FIELD OF THE INVENTION
[0001] The invention relates to a flat tube. In particular, the invention relates to a flat
tube for a heat exchanger.
BACKGROUND OF THE INVENTION
[0002] Heat exchangers having folded flat tubes are well known in the art. Such heat exchangers
typically include a plurality of the folded flat tubes spaced apart and arranged in
parallel and extending between an inlet header tank and an outlet header tank. The
inlet header tank receives a first fluid and distributes the first fluid between a
plurality of flow pathways formed within the flat tubes. The first fluid exchanges
heat energy with a second fluid flowing through the spaces between adjacent ones of
the flat tubes. After exchanging the heat energy within the flat tubes, the first
fluid is recombined within the outlet header tank before exiting the heat exchanger.
[0003] One common construction of a flat tube includes folding a sheet of aluminum into
a tubular structure wherein two opposing edges of the sheet are brought together and
then brazed or welded at the resulting seam to form a substantially B-shaped flat
tube. The central seam of the B-shaped flat tube is typically further reinforced by
adding at least one fold to the opposing edges of the sheet. The folded over portions
of the sheet of aluminum are positioned to abut an inner surface of the flat tube
along a length thereof to form a longitudinally extending partition, wherein the partition
divides a hollow interior of each of the flat tubes into two flow separate paths while
also structurally reinforcing the flat tube along the central seam of the tube.
[0004] One potential issue faced by the traditional B-shaped flat tube construction occurs
as a result of the effects of thermal cycling. The repeated presence of varying characteristics
within different portions of each of the tubes, such as varying temperatures experienced
in different regions of each of the tubes, may lead to the formation of a bending
moment within each of the tubes, such as between two adjacent flow channels formed
within each of the tubes. The formation of such bending moments may affect the durability
of such tubes when exposed to extended periods of thermal cycling including varying
temperatures experienced between the two flow channels of each of the tubes.
[0005] The B-shaped folded flat tube construction has been found to be particularly susceptible
to thermal cycling failure at an intersection of each of the tubes and each of the
header tanks. Each of the tubes is inserted into an opening formed in each of the
header tanks, the opening having a cross-sectional shape substantially similar to
that of an outer surface of each of the tubes, thereby restricting outward deformation
of the outer surface of each of the tubes. Concurrently, the central partition adds
rigidity to the interior of each of the tubes further restricting relative movement
between the opposing surfaces of each of the tubes adjacent the central partition.
The added rigidity adjacent the intersection of each of the tube ends and each of
the header tanks exacerbates the incidence of failure due to thermal cycling because
the different portions of the tubes experiencing different degrees of thermal expansion
are restricted from moving and deforming relative to each other during use of the
heat exchanger. The restricted motion may in some circumstances lead to elevated stresses
within portions of each of the tubes that can lead to permanent deformation or eventual
failure adjacent each of the header tanks.
[0006] It would therefore be desirable to produce a tube for use in a heat exchanger having
multiple flow channels while also preventing the incidence of failure at an intersection
of the tube and an opening in a header tank configured to receive an end of the tube.
SUMMARY OF THE INVENTION
[0007] The object of the invention is, among others, a flat tube for the flow therein of
a fluid in a heat exchanger, the tube being formed by bending a sheet metal strip
along the length of the strip, the tube comprising: a first main wall; a second main
wall parallel to the first main wall, said main walls being substantially flat; and
two complementary side wall portions joining said main walls together so as to define
a closed profile of the tube, said strip defining over its width a middle region and
two intermediate regions on either side of said middle region, the first main wall
of the tube being formed from said middle region, said second main wall of the tube
comprising two wall portions each formed from a respective one of said intermediate
regions, with said wall portions of the second main wall being juxtaposed in substantially
a common plane, a median wall defined by a double thickness of the sheet metal strip
with one part attached to a first wall portion and the other part attached to a second
wall portion, and inner walls each formed from a respective one of said parts of the
median wall, wherein a first piece of said inner wall is at least partially fixed
and parallel to the first main wall, and a second piece of said inner wall is joining
the main walls within the middle region of the tube, wherein the strip further comprises
at least one deformation configured to locally deviate the surface of any of the walls.
[0008] Advantageously, at least one deformation is disposed on at least one main wall .
[0009] Advantageously, at least one deformation is disposed on at least one of side wall
portions.
[0010] Advantageously, at least one deformation is disposed on at least one of the wall
portions.
[0011] Advantageously, the deformation is in form of protrusion projecting inwardly towards
the center of the intermediate region.
[0012] Advantageously, the deformation is in form of protrusion projecting outwardly from
the center of the intermediate region.
[0013] Advantageously, the strip comprises at least one set of deformations, wherein the
set is limited by the walls.
[0014] Advantageously, the deformations are equidistant within the set, with respect to
axis of elongation of the tube.
[0015] Advantageously, the distance between consecutive deformations forming the set are
different.
[0016] Advantageously, the deformation has an oblong shape.
[0017] Advantageously, the deformation has a pyramidal shape.
[0018] Advantageously, wherein the deformation has a substantially rectangular shape.
[0019] Advantageously, the sheet metal strip comprises an outside surface and a layer of
braze metal on said outside surface, said layer having been pre-applied on the corresponding
surface of said strip.
[0020] Another object of the invention is a heat exchanger comprising at least one flat
tube .
[0021] The deformations allow to increase the rigidity of the tube in desired regions, without
using additional elements and without increasing the thickness of the metal sheet
strip. Consequently, the tube is able to withstand thermal shock caused by the rapid
temperature and/or pressure change of the fluid. Furthermore, the deformations may
increase the overall performance of the heat exchanger by deflecting the path of the
fluid flowing through the tube, so that the heat exchange may be increased.
BRIEF DESCRITPTION OF DRAWINGS
[0022] Examples of the invention will be apparent from and described in detail with reference
to the accompanying drawings, in which:
Fig. 1 shows a perspective view of the tube section.
Fig. 2 shows a detailed view of a main wall of the tube of Fig.1.
Fig. 3 shows a cross-section view with locations suitable for receiving deformations.
Fig. 4 shows a perspective view of the tube with deformations on one of the main walls.
Fig. 5a shows a perspective view of the tube with deformations on one of the wall
portions.
Fig 5b shows a top view of the tube of Fig. 5a.
DETAILED DESCRIPTION OF EMBODIMENTS
[0023] The subject-matter of the invention is a flat tube 1 for the flow therein of a fluid
in a heat exchanger. The heat exchanger may be of any type as long as it is provided
with so-called folded tubes. Such tube 1 may be formed by bending a sheet metal strip
2 along the length of the strip 2. The sheet of metal may be for example, aluminum.
[0024] The tube 1 may comprise an outside surface and a layer of braze metal 3 thereon.
The braze material 3 may be, for example, a flux. The flux is a chemical compound
applied to the joint surfaces before brazing. Its use, with a few exceptions, is crucial
in the atmospheric brazing process. The braze material 3 may thus be pre-applied on
the corresponding surface of said strip 2 to enhance the quality of the brazing joint.
[0025] As shown in Fig. 1, the tube 1 may further comprise a first main wall 4, a second
main wall 5 which is substantially parallel with respect to the first main wall 4.
The main walls 4, 5 may be substantially flat. The terms "substantially parallel"
and "substantially flat" should be understood as allowing some deviances from ideal.
It is desired that the walls are perfectly parallel or perfectly flat, yet one must
take into account that during the production process or during the operational mode
of the heat exchanger some deviations may occur.
[0026] The tube 1 may further comprise two complementary side wall portions 6 joining said
main walls 4, 5 together so as to define a closed profile of the tube 1. Side wall
portions 6 may be substantially arcuate in shape having a desired radius of curvature,
but other shapes may be used without departing from the scope of the present invention.
[0027] Fig. 2 shows a detailed view of a main wall of the tube of Fig.1. It is notable that
the braze material 3 is located on one side of the metal strip 2. This allows brazing
all portions together.
[0028] As shown in Fig. 3 said strip 2 may define over its width a middle region and two
intermediate regions on either side of said middle region. The middle region may comprise
two channels for the fluid being separated by a median wall 7. The median wall 7 may
divide the tube 1 into two substantially mirror-imaged portions. However, an embodiment
in which the median wall is shifted towards either of the wall portions 6, or inclined
so that it does not divide the tube 1 into two mirror-image portions, is also envisaged.
[0029] The median wall 7 may be twice the thickness of any of the main walls 4, 5 or any
of the side wall portions 6.
[0030] The first main wall 4 of the tube 1 may be formed from said middle region. The second
main wall 5 of the tube 1 may comprise two wall portions 5A, 5B each formed from a
respective one of said intermediate regions.
[0031] The median wall 7 extends in the longitudinal direction of the tube 1, i.e. in the
axis of elongation of the tube 1, and contacts the first and second main walls 4,
5. The portions forming the median wall 7 are preferably substantially perpendicular
to the main walls 4,5. The median wall 7 is defined by a double thickness of the metal
sheet strip 2 with one part attached to the second main wall 5 and is located intermediate
the side wall portions 6 and the wall portions 5A, 5B. Further, the wall portions
5A. 5B of the second main wall 5 may be juxtaposed in substantially a common plane.
[0032] The double thickness of the metal sheet strip 2 may extend in parallel to the first
main wall 4 and within the respective middle region to form a first inner wall 8A
and a second inner wall 8B. The wall portions inner walls 8A, 8B may protrude directly
from the median wall 7 formed by the double thickness of the metal sheet strip 2 towards
respective side wall portions 6. At least part of each inner wall 8A, 8B, namely a
first piece, may be substantially parallel to the first main wall 4 and fixed thereto,
for example, by brazing. The braze material 3 on corresponding side of the sheet metal
strip 2 enhances the process of fixation. A respective second pieces of the inner
walls 8A, 8B may protrude directly form the first pieces, yet they are no longer fixed
to the first main wall 4. The second pieces may project towards the second main wall
5 and they may be fixed thereto. Further, the second pieces, similarly to side wall
portions, be substantially arcuate in shape having a desired radius of curvature,
but other shapes may be used without departing from the scope of the present invention.
Substantially, the second pierces of the inner walls 8A, 8B may be fixed to the first
main wall 4 so that the terminal end of second pieces face each other and at least
portion of each of second pieces is substantially parallel to the second main wall
5. Said inner walls 8A, 8B along with the respective part of the median wall 7 and
respective portions of the main walls 4, 5 may be regarded as the perimeter of the
middle region of the tube 1.
[0033] The strip 2 may further comprise at least one deformation 9. Referring to Fig.3,
the desired locations of the deformations 9 are marked with an oval shapes. The deformations
allow to locally deviate the surface of any of the walls 4,5,6, 5A, 5B 8A, 8B. The
deformations 9 allow to increase the rigidity of the tube 1 in desired regions, without
using additional elements and without increasing the thickness of the metal sheet
strip. Consequently, the tube 1 is able to withstand thermal shock caused by the rapid
temperature and/or pressure change of the fluid. Furthermore, the deformations 9 may
increase the overall performance of the heat exchanger by deflecting the path of the
fluid flowing through the tube 1, so that the heat exchange may be increased.
[0034] The location and the number of the deformations 9 is not a liming factor, thus they
may be allocated according to the desired effects.
[0035] For example, at least one deformation 9 may be disposed on at least one of the main
walls 4,5. The deformations 9 may also be located on both main walls 4,5.
[0036] Further, at least one deformation 9 may disposed on at least one of side wall portions
6. The deformations 9 may also be located on both side wall portions 6.
[0037] For example, at least one deformation 9 may be disposed on at least one of the inner
walls 8A, 8B. The deformations 9 may also be located on both inner walls 8A, 8B. Further,
at least one deformation 9 may be disposed on at least first piece of inner wall 8A,
8B or second piece of inner wall 8A, 8B.
[0038] Further, at least one deformation 9 may be disposed on at least one of the wall portions
5A, 5B. The deformations 9 may also be located on both wall portions 5A, 5B.
[0039] As shown in Fig. 4, one or more deformations located on the same wall 4, 5, 5A, 5B
may form a set 99. Each set 99 may comprise a random pattern, i.e. one cannot distinguish
any rule or conception according to which the deformations are allocated. However,
it is more likely that one can distinguish pattern in which the set 99 of deformations
9 is allocated on particular wall 4, 5, 5A, 5B.
[0040] For example, the deformations 9 may be arranged in series. The distance between each
deformation 9 of the set 99 may be equal or different or increasing. The deformations
9 may thus be equidistant within the set 99, with respect to axis of elongation of
the tube 1.
[0041] For example, the deformations 9 may be arranged in zig-zag pattern. The distance
between each deformation 9 of the set 99 may be equal or different or increasing.
[0042] As shown in Figs 5a and 5b, the deformation 9 may be in form of protrusion projecting
inwardly towards the center of the middle region. In other words, the deformation
9 may deviate from the surface of the inner wall 8A, 8B towards the axis of the channel
for the fluid formed in the middle portion. In particular, the deformations 9 project
from a second piece of the inner wall 8A.
[0043] Alternatively, the deformation 9 may be in form of protrusion projecting outwardly
from the center of the middle region. In other words, the deformation 9 may deviate
from the surface of the wall 4, 5, 8A, 8B away from the axis of the channel for the
fluid formed in the middle portion.
[0044] The deformations 9 may comprise different shapes and sizes. Thus, the shape or size
of the deformation 9 does not limit the invention to any particular example.
[0045] For example, the deformation 9 may have an oblong shape, or a pyramidal shape, or
a trapezoidal shape, or substantially rectangular shape.
[0046] Another object of the invention may be a heat exchanger 100 comprising aforementioned
flat tube 1. The flat tube 1 may provide a fluid communication between the manifolds,
thus increasing overall performance thereof.
[0047] Other variations to the disclosed embodiments can be understood and effected by those
skilled in the art in practicing the claimed invention, from a study of drawings,
the disclosure, and the appended claims. The mere fact that certain measures are recited
in mutually different dependent claims does not indicate that a combination of these
measures cannot be used to the advantage.
1. A flat tube (1) for the flow therein of a fluid in a heat exchanger, the tube (1)
being formed by bending a sheet metal strip (2) along the length of the strip, the
tube comprising: a first main wall (4); a second main wall (5) parallel to the first
main wall (4), said main walls (4, 5) being substantially flat; two complementary
side wall portions (6) joining said main walls together so as to define a closed profile
of the tube (1), said strip (2) defining over its width a middle region and two intermediate
regions on either side of said middle region, the first main wall (4) of the tube
(1) being formed from said middle region, said second main wall (5) of the tube (1)
comprising two wall portions (5A, 5B) each formed from a respective one of said intermediate
regions, with said wall portions (5A. 5B) of the second main wall (5) being juxtaposed
in substantially a common plane, a median wall (7) defined by a double thickness of
the sheet metal strip (2) with one part attached to a first wall portion (5A) and
the other part attached to a second wall portion (5B), and inner walls (8A, 8B) each
formed from a respective one of said parts of the median wall (7), wherein a first
piece of said inner wall is at least partially fixed and parallel to the first main
wall (4), and a second piece of said inner wall is joining the main walls (4,5) within
the middle region of the tube (1), wherein the sheet metal strip (2) further comprises
at least one deformation (9) configured to locally deviate the surface of any of the
walls (4,5,6, 5A, 5B).
2. The flat tube (1) according to claim 1, wherein at least one deformation (9) is disposed
on at least one main wall (4,5).
3. The flat tube (1) according to any of the preceding claims, wherein at least one deformation
(9) is disposed on at least one of side wall portions (6).
4. The flat tube (1) according to any of the preceding claims, wherein at least one deformation
(9) is disposed on at least one of the inner walls (8A, 8B).
5. The flat tube (1) according to any of the preceding claims, wherein the deformation
(9) is in form of protrusion projecting inwardly towards the center of the intermediate
region.
6. The flat tube (1) according to any of the preceding claims, wherein the deformation
(9) is in form of protrusion projecting outwardly from the center of the intermediate
region.
7. The flat tube (1) according to any of the preceding claims wherein the strip (2) comprises
at least one set (99) of deformations (9), wherein the set (99) is limited by the
walls (4,5,6 8A, 8B).
8. The flat tube (1) according to claim 7, wherein the deformations (9) are equidistant
within the set (99), with respect to axis of elongation of the tube (1).
9. The flat tube (1) according to claim 7, wherein the distance between consecutive deformations
(9) forming the set (99) are different.
10. The flat tube (1) according to any of the preceding claims, wherein the deformation
(9) has an oblong shape.
11. The flat tube (1) according to any of the preceding claims, wherein the deformation
(9) has a pyramidal shape.
12. The flat tube (1) according to any of the preceding claims, wherein the deformation
(9) has a substantially rectangular shape.
13. The tube (1) according to any of the preceding claims, wherein the sheet metal strip
(2) comprises an outside surface and a layer of braze metal (3) on said outside surface,
said layer having been pre-applied on the corresponding surface of said strip (2).
14. A heat exchanger (100) comprising at least one flat tube (1) according to claims 1-12.