiments
[0017] The following are non-exclusive descriptions of possible embodiments of the present invention.
[0018] A heat exchanger core as disclosed in claim 1.
[0019] The core of the preceding paragraph can optionally include, additionally and / or alternatively, any one or more of the following features, configurations and / or additional components:
[0020] In the above core, each of the first subset of the plurality of tubes can include a roughened region on each sidewall of the pair of sidewalls.
[0021] Any of the above cores can further include a second fluid axis orthogonal to the first fluid axis.
[0022] In any of the above cores, each of a second subset of the plurality of tubes can include a roughened region on the internal surface.
[0023] In any of the above cores, the roughened region on the internal surface can be positioned between a midpoint along the first fluid axis and the first fluid outlet of the core.
[0024] In any of the above cores, each of a third subset of the plurality of tubes cand include a first cross-sectional diameter near the first fluid inlet side and a second cross-sectional diameter near the first fluid outlet side.
[0025] In any of the above cores, the first cross-sectional diameter and the second cross-sectional diameter can be disposed orthogonally to the second fluid axis.
[0026] In any of the above cores, each of the pair of sidewalls can include a first wall thickness near the first fluid inlet side and a second wall thickness near the first fluid outlet side.
[0027] In any of the above cores, the second wall thickness can be less than the first wall thickness at a position overlapping with the second cross-sectional diameter.
[0028] In any of the above cores, each of a second subset of the plurality of tubes can include a roughened region on the outer surface at the leading edge.
[0029] In any of the above cores, the plurality of tubes can be formed from a metallic build material using an additive manufacturing process.
[0030] In any of the above cores, the roughened region can have an irregular pattern.
[0031] In any of the above cores, the roughened region can have a uniform pattern.
[0032] While the invention has been described with reference to an exemplary embodiment(s), it will be understood by those skilled in the art that various changes may be made provided they are within the scope of the appended claims.
Claims
1. A heat exchanger core comprising: a first fluid inlet side (12) and a second fluid outlet side (14) along which a first fluid (F1) is received along a first fluid axis, a midpoint being disposed along the first fluid axis between the first fluid inlet side (12) and the first fluid outlet side (14); a second fluid inlet side (16) and a second fluid outlet side (18) along which a second fluid (F2) is received along a second fluid axis, a midpoint being disposed along the second fluid axis between the second fluid inlet side (16) and the second fluid outlet side (18); a plurality of tubes (20) extending along the first fluid axis between the first fluid inlet side (12) and the first fluid outlet side (14); wherein each of the plurality of tubes comprises: a leading edge (24); a trailing edge (26) opposite the leading edge; and a pair of oppositely disposed sidewalls (28) extending from the leading edge to the trailing edge; wherein the leading edge, trailing edge, and the pair of sidewalls define an inner surface (30) and an outer surface (32) of each of the plurality of tubes; characterized in that each of a first subset of the plurality of tubes further comprises a roughened region (34, 36) on the outer surface of one of the pair of sidewalls; and wherein the first subset of the plurality of tubes (20) are positioned between the midpoint along the second fluid axis and the second fluid inlet side (18).
2. The core of claim 1, wherein each of the first subset of the plurality of tubes (20) comprises a roughened region (34, 36) on each sidewall of the pair of sidewalls.
3. The core of claim 1 or 2 wherein the second fluid axis orthogonal to the first fluid axis.
4. The core of any preceding claim, wherein each of a second subset of the plurality of tubes (20) comprises a roughened region (34, 36) on the internal surface (30); and optionally, wherein the roughened region on the internal surface is positioned between the midpoint along the first fluid axis between the first fluid inlet side (12) and the first fluid outlet side (14).
5. The core of claim 4, wherein each of a third subset of the plurality of tubes (20) comprises a first cross-sectional diameter near the first fluid inlet side (12) and a second cross-sectional diameter near the first fluid outlet side (14); and optionally, wherein the first cross-sectional diameter and the second cross-sectional diameter are disposed orthogonally to the second fluid axis; and / or wherein the second cross-sectional diameter is greater than the first cross-sectional diameter.
6. The core of claim 5, wherein each of the pair of sidewalls (28) comprises a first wall thickness near the first fluid inlet side (12) and a second wall thickness near the first fluid outlet side (14); and optionally, wherein the second wall thickness is less than the first wall thickness at a position overlapping with the second cross-sectional diameter.
7. The core of claim 1, wherein each of a second subset of the plurality of tubes (20) comprises a roughened region (34, 36) on the outer surface (32) at the leading edge (24).
8. The core of any preceding claim, wherein the plurality of tubes (20) are formed from a metallic build material using an additive manufacturing process.
9. The core of claim 1, wherein the roughened region (34, 36) has an irregular pattern; or, wherein the roughened region has a uniform pattern.