Technical Field
[0001] The present invention relates to a plate heat exchanger that comprises a plurality
of heat exchanger plates which are stacked and permanently connected to form a plate
package and a mounting structure which is permanently connected to the plate package
for releasable attachment of the plate heat exchanger to an external supporting structure.
Background
[0002] Heat exchangers are utilized in various technical applications for transferring heat
from one fluid to another fluid. Heat exchangers in plate configuration are well-known
in the art. In these heat exchangers, a plurality of stacked plates having overlapping
peripheral side walls are put together and permanently connected to define a plate
package with hollow fluid passages between the plates, usually with different fluids
in heat exchange relationship in alternating spaces between the plates. Usually a
coherent base plate or mounting plate is directly or indirectly attached to the outermost
one of the stacked plates. The mounting plate has an extension that exceeds the stack
of plates so as to define a circumferential mounting flange. The mounting flange has
holes or fasteners to attach the heat exchanger to a piece of equipment. This type
of plate heat exchanger is e.g. known from
US2010/0258095 and
US8181695.
[0003] When fastened on the piece of equipment, the mounting plate may be subjected to a
significant pressure and weight load which tends to deform the mounting plate. To
achieve an adequate strength and rigidity, the mounting plate needs to be comparatively
thick. Such a thick mounting plate may add significantly to the weight of the heat
exchanger. Furthermore, the use of a thick mounting plate leads to a larger consumption
of material and a higher cost for the heat exchanger.
[0004] The need for a thick mounting plate may be particularly pronounced when the heat
exchanger is mounted in an environment which is subjected to vibrations. Such vibrations
may e.g. occur when the plate heat exchanger is mounted in a vehicle such as a car,
truck, bus, ship or airplane. In these environments, the design of the plate heat
exchanger in general, and the design and attachment of the mounting plate in particular,
need to take into account the risk for fatigue failure caused by cyclic loading and
unloading of the mounting plate by the vibrations. The cyclic stresses in the heat
exchanger may cause it to fail due to fatigue, especially in the joints between the
plates, even if the nominal stress values are well below the tensile stress limit.
The risk for fatigue failure is typically handled by further increasing the thickness
of the mounting plate, which will make it even more difficult to keep down the weight
and cost of the plate heat exchanger.
[0005] The prior art comprises
DE102007008459, which proposes a unitary tray-shaped mounting plate for a plate heat exchanger.
The mounting plate has a planar bottom surface and an edge surface which is inclined
upwards from the bottom surface to define a tray for receiving the stack of plates.
Tongues for fastening the heat exchanger are integrated with the edge surface and
arranged to extend parallel to the bottom surface.
[0006] The prior art further comprises
WO2011/009412, which discloses a plate heat exchanger with two spaced apart mounting plates attached
to the end of the stack of plates. The shape of the mounting plates conform to the
contour of the stack of plates, so that the plate heat exchanger lacks any mounting
flanges. Instead, the heat exchanger is fastened by connecting members that extend
out of the respective mounting plate and are received in cavities defined between
the respective mounting plate and the end of the stack of plates.
Summary
[0007] It is an objective of the invention to at least partly overcome one or more limitations
of the prior art.
[0008] Another objective is to provide a plate heat exchanger with a relatively low weight
and a relatively high strength when mounted to an external supporting structure.
[0009] A further objective is to provide a plate heat exchanger that can be manufactured
at low cost.
[0010] Yet another objective is to provide a plate heat exchanger suitable for use in environments
subjected to vibrations.
[0011] One or more of these objects, as well as further objects that may appear from the
description below, are at least partly achieved by a plate heat exchanger according
to the independent claim, embodiments thereof being defined by the dependent claims.
[0012] A first aspect of the invention is a plate heat exchanger, comprising: a plurality
of heat exchanger plates which are stacked and permanently connected to form a plate
package that defines first and second fluid paths for a first medium and a second
medium, respectively, separated by said heat exchanger plates, said plate package
defining a surrounding external wall that extends in an axial direction between first
and second axial ends; an end plate permanently connected to one of the first and
second axial ends so as to provide an end surface that extends between first and second
longitudinal ends in a lateral plane which is orthogonal to the axial direction; and
two mounting plates permanently connected to a respective surface portion of the end
surface at the first longitudinal end and the second longitudinal end, respectively,
such that the mounting plates are spaced from each other in a longitudinal direction
on the end surface, wherein the respective mounting plate comprises opposing flat
engagement surfaces connected by an edge portion that extends along the perimeter
of the mounting plate. The respective mounting plate is arranged with one of its engagement
surfaces permanently connected to the end surface, such that the perimeter of the
mounting plate partially extends beyond the surrounding external wall, so as to define
a mounting flange, and partially extends across the end surface in contact with the
same within the perimeter of the surrounding external wall. The perimeter of the mounting
plate comprises two concave portions as seen in a normal direction to the end surface,
the concave portions being located to intersect the surrounding external wall at a
respective intersection point.
[0013] The inventive plate heat exchanger is based on the insight that the coherent-mounting
plate of the prior art may be replaced by two smaller mounting plates that are located
at a respective longitudinal end on the end surface on the plate package to provide
a respective mounting flange for the heat exchanger. The use of two smaller, separated
mounting plates may reduce the weight of the heat exchanger, and also its manufacturing
cost, since material is eliminated in the space between the mounting plates, beneath
the end surface of the plate package. The inventive heat exchanger is furthermore
based on the insight that the use of two separated mounting plates may lead to local
stress concentration in the heat exchanger, which may act to reduce the heat exchanger's
ability to sustain loads, and in particular cyclic loads. The concentration of stress
has been found to originate in the region where the edge portion of the mounting plate
intersects the surrounding wall of the plate package. To counteract stress concentration
in a simple and efficient way, the perimeter of the mounting plate is shaped with
two concave portions which are located to intersect the surrounding wall at a respective
intersection point. An improved distribution of stress is enabled since the concave
portions increase the extent of the perimeter of the mounting plate in a region at
and around the intersection points and since the concave portions may orient the perimeter
of the mounting plate to the surrounding wall so as to distribute stress.
[0014] The distribution of stress may be controlled further by optimizing the design parameters
of the heat exchanger in general, and the mounting plates in particular, for example
according to the following embodiments.
[0015] In one embodiment, a subset of the respective concave portion is located at or within
the surrounding external wall and is non-perpendicular to the perimeter of the surrounding
external wall at the respective intersection point, as seen in the normal direction
to the end surface. The subset of the respective concave portion may extend from a
starting point to an end point on the concave portion, such that the local inclination
of the concave portion, given by a tangential line, along said subset is less than
a maximum design angle, and the end point may be located where the local inclination
exceeds the maximum design angle.
[0016] In one embodiment, the maximum design angle is defined between the tangential line
and the longitudinal direction and has a value of approximately 65°.
[0017] In one embodiment, the subset comprises an essentially linear portion within at least
30% of the subset, said linear portion having a predefined angle, to the longitudinal
direction, which is less that the maximum design angle.
[0018] In one embodiment, the subset of the respective concave portion has a first extent
in the longitudinal direction and a second extent in a transverse direction, which
is orthogonal to the longitudinal direction in the plane of the mounting plate, wherein
the ratio of the second extent to the first extent is equal to or less than approximately
2, and preferably equal to or less than approximately 1 or approximately 0.5.
[0019] In one embodiment, the predefined starting point of the subset is located within
a maximum design distance, in the transverse direction, from the respective intersection
point, wherein the maximum design distance is 20% of the first extent.
[0020] In one embodiment, the starting point essentially coincides with the respective intersection
point.
[0021] In one embodiment, the end point is located on an outward corner of the mounting
plate, the outward corner being defined by a second radius.
[0022] In one embodiment, the perimeter of the mounting plate is non-perpendicular to the
perimeter of the surrounding external wall at the respective intersection point, as
seen in the normal direction to the end surface.
[0023] In one embodiment, the mounting plate abuts on and is permanently connected to the
end surface along said subset of the concave portion.
[0024] In one embodiment, the respective concave portion comprises an inward corner defined
by a first radius, said inward corner intersecting the surrounding external wall at
the intersection point, as seen in the direction normal to the end surface.
[0025] In one embodiment, the respective concave portion extends between two limit points
on the perimeter of the mounting plate, said limit points being defined by a mathematical
line which intersects the perimeter of the mounting plate only at the limit points
and which extends beyond the perimeter of the mounting plate intermediate the limit
points, as seen in the direction normal to the end surface.
[0026] In one embodiment, the end plate is a sealing plate which is permanently and sealingly
connected to one of the heat exchanger plates at one of said first and second axial
ends.
[0027] In an alternative embodiment, the end plate is a reinforcement plate which is permanently
connected to a sealing plate on the plate package, wherein the end plate has at least
two supporting flanges that extend beyond the perimeter of the surrounding external
wall so as to abut on the mounting flange defined by the respective mounting plate.
Further, the end plate may comprise, along its perimeter and as seen in the normal
direction of the end surface, concave or beveled surfaces adjacent to the supporting
flanges, wherein the concave or beveled surfaces may be located to overlap the perimeter
of the respective mounting plate at the intersection points, and the respective concave
or beveled surface may be non-perpendicular to, and preferably co-extending with,
the perimeter of the mounting plate at the overlap, as seen in the normal direction
to the end surface.
[0028] In one embodiment, at least one of the mounting plates defines at least one through
hole that extends between the engagement surfaces and is aligned with a corresponding
through hole defined in the end plate and an internal channel defined in the plate
package, so as to form an inlet or an outlet for the first or the second medium.
[0029] In one embodiment, the mounting flange comprises a plurality of mounting holes adapted
to receive bolts or pins for fastening the plate heat exchanger.
[0030] In one embodiment, the heat exchanger plates are permanently joined to each other
through melting of metallic material.
[0031] Still other objectives, features, aspects and advantages of the present invention
will appear from the following detailed description, from the attached claims as well
as from the drawings.
Brief Description of Drawings
[0032] Embodiments of the invention will now be described in more detail with reference
to the accompanying schematic drawings.
Fig. 1 is a perspective view of a plate heat exchanger according to an embodiment
of the invention.
Fig. 2 is a bottom plan view of the plate heat exchanger in Fig. 1.
Figs 3A-3B are perspective views from two directions of a mounting plate included
in the plate heat exchanger in Fig. 1.
Fig. 4 is a bottom plan view of the mounting plate in Figs 3A-3B.
Fig. 5A is an enlarged view of a portion in Fig. 2 to illustrate a set of design parameters
for the mounting plate included in the plate heat exchanger, Fig. 5B is a view corresponding
to Fig. 5A to illustrate design parameters in an alternative configuration, and Figs
5C-5D are perspective views from above and below, respectively, of the portion shown
in Fig. 5A.
Fig. 6 is a partial perspective view of a plate heat exchanger with a convex mounting
plate.
Fig. 7 is a perspective view of a sealing plate included in the plate heat exchanger
of Fig. 1.
Fig. 8 is a perspective view of a reinforcement plate included in the plate heat exchanger
of Fig. 1.
Figs 9A-9B are partial plan views of a plate heat exchanger with concave mounting
plates of alternative configuration.
Detailed Description of Example Embodiments
[0033] Embodiments of the present invention relate to configurations of a mounting structure
on a plate heat exchanger. Corresponding elements are designated by the same reference
numerals.
[0034] Figs 1-2 disclose an embodiment of a plate heat exchanger 1 according to the invention.
The plate heat exchanger 1 comprises a plurality of plates which are stacked one on
top of the other to form a plate package 2. The plate package 2 may be of any conventional
design. Generally the plate package 2 comprises a plurality of heat exchanger plates
3 with corrugated heat transfer portions that define flow passages (Internal channels)
for a first and second fluid between the heat exchanger plates 3 such that heat is
transferred through the heat transfer portions from one fluid to the other. The heat
exchanger plates 3 may be single-walled or double-walled. The heat exchanger plates
3 are only schematically indicated in Fig. 1, since they are well-known to the person
skilled in the art and their configuration is not essential for the present invention.
The plate package 2 has the general shape of a rectangular cuboid, albeit with rounded
corners. Other shapes are conceivable. Generally, the plate package 2 defines a surrounding
external wall 4 which extends in a height or axial direction A between a top axial
end and a bottom axial end. The wall 4 has a given perimeter or contour at its bottom
axial end. In the illustrated example, the wall 4 has essentially the same contour
along its extent in the axial direction A. The bottom axial end of the plate package
2 comprises or is provided with an essentially planar end surface 5 (Fig. 2), which
may but need not conform to the contour of the wall 4 at the bottom axial end. The
end surface 5 extends in a lateral plane. Generally, the plate package 2, and the
end surface 5, extends between two longitudinal ends in a longitudinal direction L
and between two transverse ends in a transverse direction T (Fig. 2).
[0035] Although not shown on the drawings, the heat transfer plates 3 have in their corner
portions through-openings, which form inlet channels and outlet channels in communication
with the flow passages for the first fluid and the second fluid. These inlet and outlet
channels open in the end surface 5 of the plate package 2 to define separate portholes
for inlet and outlet of the first and second fluids, respectively. In the illustrated
example, the end surface 5 has four portholes 6 (Fig. 2).
[0036] The plate package 2 is permanently connected to two identical (in this example) mounting
plates 7, which are arranged on a respective end portion of the end surface 5. The
mounting plates 7 are thereby separated in the longitudinal direction L, leaving a
space free of material beneath the center portion of the plate package 2. Compared
to using a single mounting plate that extends beneath the entire plate package 2,
the illustrated configuration saves weight and material of the heat exchanger 1, and
thereby also cost. Each mounting plate 7 has two through-holes 8 which are mated with
a respective pair of the portholes 6 of the plate package 2 to define inlet and outlet
ports of the heat exchanger 1. The mounting plates 7 are configured for attaching
the heat exchanger 1 to an external suspension structure (not shown) such that the
inlet and outlet ports mate with corresponding supply ports for the first and second
medium on the external structure. Optionally, one or more seals (not shown) may be
provided in the interface between the mounting plate 7 and the external structure.
[0037] Each mounting plate 7 defines a mounting flange 9 that projects from the wall 4 and
extends around the longitudinal end of the plate package 2. Bores 10 are provided
in the mounting flange 9 as a means for fastening the heat exchanger 1 to the external
structure. Threaded fasteners or bolts, for example, may be introduced into the bores
10 for engagement with corresponding bores in the external structure.
[0038] The plate package 2 and the mounting plates 7 are made of metal, such as stainless
steel or aluminum. All the plates in the heat exchanger 1 are permanently connected
to each other, preferably through melting of a metallic material, such as brazing,
welding or a combination of brazing and welding. The plates in the plate package 2
may alternatively be permanently connected by gluing.
[0039] The mounting plates 7 are dimensioned, with respect to material, thickness and extent
in the longitudinal and transverse directions, so as to have an adequate strength
and stiffness to the static load that is applied to the mounting plates 7 when fastened
on the external structure. The static load, which tends to deform the mounting plates
7, may originate from a combination of the weight of the heat exchanger 1, internal
pressure applied by the media in the heat exchanger 1 and transferred to the mounting
plates 7, and compression forces applied to the mounting plates 7, e.g. at the above-mentioned
seals, via the fasteners and the bores 10. This static load tend to deform the mounting
plates 7. As seen in Figs 1-3, the mounting plates 7 are generally designed to have
a significant thickness. As a non-limiting example, the thickness may be 15-40 mm.
The bottom of the plate package 2, on the other hand, is normally made of much thinner
material.
[0040] If the heat exchanger 1 is installed in an environment where vibrations are transferred
to the mounting plate 7 via the external structure, the heat exchanger 1 also needs
to be designed to account for the mechanical stresses caused by the cyclic loading
of the vibrations, i.e. cyclic stresses. For example, such vibrations occur for heat
exchangers that are mounted in vehicles, such as cars, trucks and ships. In one non-limiting
example, the heat exchanger 1 is an oil cooler for an engine. When cyclic stresses
are applied to a material, even though the stresses do not cause plastic deformation,
the material may fail due to fatigue especially in local regions with high stress
concentration. The use of stiff thick mounting plates 7 connected to a plate package
2 with a relatively thin bottom is likely to lead to high concentrations of cyclic
stress at the interface between the mounting plates 7 and the plate package 2, and
possibly also within the plate package 2.
[0041] Embodiments of the present invention are designed to counteract stress concentration
that may lead to fatigue failure. To this end, the mounting plates 7 have a perimeter
with concave portions 15, which are located so as to intersect the perimeter of the
surrounding wall 4 of the plate package 2, as seen in the normal direction to the
end surface 5. As used herein, the "perimeter" designates the outer contour as seen
in plan view. In the plan view of Fig. 2, intersection points 11 between the perimeters
of the mounting plates 7 and the wall 4 are indicated by black dots. By providing
the concave portions 15 at the intersection points 11, the perimeter of the mounting
plate 7 is given an increased extent in a region at and around the intersection points
11. The increased extent favors distribution of stress. Furthermore, the concave portions
15 generally define more favorable angles between the perimeter of the mounting plate
7 and the surrounding wall 4 for counteracting stress concentration.
[0042] Figs 3A-3B illustrate a mounting plate 7 in more detail. The mounting plate 7 has
essentially planar top and bottom surfaces 12, 13, where the top surface 12 forms
an engagement surface to be permanently connected to the end surface 5 on the plate
package 2, and the bottom surface 13 forms an engagement surface to be applied and
fixed to the external supporting structure. The through-holes 8 and bores 10 are formed
to extend between the top and bottom surfaces 12, 13. At the perimeter of the mounting
plate 7, the top and bottom surfaces are connected by a peripheral edge surface 14.
The edge surface 14 is essentially planar and right-angled to the top and bottom surfaces
12, 13 and defines the perimeter of the mounting plate 7.
[0043] The mounting plate 7 is generally elongated and has a concave shape, as seen in plan
view. The term "concave shape" is used in its ordinary meaning to denote a shape that
contains at least one portion that bends inwards, i.e. a concave portion. A concave
shape is also known as a "non-convex shape". In a geometric sense, as shown in Fig.
4, each of the concave portions 15 extends between two well-defined limit points C1,
C2. The limit points C1, C2 are located where a straight mathematical (fictitious)
line ML touches the perimeter of the mounting plate 7 so as to bridge the concave
portion 15. The respective line ML thus intersects the perimeter of the mounting plate
7 at only two locations (at C1 and C2) and is spaced from the perimeter of the mounting
plate 7 between these two locations. As seen in Fig. 4, the respective concave portion
15 extends to an inward corner between a distal outward corner, containing the limit
point C1, and a proximate outward corner, containing the limit point C2.
[0044] In plan view, the concave portions 15 of the mounting plate 7 are connected by an
essentially straight contour line that extends across the end surface 5. This design
is selected to minimize the width of the mounting plates 7 in the longitudinal direction
L (Fig. 2). Other designs are conceivable.
[0045] Fig. 5A is taken within the dashed rectangle 5A in the bottom plan view of Fig. 2
and illustrates a region of overlap between the perimeter of the mounting plate 7
and the plate package 2 near the surrounding wall 4. The wall 4 is hidden from view
by intermediate structures (see below), but its location is indicated by a dashed
line. In the illustrated example, the inward corner follows an arc of a circle with
radius R1. Similarly, the proximate outward corner, which is located on and attached
to the end surface 5, follows an arc of a circle with radius R2. In the illustrated
example, the inward corner and the proximate outward corner are connected by an essentially
straight (linear) line portion.
[0046] Simulations indicate that a more uniform distribution of stress is favored by constraining
the angles between the concave portion 15 and the surrounding wall 4 where the concave
portion 15 overlaps the plate package, i.e. at and within the perimeter of the surrounding
wall 4. The present Applicant has identified a constraint that may be applied to a
subset of the concave portion 15 that overlaps the plate package. This subset is denoted
"constrained perimeter" in the following. In the example of Fig. 5A, the constrained
perimeter extends from a starting point P1, which coincides with the intersection
point 11, to a well-defined end point P2. Along the extent of the constrained perimeter,
the local inclination of the perimeter is constrained to be within a predefined angular
range. The local inclination is given by the tangent to the perimeter at each individual
location on the perimeter, as seen in a normal direction to the end surface 5. The
angular range is given by a maximum design angle α
max, which is defined with respect to the longitudinal direction L (i.e. the direction
of the nearby wall 4). The angular range thus extends from -α
max to α
max. The end point P2 is given by the location along the perimeter where the local inclination
exceeds the maximum design angle α
max, as indicated in Fig. 5A. The constrained perimeter has an overall extent ΔL in the
longitudinal direction L and an overall extent ΔT in the transverse direction T. The
present Applicant has found that a favorable distribution of stress is achieved by
designing the concave portion 15 with a constrained perimeter such that ΔT/ΔL ≤ 2.
For example, it may be desirable to configure the concave portion 15 with ΔT/ΔL ≤
1.5, ΔT/ΔL ≤ 1 or ΔT/ΔL ≤ 0.5.
[0047] Although not clearly shown in Fig. 5A, the mounting plate 7 abuts on and is attached
to the end surface 5 along the entire extent of the constrained perimeter. This configuration
may improve the stability and durability of the heat exchanger.
[0048] It is currently believed that a favorable distribution of stress is achieved with
the maximum design angle α
max set to a value of about 65°, although other values are conceivable. It should also
be noted that the maximum design angle α
max generally defines the end point P2, and that the local inclination may be significantly
smaller than α
max along a significant portion of the constrained perimeter. Such an example is seen
in Fig. 5A. Thus, a further design criterion may be applied to restrict the local
inclination to a main angle α
main for at least 30%, and typically at least 50%, of the constrained perimeter. For example,
the main angle α
main may set the inclination of the linear portion that connects circular arcs (defined
by R1, R2 in Fig. 5A). The main angle α
main is smaller than the maximum design angle α
max and may e.g. be set to approximately 55°, 45°, 35°, 25°, 15° or 5°. The main angle
α
main may even be 0, which means that the constrained perimeter would partially extend
in alignment with the wall 4, i.e. along the dashed line 4 in Fig. 5A.
[0049] It is realized that the radii R1, R2 of the circular arcs, as well as the extent
of the line portion (if present) that connects the circular arcs, may be set so as
to fulfill the above-described design criteria. It should also be noted that even
if an implementation with circular arcs and an essentially linear portion that connects
the circular arcs (as in Figs 5A-5B) may simplify manufacture of the mounting plates
7, other configurations of the inward and outward corners are conceivable.
[0050] It is currently believed that the stress distribution is favored by locating the
starting point P1 of the constrained perimeter at the intersection point 11, as shown
in Fig. 5A. However, this means that the local inclination of the perimeter at the
intersection point 11 should not exceed the maximum design angle α
max- However, it is conceivable that other design considerations call for a greater freedom
to locate the constrained perimeter. Simulations indicate that a comparable stress
distribution is achieved even if the starting point P1 is shifted from the intersection
point 11. Fig. 5B illustrates an example of a concave portion 15 that extends across
the wall 4 at right angles, whereby the starting point P1 is set to the location where
the local inclination equals the maximum design angle α
max This means that the starting point P1 is shifted from the intersection point 11 in
both the transverse direction T and the longitudinal direction L. According to one
design criterion, the transverse spacing δT between the starting point P1 and the
intersection point 11 fulfills δT/ΔL ≤ 0.2, and preferably δT/ΔL ≤ 0.1. In a practical
implementation, this may correspond to a transverse spacing δT of less than about
5 mm.
[0051] It should be noted, though, that even if it is possible for the concave portion 15
to intersect the wall 4 at right angles, the distribution of stress is generally favored
by a non-perpendicular intersection, e.g. as shown in Fig. 5A.
[0052] For reference, it may be noted that the configuration in Fig. 5A is designed with
α
main = 15°, ΔT/AL = 4.75/12.21 = 0.39, δT = 0, R1 = 10 mm, R2 = 4 mm. The configuration
in Fig. 5B is designed with α
main = 15°, ΔT/ΔL = 8.6/18 = 0.48, δT/ΔL = 2/18 = 0.11, R1 = 1 mm, R2 = 10 mm.
[0053] Figs 5C-5D are perspective views from above and below, respectively, of the juncture
between the mounting plate 7 and the plate package 2 for the embodiment in Fig. 5A,
where Fig. 5C is taken within the dashed rectangle 5C in Fig. 1. In this particular
example, further structures are located in the interface between the plate package
and the mounting plate 7, for the purpose of improving the stability and durability
of the heat exchanger 1. These structures include a sealing plate 21 which is connected
to the stack of heat exchanger plates 3 to define a bottom surface of the plate package
2. The sealing plate 21, as shown in Fig. 7, is generally planar and has through-holes
22 at its corners to be mated with corresponding through-holes in the heat exchanger
plates 3. The perimeter of the sealing plate 21 is bent upwards to form a surrounding
flange 23 which adapted to abut on and be fixed to a corresponding flange of an overlying
heat exchanger plate, as is known in the art. The material thickness of the sealing
plate 21 typically exceeds the material thickness of the heat exchanger plates, and
thus the surrounding flange 23 may project slightly beyond the perimeter of the surrounding
wall 4 (by 1-2 mm). This is illustrated in the bottom plan views of Figs 5A-5B. In
certain embodiments, the mounting plates 7 may be directly attached to the sealing
plate 21. In such embodiments, the sealing plate 21 is an end plate that defines the
end surface 5.
[0054] However, in the illustrated embodiment, an additional plate 24 is attached intermediate
the sealing plate 21 and the mounting plate 7 for the purpose of reinforcing the bottom
surface of the plate package 2. Thus, the end surface 5 is defined by this additional
reinforcement or supporting plate 24. The use of such a reinforcement plate 24 may
be advantageous when the working pressure of one or both of the media conveyed through
the heat exchanger 1 is high or when the working pressure for one or both of the media
varies over time. The reinforcement plate 24, which is shown in greater detail in
Fig. 8, has a uniform thickness and defines through-holes 25 which are matched to
the portholes in the plate package 2. The perimeter of the reinforcement plate 24
may be essentially level with the perimeter of the sealing plate 21 or the perimeter
of the wall 4 of the plate package 2. However, in the illustrated example, the reinforcement
plate 24 is adapted to locally project from the perimeter of the wall 4. Specifically,
the reinforcement plate 24 is provided with cutouts 26 that are located to extend
in the longitudinal direction between the intersection points 11 on a respective transverse
side of the plate package 2 so as to be essentially level with the axial wall 4. In
Figs 5A-5B, however, the cutouts 26 are slightly displaced inwardly from the axial
wall 4. The longitudinal end points of the cutouts 26 define a respective transition
27 to a projecting tab portion 28. In the example of Figs 5C-5D, the transitions 27
are located to overlap the perimeter of the mounting plate 7 in proximity to the intersection
points 11 and are shaped to be non-perpendicular to the perimeter of the mounting
plate 7 at the overlap, as seen in a direction towards the bottom of the heat exchanger
1. This configuration of the reinforcement plate 24 will locally decrease the stress
in the reinforcement plate 24 at the intersection points 11. The transitions 27 may
e.g. form a bevel or a curve from the cutout 26 to the tab 28. In Figs 5C-5D, the
transitions 27 are further configured to essentially co-extend with perimeter of the
mounting plate 7 at the overlap. Further, as seen in Figs 5C-5D, the tab portions
28 protrude from the plate package 2 to essentially co-extend with and abut against
a respective mounting plate 7. This has been found to result in a favorable distribution
of stress between the mounting plate 7, the reinforcement plate 24 and the sealing
plate 21 especially at the corners of the plate package 2. It will also increase the
strength of the joint between the reinforcement plate 24 and the mounting plate 7
due to the increased contact area between them. In an alternative implementation,
not shown, the reinforcement plate 24 projects from the plate package 2 around its
entire perimeter except for small notches that are located in the proximity of the
intersection points 11 to provide transitions 27 that are appropriately shaped to
be non-perpendicular to, and preferably co-extending with, the perimeter of the mounting
plate 7.
[0055] The design of the mounting plate 7, and the reinforcement plate 24 if present, may
be optimized based on the general principles outlined above, by simulating the distribution
of stress in the heat exchanger structure. Such simulations may serve to adapt one
or more of the thickness of the mounting plates 7, the width of the mounting plate
7 in the longitudinal direction L, the shape and location of the concave portions
15, as well as further design parameters for the concave portions 15, such as the
extents ΔL, ΔT (for a given α
max), the transverse spacing δT, the radii R1, R2, and the main angle α
main. The simulations may be based on any known technique for numerical approximation
of stress, such as the finite element method, the finite difference method, and the
boundary element method.
[0056] A few non-limiting examples of alternative configurations of the concave portion
15 is shown in Figs 9A-9B. The configuration in Fig. 9A is designed with α
main = 6°, ΔT/ΔL = 10.4/29.6 = 0.35, δT = 0, R1 = 10 mm, R2 = 15 mm. The configuration
in Fig. 9B is designed with α
main = 60°, ΔT/ΔL = 1.7, δT = 0, R1 = 10 mm, R2 = 15 mm.
[0057] A simulation of the stress distribution within the structure in Figs 5C-5D, for one
specific vibration load condition, indicates that stresses are well-distributed without
any significant peaks in the interface between the reinforcement plate 24 and the
sealing plate 21. For this particular simulation, the maximum stress levels are distributed
along arrow L1, which is co-located with the starting point P1 (Fig. 5A). Here, the
stress values are approximately 80 N/mm
2 (MPa). The simulation also indicates that stresses are equally well-distributed in
the interface between the mounting plate 7 and the reinforcement plate 24, where maximum
stress levels of approximately 50 N/mm
2 are distributed along arrow L2 in Fig. 5D. Incidentally, the arrow L2 is co-located
with the end point P2. Corresponding simulations for the structure in Fig. 9A indicates
corresponding maximum stress levels with a similar distribution. Simulations for the
structure in Fig. 9B indicate maximum stress levels of approximately 110 N/mm
2 around the starting point P1 and approximately 60 N/mm
2 around the end point P2. For comparison, the stress distribution has also been simulated,
for the same vibration load condition, within a heat exchanger provided with a convex
mounting plate 7, i.e. a mounting plate 7 without concave portions, as shown in Fig.
6. In this example, the reinforcement plate 24 has the same extension as the sealing
plate 21. The simulation indicated a significant stress concentration at the juncture
of the mounting plate 7 and the reinforcement plate 24, with a maximum stress value
of about 310 N/mm
2 in region L3.
[0058] It should be understood that the design of the mounting plates 7 is subject to several
design considerations. For example, the width of the mounting plates 7 in the longitudinal
direction L may be set to minimize weight and/or cost of the heat exchanger. Such
a constraint may also limit the available width W of the concave portion 15 in the
longitudinal direction L. The width W is generally indicated in Figs 9A-9B. In principle,
the width W should be as long as possible so as to distribute stress over a longer
perimeter. As noted, the width W is typically limited in practice. The above-described
design criteria stipulate that ΔT/ΔL ≤ 2 for effective suppression of stress concentration.
This does not necessarily mean that it is optimal to minimize ΔT/ΔL. Instead, the
design parameters, and thus ΔT/ΔL, may be optimized to minimize the maximum stress
values for any given width W. The structures in Figs 9A-9B have been optimized in
this way. Thus, the maximum stress values are minimized at ΔT/ΔL = 0.35 for the structure
in Fig. 9A, and at ΔT/ΔL = 1.7 for the structure in Fig. 9B. Generally, the optimum
ΔT/ΔL increases with decreasing width W. This can be understood by considering that
although the stresses at the starting point P1 will decrease with increasing width
W and with decreasing ΔT (i.e. as the constricted perimeter is being more parallel
to the longitudinal direction L), significant stresses are formed at and around the
end point P2 if located close to the surrounding wall 4, when the width W is limited.
Thus, the possible optimization with respect to ΔT/ΔL is aimed at balancing the stresses
formed at the starting point P1 and the stresses formed at the end point P2. Generally,
with decreasing width W, the optimum is found by moving the end point P2 away from
the wall 4, i.e. by increasing ΔT, e.g. by increasing the main angle α
main and/or the radius R2. The foregoing discussion is only given to explain the relevance
of the ratio ΔT/ΔL and does not imply that the design parameters of the concave portion
15 need to be optimized for a specific width W.
[0059] While the invention has been described in connection with what is presently considered
to be the most practical and preferred embodiments, it is to be understood that the
invention is not to be limited to the disclosed embodiments, but on the contrary,
is intended to cover various modifications and equivalent arrangements included within
the spirit and the scope of the appended claims.
[0060] For example, the edge surface 14 may have any shape and angle to the top and bottom
surfaces 12, 13 of the mounting plate 7.
[0061] The reinforcement plate 24, as described and exemplified herein, may also be installed
in a plate heat exchanger 1 with convex mounting plates 7, e.g. as shown in Fig. 6,
to increase the stability and durability of the plate heat exchanger 1 and, to a certain
degree, counteract stress concentration at the intersection points 11. Such a reinforcement
plate 24 may provide supporting flanges 28 that extend beyond the perimeter of the
surrounding wall 4 and are permanently connected to the top surface 12 of the mounting
plates 7. The reinforcement plate 24 may also define the above-described transitions
27, which are located to overlap the perimeter of the respective mounting plate 7
at the intersection points 11 and are shaped to be non-perpendicular to, and preferably
co-extending with, the perimeter of the respective mounting plate 7 at the overlap.
[0062] As used herein, "top", "bottom", "vertical", "horizontal", etc merely refer to directions
in the drawings and does not imply any particular positioning of the heat exchanger
1. Nor does this terminology imply that the mounting plates 7 need to be arranged
on any particular end of the plate package 2. Reverting to Fig. 1, the mounting plates
may alternatively be arranged on the top axial end of the plate package 2 and may
be permanently connected either to a sealing plate or to a reinforcement plate overlying
the sealing plate. Furthermore, the mounting plates 7 may be arranged on an end of
the plate package 2 that lacks portholes or on which each or at least one porthole
6 is located intermediate the mounting plates 7.
1. A plate heat exchanger, comprising:
a plurality of heat exchanger plates (3) which are stacked and permanently connected
to form a plate package (2) that defines first and second fluid paths for a first
medium and a second medium, respectively, separated by said heat exchanger plates
(3), said plate package (2) defining a surrounding external wall (4) that extends
in an axial direction (A) between first and second axial ends,
an end plate (21; 24) permanently connected to one of the first and second axial ends
so as to provide an end surface (5) that extends between first and second longitudinal
ends in a lateral plane which is orthogonal to the axial direction (A), and
two mounting plates (7) permanently connected to a respective surface portion of the
end surface (5) at the first longitudinal end and the second longitudinal end, respectively,
such that the mounting plates (7) are spaced from each other in a longitudinal direction
(L) on the end surface (5), wherein the respective mounting plate (7) comprises opposing
flat engagement surfaces (12, 13) connected by an edge portion that extends along
the perimeter of the mounting plate (7), wherein
the respective mounting plate (7) is arranged with one of its engagement surfaces
(12, 13) permanently connected to the end surface (5), such that the perimeter of
the mounting plate (7) partially extends beyond the surrounding external wall (4),
so as to define a mounting flange (9),
characterized in that the respective mounting plate (7) partially extends across the end surface (5) in
contact with the same within the perimeter of the surrounding external wall (4), and
the perimeter of the mounting plate (7) comprises two concave portions (15) as seen
in a normal direction to the end surface (5), the concave portions (15) being located
to intersect the surrounding external wall (4) at a respective intersection point
(11).
2. The plate heat exchanger of claim 1, wherein a subset of the respective concave portion
(15) is located at or within the surrounding external wall (4) and is non-perpendicular
to the perimeter of the surrounding external wall (4) at the respective intersection
point (11), as seen in the normal direction to the end surface (5).
3. The plate heat exchanger of claim 2, wherein said subset of the respective concave
portion (15) extends from a starting point (P1) to an end point (P2) on the concave
portion (15), such that the local inclination of the concave portion, given by a tangential
line, along said subset is less than a maximum design angle (αmax), and wherein the end point (P2) is located where the local inclination exceeds the
maximum design angle (αmax).
4. The plate heat exchanger of claim 3, wherein the maximum design angle is defined between
the tangential line and the longitudinal direction (L) and has a value of approximately
65°.
5. The plate heat exchanger of claim 3 or 4, wherein said subset comprises an essentially
linear portion within at least 30% of said subset, said linear portion having a predefined
angle (αmain), to the longitudinal direction (L), which is less that the maximum design angle
(αmax).
6. The plate heat exchanger of any one of claims 3-5, wherein said subset of the respective
concave portion (15) has a first extent (ΔL) in the longitudinal direction (L) and
a second extent (ΔT) in a transverse direction (T), which is orthogonal to the longitudinal
direction (L) in the plane of the mounting plate (7), wherein the ratio of the second
extent (ΔT) to the first extent (ΔL) is equal to or less than approximately 2, and
preferably equal to or less than approximately 1 or approximately 0.5.
7. The plate heat exchanger of any one of claims 3-6, wherein the predefined starting
point (P1) of said subset is located within a maximum design distance (δT), in the
transverse direction (T), from the respective intersection point (11), wherein the
maximum design distance (δT) is 20% of the first extent (ΔL).
8. The plate heat exchanger of any one of claims 3-7, wherein the starting point (P1)
essentially coincides with the respective intersection point (11).
9. The plate heat exchanger according to any one of claims 3-8, wherein said end point
(P2) is located on an outward corner of the mounting plate (7), said outward corner
being defined by a second radius (R2).
10. The plate heat exchanger of any preceding claim, wherein the perimeter of the mounting
plate (7) is non-perpendicular to the perimeter of the surrounding external wall (4)
at the respective intersection point (11), as seen in the normal direction to the
end surface (5).
11. The plate heat exchange according to any one of claims 2 - 9, wherein the mounting
plate (7) abuts on and is permanently connected to the end surface (5) along said
subset of the concave portion (15).
12. The plate heat exchanger of any preceding claim, wherein the respective concave portion
(15) comprises an inward corner defined by a first radius (R1), said inward corner
intersecting the surrounding external wall (4) at the intersection point (11), as
seen in the direction normal to the end surface (5).
13. The plate heat exchanger of any preceding claim, wherein the respective concave portion
(15) extends between two limit points (C1, C2) on the perimeter of the mounting plate
(7), said limit points (C1, C2) being defined by a mathematical line (ML) which intersects
the perimeter of the mounting plate (7) only at the limit points (C1, C2) and which
extends beyond the perimeter of the mounting plate (7) intermediate the limit points
(C1, C2), as seen in the direction normal to the end surface (5).
14. The plate heat exchanger of any preceding claim, wherein the end plate (21) is a sealing
plate which is permanently and sealingly connected to one of the heat exchanger plates
(3) at one of said first and second axial ends.
15. The plate heat exchanger of any one of claims 1-13, wherein the end plate (24) is
a reinforcement plate (24) which is permanently connected to a sealing plate (21)
on the plate package (2), wherein the end plate (24) has at least two supporting flanges
(28) that extend beyond the perimeter of the surrounding external wall (4) so as to
abut on the mounting flange (9) defined by the respective mounting plate (7).
16. The plate heat exchanger of claim 15, wherein the end plate (24) comprises, along
its perimeter and as seen in the normal direction of the end surface (5), concave
or beveled surfaces (27) adjacent to the supporting flanges (28), wherein the concave
or beveled surfaces (27) are located to overlap the perimeter of the respective mounting
plate (7) at the intersection points (11), and wherein the respective concave or beveled
surface (27) is non-perpendicular to, and preferably co-extending with, the perimeter
of the mounting plate (7) at the overlap, as seen in the normal direction to the end
surface (5).
17. The plate heat exchanger of any preceding claim, wherein at least one of the mounting
plates (7) defines at least one through hole (8) that extends between the engagement
surfaces (12, 13) and is aligned with a corresponding through hole (22; 25) defined
in the end plate (21; 24) and an internal channel defined in the plate package (2),
so as to form an inlet or an outlet for the first or the second medium.
18. The plate heat exchanger of any preceding claim, wherein the mounting flange (9) comprises
a plurality of mounting holes (10) adapted to receive bolts or pins for fastening
the plate heat exchanger.
19. The plate heat exchanger of any preceding claim, wherein the heat exchanger plates
(3) are permanently joined to each other through melting of metallic material.
1. Plattenwärmetauscher, der Folgendes umfasst:
mehrere Wärmetauscherplatten (3), die gestapelt und dauerhaft verbunden sind, um ein
Plattenpaket (2) zu bilden, das eine erste und eine zweite Fluidbahn für ein erstes
Medium beziehungsweise ein zweites Medium definiert, getrennt durch die Wärmetauscherplatten
(3), wobei das Plattenpaket (2) eine umgebende äußere Wand (4) definiert, die sich
in einer axialen Richtung (A) zwischen einem ersten und einen zweiten axialen Ende
erstreckt,
eine Endplatte (21; 24), die dauerhaft mit einem von dem ersten und dem zweiten axialen
Ende verbunden ist, um so eine Endfläche (5) bereitzustellen, die sich zwischen einem
ersten und einem zweiten Längsende in einer seitlichen Ebene, die senkrecht zu der
axialen Richtung (A) ist, erstreckt, und
zwei Anbringungsplatten (7), die derart dauerhaft mit einem jeweiligen Oberflächenabschnitt
der Endfläche (5) an dem ersten Längsende beziehungsweise dem zweiten Längsende verbunden
sind, dass die Anbringungsplatten (7) in einer Längsrichtung (L) an der Endfläche
(5) voneinander beabstandet sind, wobei die jeweilige Anbringungsplatte (7) flache
Eingriffsflächen (12, 13) umfasst, die durch einen Kantenabschnitt, der sich entlang
des Umfangs der Anbringungsplatte (7) erstreckt, verbunden sind, wobei
die jeweilige Anbringungsplatte (7) so angeordnet ist, dass eine ihrer Eingriffsflächen
(12, 13) derart dauerhaft mit der Endfläche (5) verbunden ist, dass sich der Umfang
der Anbringungsplatte (7) über die umgebende äußere Wand (4) hinaus erstreckt, um
so einen Anbringungsflansch (9) zu definieren,
dadurch gekennzeichnet, dass sich die jeweilige Anbringungsplatte (7) teilweise in Berührung mit derselben über
die Endfläche (5) innerhalb des Umfangs der umgebenden äußeren Wand (4) erstreckt
und
der Umfang der Anbringungsplatte (7) zwei konkave Abschnitte (15) definiert, gesehen
in einer zu der Endfläche (5) senkrechten Richtung, wobei die konkaven Abschnitte
(15) dafür angeordnet sind, die umgebende äußere Wand (4) an einem jeweiligen Überschneidungspunkt
(11) zu überschneiden.
2. Plattenwärmetauscher nach Anspruch 1, wobei eine Teilmenge des jeweiligen konkaven
Abschnitts (15) an oder innerhalb der umgebenden äußeren Wand (4) angeordnet ist und
nicht senkrecht zu dem Umfang der umgebenden äußeren Wand (4) an dem jeweiligen Überschneidungspunkt
(11) ist, gesehen in der zu der Endfläche (5) senkrechten Richtung.
3. Plattenwärmetauscher nach Anspruch 2, wobei sich die Teilmenge des jeweiligen konkaven
Abschnitts (15) derart von einem Startpunkt (P1) bis zu einem Endpunkt (P2) an dem
konkaven Abschnitt (15) erstreckt, dass die örtliche Neigung des konkaven Abschnitts,
gegeben durch eine Tangentiallinie, entlang der Teilmenge geringer ist als ein maximaler
Konstruktionswinkel (αmax) und wobei der Endpunkt (P2) angeordnet ist, wo die örtliche Neigung den maximalen
Konstruktionswinkel (αmax) überschreitet.
4. Plattenwärmetauscher nach Anspruch 3, wobei der maximale Konstruktionswinkel zwischen
der Tangentiallinie und der Längsrichtung (L) definiert wird und einen Wert von ungefähr
65° hat.
5. Plattenwärmetauscher nach Anspruch 3 oder 4, wobei die Teilmenge einen im Wesentlichen
linearen Abschnitt innerhalb von wenigstens 30 % der Teilmenge umfasst, wobei der
lineare Abschnitt einen Winkel (αmain) zu der Längsrichtung (L) hat, der geringer ist als der maximale Konstruktionswinkel
(αmax).
6. Plattenwärmetauscher nach einem der Ansprüche 3 bis 5, wobei die Teilmenge des jeweiligen
konkaven Abschnitts (15) eine erste Ausdehnung (ΔL) in der Längsrichtung (L) und eine
zweite Ausdehnung (ΔT) in einer Querrichtung (T), die in der Ebene der Anbringungsplatte
(7) senkrecht zu der Längsrichtung (L) ist, hat, wobei das Verhältnis der zweiten
Ausdehnung (ΔT) zu der ersten Ausdehnung (ΔL) gleich ungefähr 2 oder geringer und
vorzugsweise gleich ungefähr 1 oder ungefähr 0,5 oder geringer ist.
7. Plattenwärmetauscher nach einem der Ansprüche 3 bis 6, wobei der vorbestimmte Startpunkt
(P1) der Teilmenge innerhalb eines maximalen Konstruktionsabstandes (δT), in der Querrichtung
(T) von dem jeweiligen Überschneidungspunkt (11) angeordnet ist, wobei der maximale
Konstruktionsabstand (δT) 20 % der ersten Ausdehnung (ΔL) beträgt.
8. Plattenwärmetauscher nach einem der Ansprüche 3 bis 7, wobei der Startpunkt (P1) im
Wesentlichen mit dem jeweiligen Überschneidungspunkt (11) zusammenfällt.
9. Plattenwärmetauscher nach einem der Ansprüche 3 bis 8, wobei der Endpunkt (P2) an
einer äußeren Ecke der Anbringungsplatte (7) angeordnet ist, wobei die äußere Ecke
durch einen zweiten Radius (R2) definiert wird.
10. Plattenwärmetauscher nach einem der vorhergehenden Ansprüche, wobei der Umfang der
Anbringungsplatte (7) an dem jeweiligen Überschneidungspunkt (11) nicht senkrecht
zu dem Umfang der umgebenden äußeren Wand (4) ist, gesehen in der zu der Endfläche
(5) senkrechten Richtung.
11. Plattenwärmetauscher nach einem der Ansprüche 2 bis 9, wobei die Anbringungsplatte
(7) entlang der Teilmenge des jeweiligen konkaven Abschnitts (15) an die Endfläche
(5) anstößt und dauerhaft mit derselben verbunden ist.
12. Plattenwärmetauscher nach einem der vorhergehenden Ansprüche, wobei der jeweilige
konkave Abschnitt (15) eine innere Ecke umfasst, die durch einen ersten Radius (R1)
definiert wird, wobei die innere Ecke die umgebende äußere Wand (4) an dem Überschneidungspunkt
(11) überschneidet, gesehen in der zu der Endfläche (5) senkrechten Richtung.
13. Plattenwärmetauscher nach einem der vorhergehenden Ansprüche, wobei sich der jeweilige
konkave Abschnitt (15) zwischen zwei Grenzpunkten (C1, C2) auf dem Umfang der Anbringungsplatte
(7) erstreckt, wobei die Grenzpunkte (C1, C2) durch eine mathematische Linie (ML)
definiert werden, die den Umfang der Anbringungsplatte (7) nur an den Grenzpunkten
(C1, C2) überschneidet und die sich zwischen den Grenzpunkten (C1, C2) über den Umfang
der Anbringungsplatte (7) hinaus erstreckt, gesehen in der zu der Endfläche (5) senkrechten
Richtung.
14. Plattenwärmetauscher nach einem der vorhergehenden Ansprüche, wobei die Endplatte
(21) eine Abdichtungsplatte ist, die an einem von dem ersten und dem zweiten axialen
Ende dauerhaft und abdichtend mit einer der Wärmetauscherplatten (3) verbunden ist.
15. Plattenwärmetauscher nach einem der Ansprüche 1 bis 15, wobei die Endplatte (24) eine
Verstärkungsplatte (24) ist, die dauerhaft mit einer Abdichtungsplatte (21) an dem
Plattenpaket (2) verbunden ist, wobei die Endplatte (24) wenigstens zwei Stützflansche
(28) hat, die sich über den Umfang der umgebenden äußeren Wand (4) hinaus erstrecken,
so dass sie an den durch die jeweilige Anbringungsplatte (7) definierten Anbringungsflansch
(9) anstoßen.
16. Plattenwärmetauscher nach Anspruch 15, wobei die Endplatte (24), entlang ihres Umfangs
und gesehen in der senkrechten Richtung der Endfläche (5), konkave oder abgeschrägte
Flächen (27) angrenzend an die Stützflansche (28) umfasst, wobei die konkaven oder
abgeschrägten Flächen (27) dafür angeordnet sind, den Umfang der jeweiligen Anbringungsplatte
(7) an den Überschneidungspunkten (11) zu überlappen, und wobei die jeweilige konkave
oder abgeschrägte Fläche (27) an der Überlappung nicht senkrecht zu dem Umfang der
Anbringungsplatte (7) ist und vorzugsweise die gleiche Ausdehnung hat, gesehen in
der zu der Endfläche (5) senkrechten Richtung.
17. Plattenwärmetauscher nach einem der vorhergehenden Ansprüche, wobei wenigstens eine
der Anbringungsplatten (7) wenigstens ein Durchgangsloch (8) definiert, das sich zwischen
den Eingriffsflächen (12, 13) erstreckt und mit einem entsprechenden Durchgangsloch
(22; 25), das in der Endplatte (21; 24) definiert ist, und einem inneren Kanal, der
in dem Plattenpaket (2) definiert ist, ausgerichtet ist, um so einen Einlass oder
einen Auslass für das erste oder das zweite Medium zu bilden.
18. Plattenwärmetauscher nach einem der vorhergehenden Ansprüche, wobei der Anbringungsflansch
(9) mehrere Anbringungslöcher (10) umfasst, die dafür eingerichtet sind, Bolzen oder
Stifte zum Befestigen des Plattenwärmetauschers aufzunehmen.
19. Plattenwärmetauscher nach einem der vorhergehenden Ansprüche, wobei die Wärmetauscherplatten
(3) durch das Schmelzen von metallischem Material dauerhaft miteinander verbunden
sind.
1. Échangeur de chaleur à plaques, comprenant :
une pluralité de plaques d'échangeur de chaleur (3) qui sont empilées et raccordées
de manière permanente pour former un ensemble de plaques (2) qui définit des premier
et deuxième chemins de fluide, pour respectivement un premier milieu et un deuxième
milieu, séparés par lesdites plaques d'échangeur de chaleur (3), ledit ensemble de
plaques (2) définissant une paroi externe (4) environnante qui s'étend dans une direction
axiale (A) entre des première et deuxième extrémités axiales,
une plaque d'extrémité (21 ; 24) raccordée de manière permanente à une parmi les première
et deuxième extrémités axiales de manière à fournir une surface d'extrémité (5) qui
s'étend entre des première et deuxième extrémités longitudinales dans un plan latéral
qui est orthogonal par rapport à la direction axiale (A), et
deux plaques de montage (7) raccordées de manière permanente à une partie surface
respective de la surface d'extrémité (5) au niveau de la première extrémité longitudinale
et de la deuxième extrémité longitudinale, respectivement, de telle manière que les
plaques de montage (7) sont espacées les unes par rapport aux autres dans une direction
longitudinale (L) sur la surface d'extrémité (5), dans lequel la plaque de montage
(7) respective comprend des surfaces de mise en prise (12, 13) plates se faisant face
raccordées grâce à une partie bord qui s'étend le long du périmètre de la plaque de
montage (7), dans lequel
la plaque de montage (7) respective est agencée avec une de ses surfaces de mise en
prise (12, 13) raccordée de manière permanente à la surface d'extrémité (5), de telle
manière que le périmètre de la plaque de montage (7) s'étend partiellement au-delà
de la paroi externe (4) environnante, de manière à définir une bride de montage (9),
et caractérisé en ce que la plaque de montage (7) respective s'étend partiellement sur la surface d'extrémité
(5) en étant en contact avec celle-ci au sein du périmètre de la paroi externe (4)
environnante, et
le périmètre de la plaque de montage (7) comprend deux parties concaves (15), vu dans
une direction normale par rapport à la surface d'extrémité (5), les parties concaves
(15) étant situées de manière à croiser la paroi externe (4) environnante au niveau
d'un point d'intersection respectif (11).
2. Échangeur de chaleur à plaques selon la revendication 1, dans lequel un sous-ensemble
de la partie concave (15) respective est située au niveau ou au sein de la paroi externe
(4) environnante et n'est pas perpendiculaire au périmètre de la paroi externe (4)
environnante au niveau du point d'intersection respectif (11), vu dans la direction
normale par rapport à la surface d'extrémité (5).
3. Échangeur de chaleur à plaques selon la revendication 2, dans lequel ledit sous-ensemble
de la partie concave (15) respective s'étend à partir d'un point de départ (P1) jusqu'à
un point terminal (P2) sur la partie concave (15), de telle manière que l'inclinaison
locale de la partie concave, fournie par une ligne tangente, le long dudit sous-ensemble
est inférieure à un angle de consigne maximal (αmax), et dans lequel le point terminal (P2) est situé là où l'inclinaison locale dépasse
l'angle de consigne maximal (αmax).
4. Échangeur de chaleur à plaques selon la revendication 3, dans lequel l'angle de consigne
maximal est défini entre la ligne tangente et la direction longitudinale (L) et présente
une valeur d'approximativement 65°.
5. Échangeur de chaleur à plaques selon la revendication 3 ou 4, dans lequel ledit sous-ensemble
comprend une partie essentiellement linéaire au sein d'au moins 30% dudit sous-ensemble,
ladite partie linéaire présentant un angle (αmain) prédéfini, par rapport à la direction longitudinale (L), qui est inférieur à l'angle
maximal (αmax).
6. Échangeur de chaleur à plaques selon l'une quelconque des revendications 3 à 5, dans
lequel ledit sous-ensemble de la partie concave (15) respective présente une première
étendue (ΔL) dans la direction longitudinale (L) et une deuxième étendue (ΔT) dans
une direction transversale (T), qui est orthogonale par rapport à la direction longitudinale
(L) dans le plan de la plaque de montage (7), dans lequel le rapport de la deuxième
étendue (ΔT) sur la première étendue (ΔL) est inférieur ou égal à approximativement
2, et est de manière préférée inférieur ou égal à approximativement 1 ou approximativement
0,5.
7. Échangeur de chaleur à plaques selon l'une quelconque des revendications 3 à 6, dans
lequel le point de départ (P1) prédéfini dudit sous-ensemble est situé à l'intérieur
d'une distance de consigne maximale (δT), dans la direction transversale (T), à partir
du point d'intersection respectif (11), dans lequel la distance de consigne maximale
(δT) représente 20% de la première étendue (ΔL).
8. Échangeur de chaleur à plaques selon l'une quelconque des revendications 3 à 7, dans
lequel le point de départ (P1) coïncide essentiellement avec le point d'intersection
respectif (11).
9. Échangeur de chaleur à plaques selon l'une quelconque des revendications 3 à 8, dans
lequel ledit point terminal (P2) est situé sur un coin extérieur de la plaque de montage
(7), ledit coin extérieur étant défini grâce à un deuxième rayon (R2).
10. Échangeur de chaleur à plaques selon l'une quelconque des revendications précédentes,
dans lequel le périmètre de la plaque de montage (7) n'est pas perpendiculaire au
périmètre de la paroi externe (4) environnante au niveau du point d'intersection respectif
(11), vu dans la direction normale par rapport à la surface d'extrémité (5).
11. Échangeur de chaleur à plaques selon l'une quelconque des revendications 2 à 9, dans
lequel la plaque de montage (7) est contiguë sur la surface d'extrémité (5) et raccordée
de manière permanente à celle-ci le long dudit sous-ensemble de la partie concave
(15).
12. Échangeur de chaleur à plaques selon l'une quelconque des revendications précédentes,
dans lequel la partie concave (15) respective comprend un coin intérieur défini par
un premier rayon (R1), ledit coin intérieur croisant la paroi externe (4) environnante
au niveau du point d'intersection (11), vu dans la direction normale par rapport à
la surface d'extrémité (5).
13. Échangeur de chaleur à plaques selon l'une quelconque des revendications précédentes,
dans lequel la partie concave (15) respective s'étend entre deux points limites (C1,
C2) sur le périmètre de la plaque de montage (7), lesdits points limites (C1, C2)
étant définis par une droite mathématique (ML) qui croise le périmètre de la plaque
de montage (7) seulement au niveau des points limites (C1, C2) et qui s'étend au-delà
du périmètre de la plaque de montage (7) entre les points limites (C1, C2), vu dans
la direction normale par rapport à la surface d'extrémité (5).
14. Échangeur de chaleur à plaques selon l'une quelconque des revendications précédentes,
dans lequel la plaque d'extrémité (21) est une plaque de fermeture étanche qui est
raccordée de manière permanente et étanche à l'une des plaques d'échangeur de chaleur
(3) au niveau d'une parmi lesdites première et deuxième extrémités axiales.
15. Échangeur de chaleur à plaques selon l'une quelconque des revendications 1 à 13, dans
lequel la plaque d'extrémité (24) est une plaque de renforcement (24) qui est raccordée
de manière permanente à une plaque d'étanchéité (21) sur l'ensemble de plaques (2),
dans lequel la plaque d'extrémité (24) présente au moins deux brides d'appui (28)
qui s'étendent au-delà du périmètre de la paroi externe (4) environnante de manière
à être contiguës sur la bride de montage (9) définie par la plaque de montage (7)
respective.
16. Échangeur de chaleur à plaques selon la revendication 15, dans lequel la plaque d'extrémité
(24) comprend, le long de son périmètre et vu dans la direction normale par rapport
à la surface d'extrémité (5), des surfaces concaves ou biseautées (27) adjacentes
aux brides d'appui (28), dans lequel les surfaces concaves ou biseautées (27) sont
situées de manière à chevaucher le périmètre de la plaque de montage (7) respective
au niveau des points d'intersection (11), et dans lequel la surface concave ou biseautée
(27) respective n'est pas perpendiculaire au périmètre de la plaque de montage (7)
au niveau du chevauchement, vu dans la direction normale par rapport à la surface
d'extrémité (5), et s'étend de manière préférée conjointement audit périmètre.
17. Échangeur de chaleur à plaques selon l'une quelconque des revendications précédentes,
dans lequel au moins une des plaques de montage (7) définit au moins un trou traversant
(8) qui s'étend entre les surfaces de mise en prise (12, 13) et est alignée avec un
trou traversant (22 ; 25) correspondant défini dans la plaque d'extrémité (21 ; 24)
et un canal interne défini dans l'ensemble de plaques (2), de manière à former une
entrée ou une sortie pour le premier ou le deuxième milieu.
18. Échangeur de chaleur à plaques selon l'une quelconque des revendications précédentes,
dans lequel la bride de montage (9) comprend une pluralité de trous de montage (10)
conçus pour recevoir des boulons ou des goupilles permettant de fixer l'échangeur
de chaleur à plaques.
19. Échangeur de chaleur à plaques selon l'une quelconque des revendications précédentes,
dans lequel les plaques d'échangeur de chaleur (3) sont réunies de manière permanente
les unes aux autres par fusion d'un matériau métallique.