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(11) |
EP 1 240 469 B1 |
| (12) |
EUROPEAN PATENT SPECIFICATION |
| (45) |
Mention of the grant of the patent: |
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13.04.2005 Bulletin 2005/15 |
| (22) |
Date of filing: 22.12.2000 |
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International application number: |
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PCT/SE2000/002683 |
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International publication number: |
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WO 2001/048433 (05.07.2001 Gazette 2001/27) |
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PLATE HEAT EXCHANGER
PLATTENWÄRMETAUSCHER
ECHANGEUR A PLAQUES
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Designated Contracting States: |
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AT BE CH CY DE DK ES FI FR GB GR IE IT LI LU MC NL PT SE TR |
| (30) |
Priority: |
23.12.1999 SE 9904786
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Date of publication of application: |
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18.09.2002 Bulletin 2002/38 |
| (73) |
Proprietor: Alfa Laval Corporate AB |
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22100 Lund (SE) |
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| (72) |
Inventors: |
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- BÜLOW, Nielsen, Pontus
S-217 59 Malmö (SE)
- BERMHULT, Rolf
S-226 42 Lund (SE)
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| (74) |
Representative: Lerwill, John et al |
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A.A. Thornton & Co.
235 High Holborn London, WC1V 7LE London, WC1V 7LE (GB) |
| (56) |
References cited: :
EP-A2- 0 905 453
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US-A- 3 106 243
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| Note: Within nine months from the publication of the mention of the grant of the European
patent, any person may give notice to the European Patent Office of opposition to
the European patent
granted. Notice of opposition shall be filed in a written reasoned statement. It shall
not be deemed to
have been filed until the opposition fee has been paid. (Art. 99(1) European Patent
Convention).
|
[0001] The present invention concerns a plate heat exchanger for at least two heat exchanging
fluids which heat exchanger is permanently joined and comprises at least one core
of plates with a plurality of heat exchanging plates and at least two end plates,
the heat exchanging plates creating plate interspaces between each other as defined
in the preamble of claim 1.
Prior art
[0002] EP, A2, 0 905 453 shows such a water heater which above a primary heat exchanger
heated by a heat source also comprises a secondary heat exchanger and a hot water
storage. The hot water storage is in close thermal contact with heat exchanging plates
in the secondary heat exchanger and is built together with this one. The described
modes of execution of the hot water storage are however not at optimum when it comes
to heat transfer, strength, material consumption etc.
Summary of the invention
[0003] The purpose of the invention is to create a plate heat exchanger for heating of water,
the plate heat exchanger being of such of kind that the hot water may be obtained
directly at tapping even after a longer period of standstill without the need for
hot water. The purpose of the invention is also, as a consequence of the just said,
to create a plate heat exchanger for heating or cooling of any convenient fluid so
that the fluid handled in such of way may be obtained directly even after a longer
period without the need for such a handled fluid. At the same time the heat transfer
between the working fluids in the core of plates shall be good under all service conditions,
the properties of strength be good for single plates as well as the core of plates
and the material consumption be small.
[0004] The invention thus comprises a plate heat exchanger for at least two heat exchanging
fluids which heat exchanger is permanently joined and comprises at least one core
of plates with a plurality of heat exchanging plates and at least two end plates.
The heat exchanging plates create plate inter spaces between each other.
[0005] Each one of the heat exchanging plates is provided with one or several corrugations
vertically extending within an area bounded by two at a distance from each other situated
parallel first and second planes respectively and which both are mainly in parallel
with all the heat exchanging plates as well as with the end plates of the plate heat
exchanger. Each one of the heat exchanging plates is provided with at least four port
holes being parts of an inlet channel and an outlet channel through the core of plates
for each one of the fluids.
[0006] At least one of the end plates has a plurality of port holes each one communicating
with one of the inlet channels or one of the outlet channels and the inlet channels
and outlet channels for a first and a second fluid respectively are in fluid communication
with a first and a second set of plate interspaces respectively.
[0007] At least two of the said and next to each other in the present core of plates situated
heat exchanging plates (2a, 2b) is each one provided with at least one trough-shaped
section (19) which each one in cooperation with the respective adjacent heat exchanging
plate (2a, 2b) creates a towards all the fluids except the said second fluid sealed
space and each one constitutes a part of the respective heat exchanging plate (2a,
2b) in such a way that the said part lacks port holes (9, 10, 13, 14) and each one
is created with a flange like edge (22) extending around the hole periphery of the
trough-shaped section (19) which edge makes an angle with the different main planes
of extension of the section (19) and the heat exchanging plate (2a, 2b) and which
along at least the main part of its length is in contact with the present corresponding
edges (22) on the adjacent heat exchanging plates (2a, 2b).
[0008] Each one of a plurality of said heat exchanging plates may be provided with at least
one trough-shaped section which in cooperation with the respective adjacent heat exchanging
plate creates a towards all fluids except the said second fluid sealed space.
[0009] The characteristics in other respects of the present invention are clear from the
following patent claims.
[0010] The plate heat exchanger will now be closer described in connection with forms of
execution of the invention and with reference to the accompanying drawings.
List of drawings
[0011] Figure 1 shows in a respective view a plate heat exchanger according to the invention.
[0012] Figure 2 shows a cross section through the plate heat exchanger along the line A-A
in figure 1.
[0013] Figure 3 shows a cross section through the plate heat exchanger along the line B-B
in figure 1.
[0014] Figure 4 shows in a perspective view a first type of heat exchanging plate being
part of the plate heat exchanger in figure 1.
[0015] Figure 5 shows in a perspective view a second type of heat exchanging plate being
part of the plate heat exchanger in figure 1.
[0016] Figure 6 shows a cross section through a part of the plate exchanger in figure 1,
the cut following the line C-C in the figures 4 and 5.
Description of modes of execution
[0017] The plate heat exchanger in figure 1 comprises a core of heat exchanging plates 2a,
2b, whereby only the common denotation 2 is given in the figure, and end plates 3,
4. Connections 5, 6, 7, 8 for two heat exchanging fluids are present. In the mode
of execution shown here the connections 5 and 6 constitutes inlet for a first and
a second heat exchanging fluid respectively while the connections 7 and 8 constitutes
outlet for the said first and second heat exchanging fluids respectively.
[0018] From the cross section in figure 2 is evident how portholes 9, 10 in every heat exchanging
plate 2a, 2b, create two port channels 11, 12 through the core of plates in one of
its ends. In the form of execution shown here the port channel 11 constitutes the
inlet channel for the first heat exchanging fluid while the port channel 12 constitutes
the outlet channel for the second heat exchanging fluid. In a corresponding way supplementing
port holes 13, 14 are present in the second end of the core of plates (the nearer
end of the core of plates in figure 1) in every heat exchanging plate 2a, 2b which
port holes create an inlet channel for the second heat exchanging fluid and an outlet
channel for the first heat exchanging fluid respectively. The inlet channel and the
outlet channel for the first heat exchanging fluid are in fluid communication with
a first set of plate interspaces 17 while the inlet channel and the outlet channel
for the second heat exchanging fluid are in fluid communication with a second set
of plate interspaces 18.
[0019] From the cross section in figure 3 is evident how each one of the heat exchanging
plates 2a, 2b is provided with a trough-shaped section 19. (It is for the inventive
idea enough with two trough-shaped sections 19 in the core of plates.) The trough-shaped
section 19 shows corrugations 20 vertically extending within an area delimited by
two at a distance to each other situated parallel third and fourth planes respectively
and which both are mainly in parallel with all the trough-shaped sections 19 and the
heat exchanging plates 2a, 2b as well as with the end plates 3, 4 of the plate heat
exchanger. The corrugations 20 are not to be mistaken for those corrugations which
are present on the rest of the parts of the respective heat exchanging plate 2a, 2b
and which are vertically extending within an area delimited by two at a distance to
each other situated parallel first and second planes respectively.
[0020] The trough-shaped section 19 further shows several through holes 21 (not plate 2a,
2b situated next to an end plate 3, 4 or by itself constitutes such an end plate -
also a plate 2a may thus be situated next to an end plate or itself constitute such
an end plate, not only a plate (2b)) which is not to be mistaken for port holes 9,
10, 13, 14 which port holes each one is part of and inlet channel 11 or an outlet
channel 12 through the core of plates for anyone of the fluids. The trough-shaped
section 19 is created with a flange like edge 22 extending around the whole periphery
of the section 19, which edge makes an angle with the main planes of extension of
the section 19 and the plate 2a, 2b and which bears on the corresponding edges 22
on the adjacent heat exchanging plates 2a, 2b in the core of plates.
[0021] In a corresponding way each one of the heat exchanging plates 2a, 2b is made with
a flange like edge 23 running along the whole outer circumference of the plate which
edge makes an angle with the main plane of extension of the plate 2a, 2b and which
bears on the corresponding edges 23 on the adjacent heat exchanging plates 2a, 2b
in the core of plates.
[0022] On each other bearing heat exchanging plates 2a, 2b are joined along the said edges
23, around at least two of the said port holes 9, 10, 13, 14, around the trough-shaped
sections 19 along said edges 22 along at least the main part of the length of the
edges 22 as well as in a large number of those points upon the heat exchanging plates
2a, 2b where the respective corrugations bear on each other, within as well as outside
the trough-shaped sections 19. The core of plates is normally permanently joined by
soldering or brazing but any other known method for permanent joining, such us welding
or gluing, is thinkable.
[0023] Every other heat exchanging plate 2a in the core of plates is of a first kind, see
figure 4, and the remaining heat exchanging plates 2b in the core of plates are of
a second kind, see figure 5. The heat exchanging plates 2a, 2b are placed next to
each other as they appear in the figures 4 and 5 without any mutual turning or overturning.
[0024] The way of the heat exchanging fluids through the heat exchanger will now be more
closely described. The said first fluid, in the present case hot water, enters through
the said connection/inlet 5 and flows through said port hole 9 and port channel 11
further out into the said first set of plate interspaces 17. On its way in each one
of the plate interspaces 17 the first fluid passes on both sides of the said trough-shaped
section 19 without being able to enter and fill up the space between adjacent trough-shaped
sections 19 since each one of the trough-shaped sections 19 is made with the said
flangelike edge 22 bearing on and being fluidum tightly joined with the corresponding
edge 22 on the adjacent plate 2 in the plate interspace along the hole length of the
edges 22. The first fluid leaves each one of the plate interspaces 17 through the
said porthole 14, the said port channel and the said connection/outlet 7.
[0025] The said second fluid, in the present case tap water to be heated, enters through
the said connection/inlet 6 and flows through the said port hole 13 and port channel
further on out into the said second set of plate interspaces 18. On its way in each
one of the plate interspaces 18 the second fluid flows first in a first passage situated
alongside with and between the said trough-shaped section 19 on one hand and the said
outer edge 23 on a first long side of the plates 2a, 2b on the other hand whereafter
the second fluid due to first irregularities 24a, 24b present in the pressing patterns
of the plates 2a, 2b in a first end of the trough-shaped section 19, is allowed to
enter and flow through the space between adjacent trough-shaped sections 19 and after
that, due to in the same way in the pressing patterns of the plates 2a, 2b present
second irregularities 25a, 25b in a second end of the trough-shaped section 19, once
again leave the space between adjacent trough-shaped sections 19 and continue in a
second passage situated alongside with and between the said trough-shaped section
19 on one hand and the said outer edge 23 on a second long side of the plates 2a,
2b on the other hand. The second fluid leaves each one of the plate interspaces 18
through the said port hole 10, said port channel 12 and said connection/outlet 8.
[0026] The said irregularities 24a, 25a on each one of the said heat exchanging plates 2a
of the first kind as well as the said irregularities 24b, 25b on each one of the said
heat exchanging plates 2b of the second kind have such a form that, for each one the
said heat exchanging plates 2a of the first kind, the said edge 22 around the said
trough-shaped section 19 in the said second plate interspace 18 cannot bear on and
thus after joining cannot seal against the corresponding edge 22 around the hole circumference
of the said trough-shaped section 19 on the adjacent plate 2b, see figure 6 where
only eight plates 2a, 2b are shown, but just along two continuous parts of the circumference
which parts however together constitute the main part of the circumference, i.e. more
than half the circumference. Two local passages are thus present for the said second
fluid to and from a second trough space respectively which trough space is limited
by the said trough-shaped sections 19 with the said intermediate edges 22 for adjacent
heat exchanging plates 2a, 2b in each one of the said second plate interspaces 18.
[0027] Each one the said local passages has a certain extension along the respective said
edge 22 whereby a first passage by the said first irregularities 24a, 24b extends
from a fold 27 to a fold 28 in the edge 22 and a second passage by the said second
irregularities 25a, 25b extends from a fold 29 to a fold 30 in the edge 22, see figure
4. The passages are distinguished by a more flattened flank angel than the rest of
the said edge 22, i.e. the said edge 22 outside the passages on each one of the plates
2a, 2b makes a larger angle with the plane of the plate than the corresponding section
edge does in the area for any one of the said local passages.
[0028] When the said second fluid flows in the mentioned second trough space the flow is
in a direction which is mainly contrary to the flow direction outside the mentioned
second trough space in the same plate interspace. The said trough hole 21 means that
the mentioned second trough space is also in fluid communication with a first trough
space which is delimited by the said trough-shaped sections 19 with the said intermediate
edges 22 for adjacent heat exchanging plates 2a, 2b in each one of the said first
plate interspaces 17 in the core of plates. Since all the trough-shaped sections 19
in the core of plates, except those that are present on plates 2a, 2b which are closest
to end plates or which constitute end plates themselves in the core of plates, show
the said through holes 21, all the trough spaces between plates 2a, 2b are in fluid
communication with each other.
[0029] The heat exchanger described here functions in a relatively normal way in continuous
operation. The advantages appear when after an interruption in the need for hot water
there is again a need for hot tap water. If, during the standstill period, i.e. when
no tapping of hot water occurs, hot water is still intermittently provided to the
primary side the water volume which is housed within the mentioned trough spaces is
held warm. This heated water volume will almost instantly come out from the heat exchanger
when tapping is again started and the volume is so adapted that the heat exchanger
reaches continuous operational performance before the water which is stored in advance
is used up.
[0030] Compared to prior art the construction shows the definitive advantaged that the present
trough-shaped sections 19, in spite of the holes 21, are continuous, i.e. the sections
may be said to be equipped with bottoms of a certain form which to a high degree contributes
to the strength of the plates and the core of plates. For this reason a thinner material
may be used in the plates with the same demand for strength and stability than had
otherwise been the case. The bottoms also contribute to an excellent heat transfer
into or out from the mentioned trough spaces, which are sealed off against all fluids
except, in the present case, tap water to be heated.
[0031] The plates are often made of steel plate with a thickness of 0,20-0,35 mm but also
other materials may be used such as for example titanium. The heat exchanger plates
2a, 2b are often thin and the end plates 3, 4 are thick but also other modes of execution
may exist. For example it is possible to think of the end plates 3, 4 not being thick
and not looking like those in the figures but instead being of an appearance totally
or partly in accordance with the present heat exchanging plates 2a, 2b but with the
difference that port holes only are present where the mounting of connections are
desired. It is also possible to use end plates 3, 4 of different designs in different
ends of the present core of plates or even several end plates 3, 4 of the same appearance
or different appearances in each one of the ends of the present core of plates. In
an alternative mode of execution at least one end plate may be planar and totally
without connections in order to make connections via O-rings possible to a finished
collection of coupling components or alike, a so called block.
[0032] The corrugations 20 and the holes 21 may be varied in number as well as in size and
form. When brazing the core of plates together copper braze, nickel braze or any other
known brazes may be used. When using the plate heat exchanger one or several of the
fluids may be another fluid than water. For example it is possible to think of heat
exchange between oil and water.
[0033] The invention is not restricted to the forms of execution shown here but may be varied
in accordance with the following patent claims.
1. Plate heat exchanger for at least two heat exchanging fluids which heat exchanger
is permanently joined and comprises at least one core of plates with a plurality of
heat exchanging plates (2a, 2b) and at least two end plates (3, 4), the heat exchanging
plates between each other creating plate interspaces and by which
each one of the heat exchanging plates (2a, 2b) is provided with one or several corrugations
vertically extending within an area bounded by two at a distance to each other situated
parallel first and second planes respectively which both are mainly in parallel with
all the heat exchanging plates (2a, 2b) as well as the end plates (3, 4) of the plate
heat exchanger,
each one of the heat exchanging plates (2a, 2b) is provided with at least four port
holes (9, 10, 13, 14,) being parts of an inlet channel (11) and an outlet channel
(12) through the core of plates for each one of the fluids,
at least one of the end plates (3, 4) has a plurality of port holes each one communicating
with one of the inlet channels (11) or one of the outlet channels (12) and
the inlet channels (11) and the outlet channel (12) for a first and a second fluid
respectively are in fluid communication with a first (17) and a second (18) set of
plate interspaces respectively,
characterized in that
each one of at least two of the said heat exchanging plates (2a, 2b) situated next
to each other in the present core of plates is provided with at least one trough-shaped
section (19) which
each one in cooperation with the respective adjacent heat exchanging plate (2a, 2b)
creates a space sealed towards all fluids except the said second fluid and
each one constitutes a part of the respective heat exchanging plate (2a, 2b) in such
a way that the said part lacks port holes (9, 10, 13, 14) and
each one is created with a flange like edge (22) extending around the hole periphery
of the trough-shaped section (19) and which makes an angel with the different main
planes of extension of the section (19) and the heat exchanging plate (2a, 2b) and
which, along at least the larger part of its length, bears on the present corresponding
edges (22) on the adjacent heat exchanging plates (2a, 2b).
2. Plate heat exchanger according to claim 1 at which each one of a plurality of the
said heat exchanging plates (2a, 2b) is provided with at least one trough-shaped section
(19) which in cooperation with the respective adjacent heat exchanging plate (2a,
2b) forms a space sealed towards all the fluids except the said second fluid.
3. Plate heat exchanger according to any of the preceding claims at which the heat exchanging
plates (2a, 2b) have outer edges of a similar design and on each other bearing heat
exchanging plates (2a, 2b) are brazed together in their outer edges, around at least
two port holes (9, 10, 13, 14), around the present trough-shaped sections (19) along
the said edges (22) along at least the major part of the length of the edges (22)
as well as in a large number of those points upon the heat exchanging plates (2a,
2b) where the respective corrugations bear on each other.
4. Plate heat exchanger according to any of the preceding claims at which the heat exchanging
plates (2a, 2b) are joined together by soldering or brazing.
5. Plate heat exchanger according to any of the preceding claims at which each one of
the heat exchanging plates (2a, 2b) is created with a flange- like edge (23) running
along the hole circumference of the plate which edge makes an angel with the main
plain of extension of the plate and which bears on the corresponding edges (23) on
the adjacent heat exchanging plates (2a, 2b) in the present core of plates.
6. Plate heat exchanger according to any of the preceding claims at which at least one
of the said trough-shaped sections (19) is provided with at least one through hole
(21)
7. Plate heat exchanger according to any of preceding claims at which each one of a plurality
of the said trough-shaped sections (19) is provided with at least one through hole
(21 ).
8. Plate heat exchanger according to any of the preceding claims at which each one of
a plurality of the said trough-shaped sections (19) is provided with at least two
through holes (21), the holes being of different diameters.
9. Plate heat exchanger according to any of the preceding claims at which at least one
of the said trough-shaped sections (19) is provided with at least one corrugation
vertically extending within an area bounded by two at a distance to each other situated
parallel third and fourth planes respectively which both are mainly in parallel with
all the trough-shaped sections (19) and heat exchanging plates (2a, 2b) as well as
the end plates (3, 4) of the plate heat exchanger.
1. Plattenwärmetauscher für mindestens zwei Wärmetauschfluide, wobei der Wärmetauscher
dauerhaft verbunden ist und mindestens einen Kern von Platten mit einer Mehrzahl von
Wärmetauschplatten (2a, 2b) umfaßt sowie mindestens zwei Endplatten (3, 4), wobei
die Wärmetauschplatten zwischen sich Plattenzwischenräume begrenzen, und wobei
jede der Wärmetauschplatten (2a, 2b) mit einer oder mehreren Wellen versehen ist,
die sich vertikal innerhalb eines Bereiches erstrecken, der von zwei voneinander beabstandeten
parallelen ersten bzw. zweiten Ebenen begrenzt wird, die beide hauptsächlich parallel
zu allen Wärmetauschplatten (2a, 2b) wie auch zu den Endplatten (3, 4) des Plattenwärmetauschers
verlaufen,
jede der Wärmetauschplatten (2a, 2b) mit mindestens vier Durchgangslöchern (9, 10,
13, 14) versehen ist, die Teile eines Einlaßkanals (11) und eines Auslaßkanals (12)
durch den Kern der Platten für jedes der Fluide bilden,
mindestens eine der Endplatten (3, 4) eine Mehrzahl von Durchgangslöchern aufweist,
von denen jedes mit einem der Einlaßkanäle (11) oder einem der Auslaßkanäle (12) in
Verbindung steht, und
die Einlaßkanäle (11) und die Auslaßkanäle (12) für ein erstes bzw. ein zweites Fluid
in Strömungsverbindung mit einem ersten (17) bzw. einem zweiten (18) Satz von Plattenzwischenräumen
stehen,
dadurch gekennzeichnet, dass
jede von mindestens zwei der Wärmetauschplatten (2a, 2b), die im vorhandenen Kern
von Platten nebeneinander liegen, mit mindestens einem trogförmigen Abschnitt (19)
versehen ist, der
jeweils im Zusammenwirken mit der jeweiligen benachbarten Wärmetauschplatte (2a, 2b)
einen abgedichteten Raum zu allen Fluiden außer dem zweiten Fluid kreiert, und
jeweils auf eine solche Weise einen Teil der jeweiligen Wärmetauschplatte (2a, 2b)
bildet, dass dieser Teil keine Durchgangslöcher (9, 10, 13, 14) aufweist, und
jeweils mit einer flanschartigen Kante (22) versehen ist, die sich um den gesamten
Umfang des trogförmigen Abschnittes (19) herum erstreckt und einen Winkel mit den
verschiedenen Hauptausdehnungsebenen des Abschnittes (19) und der Wärmetauschplatte
(2a, 2b) bildet und mindestens entlang des größeren Teils seiner Länge auf den vorhandenen
entsprechenden Kanten (22) an den benachbarten Wärmetauschplatten (2a, 2b) lagert.
2. Plattenwärmetauscher nach Anspruch 1, wobei jede einer Mehrzahl der Wärmetauschplatten
(2a, 2b) mit mindestens einem trogförmigen Abschnitt (19) versehen ist, der im Zusammenwirken
mit der jeweiligen benachbarten Wärmetauschplatte (2a, 2b) einen abgedichteten Raum
zu allen Fluiden außer dem zweiten Fluid bildet.
3. Plattenwärmetauscher nach einem der vorangegangenen Ansprüche, wobei die Wärmetauschplatten
(2a, 2b) Außenkanten gleichartiger Ausgestaltung haben und wobei aufeinanderlagernde
Wärmetauschplatten (2a, 2b) an ihren Außenkanten miteinander verlötet sind sowie um
mindestens zwei Durchgangslöcher (9, 10, 13, 14) herum, um die vorhandenen trogförmigen
Abschnitte (19) entlang der Kanten (22) mindestens entlang des größten Teils der Länge
der Kanten (22) und in einer größeren Anzahl solcher Punkte auf den Wärmetauschplatten
(2a, 2b), an denen die jeweiligen Wellen aufeinander lagern.
4. Plattenwärmetauscher nach einem der vorangegangenen Ansprüche, wobei die Wärmetauschplatten
(2a, 2b) durch Löten oder Hartlöten miteinander verbunden sind.
5. Plattenwärmetauscher nach einem der vorangegangenen Ansprüche, wobei jede der Wärmetauschplatten
(2a, 2b) mit einer flanschartigen Kante (23) versehen ist, die entlang des gesamten
Umfangs der Platte verläuft und einen Winkel mit der Hauptausdehnungsebene der Platte
bildet und auf den entsprechenden Kanten (23) an den benachbarten Wärmetauschplatten
(2a, 2b) im vorhandenen Kern von Platten lagert.
6. Plattenwärmetauscher nach einem der vorangegangenen Ansprüche, wobei mindestens einer
der trogförmigen Abschnitte (19) mit mindestens einem Durchgangsloch (21) versehen
ist.
7. Plattenwärmetauscher nach einem der vorangegangenen Ansprüche, wobei jeder einer Mehrzahl
der trogförmigen Abschnitte (19) mit mindestens einem Durchgangsloch (21) versehen
ist.
8. Plattenwärmetauscher nach einem-der vorangegangenen Ansprüche, wobei jeder einer Mehrzahl
der trogförmigen Abschnitte (19) mit mindestens zwei Durchgangslöchern (21) versehen
ist, wobei die Löcher unterschiedliche Durchmesser haben.
9. Plattenwärmetauscher nach einem der vorangegangenen Ansprüche, wobei mindestens einer
der trogförmigen Abschnitte (19) mit mindestens einer Welle versehen ist, die sich
vertikal innerhalb eines Bereiches erstreckt, der von zwei voneinander beabstandeten
parallelen dritten bzw. vierten Ebenen begrenzt wird, die beide hauptsächlich parallel
zu allen trogförmigen Abschnitten (19) und den Wärmetauschplatten (2a, 2b) wie auch
den Endplatten (3, 4) des Wärmeplattentauschers verlaufen.
1. Echangeur de chaleur à plaques pour au moins deux fluides échangeurs de chaleur, lequel
échangeur de chaleur est relié en permanence et comprend au moins un noyau de plaques
avec une pluralité de plaques d'échange de chaleur (2a, 2b) et au moins deux plaques
d'extrémité (3, 4), les plaques d'échange de chaleur entre elles créant des espaces
intermédiaires de plaques et par lequel
chacune des plaques d'échange de chaleur (2a, 2b) est munie d'au moins un ou de
plusieurs ondulations s'étendant verticalement à l'intérieur d'une zone délimitée
par deux, à une distance l'une de l'autre située parallèlement à des premier et second
plans, respectivement, qui tous deux sont principalement en parallèle avec toutes
les plaques d'échange de chaleur (2a, 2b) ainsi que les plaques d'extrémité (3, 4)
de l'échangeur de chaleur à plaques,
chacune des plaques d'échange de chaleur (2a, 2b) est munie d'au moins quatre trous
d'accès (9, 10, 13, 14) faisant partie d'un canal d'entrée (11) et un canal de sortie
(12) à travers le noyau de plaques pour chacun des fluides,
au moins l'une des plaques d'extrémité (3, 4) présente une pluralité de trous d'accès,
chacun communiquant avec l'un des canaux d'entrée (11) ou l'un des canaux de sortie
(12) et
les canaux d'entrée (11) et le canal de sortie (12) pour un premier et un second
fluide, respectivement, sont en communication de fluide avec un premier (17) et un
second (18) ensemble d'espaces intermédiaires de plaques, respectivement,
caractérisé en ce que
chacune d'au moins deux desdites plaques d'échange de chaleur (2a, 2b) situées
à proximité l'une de l'autre dans le présent noyau de plaques est munie d'au moins
une section en profil de godet (19), laquelle,
chacune en coopération avec la plaque d'échange de chaleur contiguë respective
(2a, 2b) crée un espace hermétique en direction de tous les fluides sauf ledit second
fluide et
chacune constitue une partie de la plaque d'échange de chaleur respective (2a,
2b), de telle sorte que ladite partie ne comporte pas de trous d'accès (9, 10, 13,
14) et
chacune est créée avec un bord de type bride (22) s'étendant autour de la périphérie
du trou de la section en forme de godet (19) et qui forme un angle avec les différents
plans principaux d'extension de la section (19) et la plaque d'échange de chaleur
(2a, 2b) et qui, le long d'au moins la plus grande partie de sa longueur, s'appuie
sur les bords correspondants présents (22) sur les plaques d'échange de chaleur contiguës
(2a, 2b).
2. Echangeur de chaleur à plaques selon la revendication 1, pour lequel l'une d'une pluralité
desdites plaques d'échange de chaleur (2a, 2b) est munie d'au moins une section en
forme de godet (19) qui, en coopération avec la plaque d'échange de chaleur contiguë
respective (2a, 2b), forme un espace hermétique en direction de tous les fluides sauf
le second fluide.
3. Echangeur de chaleur à plaques selon l'une quelconque des revendications précédentes,
dans lequel les plaques d'échange de chaleur (2a, 2b) présentent des bords extérieurs
d'une conception similaire, et sur les plaques d'échange de chaleur superposées (2a,
2b) sont brasées ensemble dans leurs bords extérieurs autour d'au moins deux trous
d'accès (9, 10, 13, 14), autour des présentes sections en forme de godets (19) le
long desdits bords (22), le long d'au moins la plus grande partie de la longueur des
bords (22), ainsi que dans un grand nombre de ces points sur les plaques d'échange
de chaleur (2a, 2b) où les ondulations respectives portent l'une sur l'autre.
4. Echangeur de chaleur à plaques selon l'une quelconque des revendications précédentes,
dans lequel les plaques d'échange de chaleur (2a, 2b) sont raccordées ensemble par
soudage ou brasage.
5. Echangeur de chaleur à plaques selon l'une quelconque des revendications précédentes,
dans lequel chacune des plaques d'échange de chaleur (2a, 2b) est créée avec un bord
en forme de bride (23) s'étendant le long de toute la circonférence de la plaque,
lequel bord forme un angle avec l'étendue principale de la plaque et qui porte sur
les bords correspondants (23) sur les plaques d'échange de chaleur contiguës (2a,
2b) dans le présent noyau de plaques.
6. Echangeur de chaleur à plaques selon l'une quelconque des revendications précédentes,
dans lequel au moins l'une desdites sections en forme de godets (19) est munie d'au
moins un trou traversant (21).
7. Echangeur de chaleur à plaques selon l'une quelconque des revendications précédentes,
dans lequel chacune d'une pluralité desdites sections en forme de godets (19) est
munie d'au moins un trou traversant (21).
8. Echangeur de chaleur à plaques selon l'une quelconque des revendications précédentes,
dans lequel chacune d'une pluralité desdites sections en forme de godets (19) est
munie d'au moins deux trous traversants (21), les trous étant de diamètres différents.
9. Echangeur de chaleur à plaques selon l'une quelconque des revendications précédentes,
dans lequel au moins l'une desdites sections en forme de godets (19) est munie d'au
moins une ondulation s'étendant verticalement à l'intérieur d'une zone délimitée par
deux troisième et quatrième plans situés à une certaine distance entre eux et de façon
parallèle respectivement, dans lequel les deux sont principalement parallèles avec
toutes les sections en forme de godets (19) et les plaques d'échange de chaleur (2a,
2b), ainsi que les plaques d'extrémité (3, 4) de l'échangeur de chaleur à plaques.