BACKGROUND
[0001] A plate and fin heat exchanger includes alternating layers of passages formed by
flat sheet metal material and corrugated preformed structures. The entire structure
is brazed together to form a unitary brazed assembly. Inlet and outlet openings typically
are blunt shaped and can create significant pressure losses as airflow transitions
from large spaces within an inlet manifold into the much smaller passages defined
by the preformed structures or plates. Similarly, airflow exiting the heat exchanger
is subject to pressure losses due to undefined transition from the passages to an
open area of a manifold.
[0002] 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.
[0003] Turbine engine manufacturers continue to seek further improvements to engine performance
including improvements to thermal, transfer and propulsive efficiencies.
SUMMARY
[0004] In one aspect, a heat exchanger includes at least one passage defining a flow path
for airflow. A manifold includes a transition region including at least two rib portions
defining a smoothly curved transition surface into the at least one passage.
[0005] In an embodiment according to the above, the manifold includes a housing with an
inlet opening and the transition region is adjacent the at least one passage.
[0006] In another embodiment according to any of the above, the at least two rib portions
extend across the transition region of the manifold.
[0007] In another embodiment according to any of the above, the at least two rib portions
include a support portion supporting the at least one passage.
[0008] In another embodiment according to any of the above, a plate defining the at least
one passage, the plate abutted against the support portion of the at least two rib
portions so as to continue the smoothly curved transition surface through the at least
one passage.
[0009] In another embodiment according to any of the above, a seal disposed between the
plate and the at least two rib portions.
[0010] In another embodiment according to any of the above, the plate includes a unitary
part without joints.
[0011] In another embodiment according to any of the above, the smoothly curved transition
surface includes a bell mouth shape.
[0012] In another embodiment according to any of the above, a plurality of passages for
airflow and the manifold includes an inlet manifold at one end of the plurality of
passages and an outlet manifold at an opposite end of the plurality of passages.
[0013] In another aspect, a heat exchanger includes at least two plates defining a first
flow passage. The at least two plates include an inlet region. The inlet region includes
a smoothly curved transition region. A manifold includes an inlet opening and a transition
region supporting the at least two plates.
[0014] In an embodiment according to the above, the plate includes a first end portion spaced
apart from a second end portion. A cavity defines a first flow path between the first
end portion and the second end portion. An outer surface portion defines a second
flow path. The plate includes a single unitary part without a joint between any two
portions.
[0015] In another embodiment according to any of the above, each of the first end portion
and the second end portion include the smoothly curved transition region.
[0016] In another embodiment according to any of the above, the at least two plates includes
a plurality of plates stacked atop each other and supported within the transition
region of the manifold.
[0017] In another embodiment according to any of the above, the manifold includes a first
manifold at an inlet end of the at least two plates and a second manifold at the outlet
end of the at least two plates.
[0018] In another embodiment according to any of the above, the smoothly curved transition
surface includes a bell mouth shape.
[0019] In yet another aspect, a method of assembling a heat exchanger includes defining
a manifold to include a plurality of ribs extending across a transition region. Each
of the plurality of ribs include a smoothly curved transition surface. A plate defining
an airflow passage is inserted between two of the plurality of ribs to hold the plates
within the transition region and define a smoothly curved transition surface into
the airflow passage.
[0020] In an embodiment according to the above, inserting a seal between an end of the plate
and at least two ribs.
[0021] In another embodiment according to any of the above, the manifold includes an inlet
manifold and an outlet manifold and the method includes inserting the plate into both
the inlet manifold to define an inlet transition surface into the airflow passage
and the outlet manifold to define an outlet transition surface for airflow exiting
the airflow passage.
[0022] 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.
[0023] These and other features disclosed herein can be best understood from the following
specification and drawings, the following of which is a brief description.
BRIEF DESCRIPTION OF THE DRAWINGS
[0024]
Figure 1 is a perspective view of an example heat exchanger embodiment.
Figure 2 is a cut away view of the example heat exchanger embodiment.
Figure 3 is a sectional cut away view of a portion of the example heat exchanger.
Figure 4 is a cross sectional view of a portion of the heat exchanger.
Figure 5 is a perspective view of an example plate embodiment.
Figure 6 is a perspective view of another example plate embodiment.
Figure 7 is a partial sectional view of a portion of another heat exchanger embodiment.
Figure 8 is a cross sectional view of the heat exchanger embodiment illustrated in
Figure 7.
DETAILED DESCRIPTION
[0025] Referring to Figures 1 and 2, an example heat exchanger 10 includes an inlet manifold
15 and an outlet or exhaust manifold 20. The inlet manifold 15 includes an inlet 14
for a first airflow 28. The inlet manifold 15 and the outlet manifold 20 are disposed
on the ends of a plurality of plates 12. The plates 12 define an airflow passage between
the inlet 14 and an outlet 24. The plates 12 also define a plurality of passages for
a cooling airflow 30 that passes through channels defined by the plurality of plates
12.
[0026] The inlet manifold 15 includes a transition region 16 defining an opening or series
of openings 18 at the end of the manifold 15 that receives the plates 12 and where
airflow schematically indicated at 28 is dispersed and transitions into the airflow
passages defined by the plates 12. The outlet manifold 20 includes a similar transition
region 22 where airflow exiting the passages defined within the plates 12 transition
towards the outlet 24.
[0027] The example heat exchanger 10 is an air to air heat exchanger where a hot airflow
indicated at 28 is injected through the inlet 14 and flows through passages within
the plates 12 towards the exhaust manifold 20. Airflow exhausted through the outlet
24 as is indicated at 32 is cooled to a desired temperature. A cooling airflow schematically
indicated at 30 flows through the passages defined between the plates 12 by channels
between fins. The airflow through the inlet 14 is desired to maintain a desired pressure
and avoid excessive pressure losses. Accordingly, the transition region 16 includes
features to improve flow into the cooling passages in a more controlled and less turbulent
manner to reduce pressure losses that can degrade thermal transfer efficiencies. By
controlling transition of airflow into the passages defined by the plates 12, the
pressure losses produced through this transition region can be significantly reduced.
[0028] Referring to Figure 3 with continued references to Figures 1 and 2, the example intake
manifold 15 is shown in an enlarged cross sectional view. The example intake manifold
10 includes a plurality of ribs 36 that extend from a first wall 34 shown in Figure
3 to a second wall not shown in Figure 3. Each of the ribs 36 include a smoothly curved
transition surface 40. The ribs 36 further include a support portion 42. Each of the
plates 12 are supported between two of the ribs 36 such that the smoothly curved transition
surface indicated at 40 is disposed above and below each intake passage of each plate
12. The smooth surfaces 40 define a bell mouth shape forward of the inlet to the plate
12 that improves flow properties into the flow passage.
[0029] In this example, the plate 12 defines a first flow passage 44 through the plate 12
and a second flow passage 46 that flows over an outer surface of the plate 12 between
fins 56. As appreciated, the fins 56 cooperate with fins 56 in an adjacent plate 12
to define channels through which the cooling airflow 30 flows.
[0030] Referring to Figures 4 and 5 with continued reference to Figure 3, each of the plates
26 are trapped between at least two of the ribs 36. In the cross section illustrated
in Figure 4, a first plate 26A is trapped between rib 36A and 36B. A portion of a
second plate 26B is also illustrated and trapped between the rib 36B and 36C.
[0031] The example plate 26 is shown in perspective view includes a first end 52 and a second
end 54. The first end 52 defines an inlet 48 that leads to the first flow passage
44. The outer surface includes the fins 56 that define the second airflow passage
46 for the cooling airflow that flows perpendicular to the hot airflow communicated
through the intake manifold 15. A seal 50 is disposed between each of the plates 26A,
26B and 26C and the corresponding ribs 36A, 36B and 36C.
[0032] Each of the ribs includes the support portion 42 that accepts the first end portion
52 of a corresponding plate 26. By defining the ribs 36 within the intake manifold
transition region 16 and providing the ribs 36 with the smooth curved transition portions
40, the bell mouth is created forward of the inlet to the plates 26 to provide a more
uniform and smooth transition of airflow from the manifold into each of the corresponding
first passages 44.
[0033] Referring to Figures 6, 7 and 8, another example heat exchanger 60 is illustrated
and includes a plurality of plates 64 that are stacked atop each other and that are
in communication with a transition region 66 of an intake manifold 62. Each of the
plates 64 includes fins 70 that are disposed within the cooling air flow. As appreciated,
the example manifold is shown by way of an example and only the intake manifold 62
is illustrated. A corresponding exhaust manifold would be provided at the exit end
of each of the plurality of plates 64 in a similar arrangement to that of the intake
manifold 62.
[0034] In this example, each of the plates 64 include a bell mouth surface 68. The bell
mouth surfaces 68 mate to one another to define a smoothly curved surface that transitions
airflow into the air passages through the plates 64. In this embodiment, the manifold
62 is not required to have a plurality of ribs. Instead, each of the plates 64 include
features that define the bell mouth shape that provide the smooth transition of airflow
from the manifold into the airflow passage defined through the plates.
[0035] In the disclosed example embodiments, the plates 26 and 64 are one piece unitary
structures that are cast as a one piece item that do not include joints between any
of the portions. The unitary structure of the plate eliminates the need for welded
or brazed joints that can cause problems during operation or that may be susceptible
to mechanical strains and stresses caused by extreme thermal gradients.
[0036] The example heat exchanger manifold includes features that tailor airflow and transition
that airflow through the plates to enable higher pressure capabilities that in turn
increase the overall efficiency of the heat exchanger to enable use and higher temperature
and pressure applications.
[0037] 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.
1. A heat exchanger (10) comprising:
at least one passage (44) defining a flow path for airflow (28); and
a manifold (15;20) including a transition region (16;22) including at least two rib
portions (36) defining a smoothly curved transition surface (40) into the at least
one passage (44).
2. The heat exchanger (10) as recited in claim 1, wherein the manifold (15) includes
a housing with an inlet opening (14) and the transition region (16) is adjacent the
at least one passage (44).
3. The heat exchanger (10) as recited in claim 1 or 2, wherein the at least two rib portions
(36) extend across the transition region (16;22) of the manifold (15;20).
4. The heat exchanger (10) as recited in any preceding claim, wherein the at least two
rib portions (36) include a support portion (42) supporting the at least one passage
(44).
5. The heat exchanger (10) as recited in claim 4, including a plate (12;26) defining
the at least one passage (44), the plate (12;26) abutted against the support portion
(42) of the at least two rib portions (36) so as to continue the smoothly curved transition
surface (40) through the at least one passage (44).
6. The heat exchanger (10) as recited in claim 5, including a seal (50) disposed between
the plate (12;26) and the at least two rib portions (36).
7. The heat exchanger (10) as recited in claim 5 or 6, wherein the plate (12;26) comprises
a unitary part without joints.
8. The heat exchanger (10) as recited in any preceding claim, including a plurality of
passages (44) for airflow and the manifold (15;20) comprises an inlet manifold (15)
at one end of the plurality of passages (44) and an outlet manifold (20) at an opposite
end of the plurality of passages (44).
9. A heat exchanger (60) comprising:
at least two plates (64) defining a first flow passage, the at least two plates (64)
including an inlet region comprising a smoothly curved transition surface (68); and
a manifold (62) including an inlet opening and a transition region (66) supporting
the at least two plates (64).
10. The heat exchanger (60) as recited in claim 9, wherein each plate (64) comprises a
first end portion spaced apart from a second end portion, a cavity defining a first
flow path between the first end portion and the second end portion, and an outer surface
portion defining a second flow path, and the plate (64) comprises a single unitary
part without a joint between any two portions, wherein each of the first end portion
and the second end portion optionally includes the smoothly curved transition surface
(68).
11. The heat exchanger (60) as recited in claim 9 or 10, wherein:
the at least two plates (64) comprises a plurality of plates (64) stacked atop each
other and supported within the transition region (66) of the manifold (62); and/or
the manifold (62) comprises a first manifold (62) at an inlet end of the at least
two plates (64) and a second manifold at an outlet end of the at least two plates
(64).
12. The heat exchanger (60) as recited in any preceding claim, wherein the smoothly curved
transition surface (40,68) comprises a bell mouth shape.
13. A method of assembling a heat exchanger (10) comprising:
defining a manifold (15;20) to include a plurality of ribs (36) extending across a
transition region (16;22), each of the plurality of ribs (36) including a smoothly
curved transition surface (40); and
inserting a plate (12;26) defining an airflow passage (44) between two of the plurality
of ribs (36) to hold the plates (12;26) within the transition region (16;22) and define
a smoothly curved transition surface (40) into the airflow passage (44).
14. The method as recited in claim 13, including inserting a seal (50) between an end
of the plate (12; 26) and at least two ribs (36).
15. The method as recited in claim 13 or 14, wherein the manifold (15; 20) comprises an
inlet manifold (15) and an outlet manifold (20) and the method includes inserting
the plate (12; 26) into both the inlet manifold (15) to define an inlet transition
surface (40) into the airflow passage (44) and the outlet manifold (20) to define
an outlet transition surface for airflow (32) exiting the airflow passage (44).