[0001] This application claims the priority of Chinese patent application no. 201410081940.8 with invention title "Heat exchange plate for plate-type heat exchanger and plate-type
heat exchanger provided with the heat exchange plate", submitted on March 7,
2014, the entire contents of which are incorporated herein by reference.
Technical field
[0002] The present invention relates to a heat exchanger, in particular a heat exchange
plate for a plate-type heat exchanger and a plate-type heat exchanger provided with
the heat exchange plate.
Background art
[0003] In the prior art, plate-type heat exchangers have low strength because the tops of
elongated ridges on the heat exchange plates thereof are narrow and the welding point
structure leads to concentration of stress.
Content of the invention
[0004] An object of the present invention is to provide a heat exchange plate for a plate-type
heat exchanger, and a plate-type heat exchanger having the heat exchange plate, and
to increase the strength of the heat exchange plate of the plate-type heat exchanger
by increasing the size of welding parts or connecting parts.
[0005] Another object of the present invention is to provide a heat exchange plate for a
plate-type heat exchanger, and a plate-type heat exchanger having the heat exchange
plate, and to thereby improve the transverse distribution of fluid while increasing
the strength of the heat exchange plate of the plate-type heat exchanger.
[0006] According to one aspect of the present invention, the present invention provides
a heat exchange plate for a plate-type heat exchanger, the heat exchange plate comprising:
a heat exchange part; multiple protrusions which project at the heat exchange part
from a plate plane to at least one side of the plate plane, the multiple protrusions
being arranged along multiple lines; and transitional parts which are located between
adjacent protrusions arranged along one of the lines and project to the at least one
side of the plate plane; in a direction perpendicular to the line, the size of the
top of each protrusion is greater than the size of the top of the transitional part.
[0007] According to one aspect of the present invention, the distance from the top of the
protrusion to the plate plane is greater than or equal to the distance from the top
of the transitional part to the plate plane.
[0008] According to one aspect of the present invention, the top of the protrusion is substantially
flat.
[0009] According to one aspect of the present invention, when viewed in a direction perpendicular
to the line, the transitional part has a step between the top of the transitional
part and the plate plane.
[0010] According to one aspect of the present invention, when viewed in a direction facing
the plate plane, the multiple lines are arranged substantially in a V-shaped, W-shaped
or wave-shaped pattern.
[0011] According to one aspect of the present invention, the distance from the top of the
protrusion to the plate plane is greater than the distance from the top of the transitional
part to the plate plane, and the distance from the top of the protrusion to the top
of the transitional part is less than or equal to the distance from the top of the
transitional part to the plate plane.
[0012] According to one aspect of the present invention, amongst protrusions and transitional
parts arranged along one of the lines, the protrusions are connected via corresponding
transitional parts, and together with the transitional parts form an entire ridge.
[0013] According to one aspect of the present invention, the top of the protrusion is substantially
round.
[0014] According to one aspect of the present invention, amongst protrusions and transitional
parts arranged along one of the lines, the protrusions are connected via corresponding
transitional parts, and together with the transitional parts form an entire ridge;
ridges projecting to one side of the plate plane are arranged alternately with ridges
projecting to another side, which is opposite to said side, of the plate plane.
[0015] According to one aspect of the present invention, protrusions in a ridge projecting
to one side of the plate plane are staggered in the longitudinal direction of the
ridge with respect to protrusions in an adjacent ridge projecting to the other side
of the plate plane.
[0016] According to another aspect of the present invention, the present invention provides
a plate-type heat exchanger, comprising the heat exchange plate for a plate-type heat
exchanger as described above.
[0017] By increasing the size of welding parts or connecting parts, the strength of the
heat exchange plate of the plate-type heat exchanger is increased.
[0018] In addition, compared with heat exchangers with an inverted-V-shaped pattern, the
present invention increases the welding area, and at the same time alters the transition
between welding points and the bottom surface, to achieve the object of increasing
strength. Furthermore, compared with dimple plates, the present invention has a transitional
groove between two rows of welding points, to promote transverse fluid distribution.
According to the technical solution of the present invention, with regard to the transitional
part between two welding points, the distance between the top of the protrusion to
the plate plane is greater than the distance from the top of the transitional part
to the plate plane, and the pressure drop can be suitably reduced by suitably lowering
the height of the transitional part.
[0019] In addition, according to the technical solution of the present invention, the welding
parts or connecting parts are round, and two plates can be fully welded or connected,
whereas the welding parts or connecting parts of an inverted-V-shaped pattern are
diamond-shaped, which is not conducive to distribution of stress.
Description of the accompanying drawings
[0020]
Fig. 1 is a partial enlarged schematic perspective view of a heat exchange plate for
a plate-type heat exchanger according to a first embodiment of the present invention;
Fig. 2 is a partial enlarged schematic top view of a heat exchange plate for a plate-type
heat exchanger according to a first embodiment of the present invention;
Fig. 3 is a partial enlarged schematic sectional view along line AA in Fig. 2 of a
heat exchange plate for a plate-type heat exchanger according to a first embodiment
of the present invention;
Fig. 4 is a partial enlarged schematic sectional view along line BB in Fig. 2 of a
heat exchange plate for a plate-type heat exchanger according to a first embodiment
of the present invention;
Fig. 5 is a partial enlarged schematic perspective view of a heat exchange plate for
a plate-type heat exchanger according to a second embodiment of the present invention;
Fig. 6 is a partial enlarged schematic top view of a heat exchange plate for a plate-type
heat exchanger according to a second embodiment of the present invention;
Fig. 7 is a partial enlarged schematic sectional view along line AA in Fig. 6 of a
heat exchange plate for a plate-type heat exchanger according to a second embodiment
of the present invention;
Fig. 8 is a partial enlarged schematic sectional view along line BB in Fig. 6 of a
heat exchange plate for a plate-type heat exchanger according to a second embodiment
of the present invention;
Fig. 9 is a partial enlarged schematic perspective view of a heat exchange plate for
a plate-type heat exchanger according to a third embodiment of the present invention;
Fig. 10 is a partial enlarged schematic top view of a heat exchange plate for a plate-type
heat exchanger according to a third embodiment of the present invention;
Fig. 11 is a partial enlarged schematic sectional view along line AA in Fig. 10 of
a heat exchange plate for a plate-type heat exchanger according to a third embodiment
of the present invention;
Fig. 12 is a partial enlarged schematic sectional view along line BB in Fig. 10 of
a heat exchange plate for a plate-type heat exchanger according to a third embodiment
of the present invention; and
Fig. 13 is a partial enlarged schematic perspective view of a heat exchange plate
for a plate-type heat exchanger according to a fourth embodiment of the present invention.
Particular embodiments
[0021] The present invention is explained further below in conjunction with the accompanying
drawings and particular embodiments.
[0022] A plate-type heat exchanger according to an embodiment of the present invention comprises:
end plates and heat exchange plates which form first fluid heat exchange channels
and second fluid heat exchange channels. The end plates are disposed on outer sides
of the heat exchange plates. The plate-type heat exchanger also comprises: a fluid
inlet and a fluid outlet. The heat exchange plates are stacked together, thus first
fluid heat exchange channels and second fluid heat exchange channels are formed alternately
in a stacking direction. Only one heat exchange plate is provided between at least
two adjacent fluid heat exchange channels. The plate-type heat exchanger may be any
known plate-type heat exchanger.
[0023] Heat exchange plates according to the embodiments of the present invention are described
in detail below.
Embodiment 1
[0024] As Figs. 1 to 4 show, a heat exchange plate for a plate-type heat exchanger according
to an embodiment of the present invention comprises a heat exchange part 10 which
forms a heat exchange part of a fluid of the plate-type heat exchanger. The heat exchange
plate also comprises multiple protrusions 14 which project at the heat exchange part
10 from a plate plane 12 to one side of the plate plane 12; the multiple protrusions
14 are arranged along multiple lines, and a portion of the multiple protrusions 14
can serve as welding parts or connecting parts for welding or connection of the heat
exchange plate to an adjacent heat exchange plate. When viewed in a direction facing
the plate plane, the multiple lines are arranged substantially in a V-shaped, W-shaped
or wave-shaped pattern, or are arranged in another suitable pattern. The plate plane
12 is a plane in which the heat exchange plate lies before being stamped.
[0025] As Figs. 1 to 4 show, the heat exchange plate also comprises transitional parts 16
which are located between adjacent protrusions 14 and arranged along one of the lines
and project to said side of the plate plane 12; in a direction perpendicular to the
line, the size of the top of each protrusion 14 is greater than the size of the top
of the transitional part 16. Amongst protrusions 14 and transitional parts 16 arranged
along one of the lines, the protrusions 14 are connected via corresponding transitional
parts 16, and together with the transitional parts form an entire ridge. Protrusions
in one ridge can be staggered in the longitudinal direction of the ridge with respect
to protrusions in an adjacent ridge. By increasing the size of the welding parts or
connecting parts, the strength of the heat exchange plate of the plate-type heat exchanger
is increased.
[0026] As Fig. 4 shows, the distance E from the top of the protrusion 14 to the plate plane
12 is greater than or equal to the distance e from the top of the transitional part
16 to the plate plane 12. The top of the protrusion 14 may be substantially flat.
It may for example be round.
[0027] As Fig. 4 shows, according to an embodiment of the present invention, the distance
E from the top of the protrusion 14 to the plate plane 12 is greater than the distance
e from the top of the transitional part 16 to the plate plane 12, and the distance
E-e from the top of the protrusion 14 to the top of the transitional part 16 is less
than or equal to the distance E from the top of the transitional part to the plate
plane 12.
Embodiment 2
[0028] Embodiment 2 according to the present invention differs from the embodiment above
in that the transitional part 16 is provided with a step part.
[0029] As Figs. 5 to 8 show, when viewed in a direction perpendicular to the line, the transitional
part 16 has steps 18 between the top of the transitional part and the plate plane
12. The steps 18 are disposed on two sides of a plane of symmetry of the transitional
part 16, such that the cross-section of the transitional part 16 is substantially
"

"-shaped.
[0030] As Fig. 7 shows, the distance E from the top of the protrusion 14 to the plate plane
12 is greater than or equal to the distance e2 from the top of the transitional part
16 to the plate plane 12. The distance e1 from the top of the step 18 to the plate
plane 12 is less than the distance e2 from the top of the transitional part 16 to
the plate plane 12 and the distance E from the top of the protrusion 14 to the plate
plane 12.
[0031] The use of steps 18 enables a further improvement in heat exchange performance.
Embodiment 3
[0032] Embodiment 3 according to the present invention differs from embodiment 2 above in
that the top of the transitional part and the top of the protrusion 14 are substantially
in the same plane.
[0033] As Figs. 9 to 12 show, the distance E from the top of the protrusion 14 to the plate
plane 12 is equal to the distance e2 from the top of the transitional part 16 to the
plate plane 12. The distance e1 from the top of the step 18 to the plate plane 12
is less than the distance e2 from the top of the transitional part 16 to the plate
plane 12 and the distance E from the top of the protrusion 14 to the plate plane 12.
Embodiment 4
[0034] Embodiment 4 according to the present invention differs from the embodiments above
in that: amongst protrusions 14 and transitional parts 16 arranged along one of the
lines, the protrusions 14 are connected via corresponding transitional parts 16, and
together with the transitional parts 16 form an entire ridge; ridges projecting to
one side of the plate plane are arranged alternately with ridges projecting to another
side, which is opposite to said side, of the plate plane. Ridges projecting to one
side of the plate plane are arranged alternately with ridges projecting to another
side, which is opposite to said side, of the plate plane. Protrusions 14 in a ridge
projecting to one side of the plate plane may be staggered in the longitudinal direction
of the ridge with respect to protrusions 14 in an adjacent ridge projecting to the
other side of the plate plane.
[0035] It must be explained that the technical features and solutions in embodiments 1 -
3 above may be applied to embodiment 4.
[0036] Thus, the present invention provides a heat exchange plate for a plate-type heat
exchanger, the heat exchange plate comprising: a heat exchange part; multiple protrusions
which project at the heat exchange part from a plate plane to at least one side (e.g.
one side or two opposite sides) of the plate plane, the multiple protrusions being
arranged along multiple lines; and transitional parts which are located between adjacent
protrusions arranged along one of the lines and project to the at least one side of
the plate plane; in a direction perpendicular to the line, the size of the top of
each protrusion is greater than the size of the top of the transitional part.
[0037] In the present invention, a V-shaped, W-shaped or wave-shaped pattern is employed,
the distance from the top of the protrusion to the plate plane is greater than or
equal to the distance from the top of the transitional part to the plate plane, and
the distance from the top of the protrusion to the top of the transitional part is
less than or equal to the distance from the top of the transitional part to the plate
plane. Thus the strength of the heat exchange plate is increased and the fluid diffusion
capability is improved, thereby saving material costs and improving the heat exchange
performance.
[0038] In addition, by employing larger welding parts or connecting parts, the strength
of the heat exchange plate is increased.
1. A heat exchange plate for a plate-type heat exchanger, the heat exchange plate comprising:
a heat exchange part;
multiple protrusions which project at the heat exchange part from a plate plane to
at least one side of the plate plane, the multiple protrusions being arranged along
multiple lines; and
transitional parts which are located between adjacent protrusions arranged along one
of the lines and project to the at least one side of the plate plane; in a direction
perpendicular to the line, the size of the top of each protrusion is greater than
the size of the top of the transitional part.
2. The heat exchange plate for a plate-type heat exchanger as claimed in claim 1, wherein
the distance from the top of the protrusion to the plate plane is greater than or
equal to the distance from the top of the transitional part to the plate plane.
3. The heat exchange plate for a plate-type heat exchanger as claimed in claim 1 or 2,
wherein
the top of the protrusion is substantially flat.
4. The heat exchange plate for a plate-type heat exchanger as claimed in claim 1 or 2,
wherein
when viewed in a direction perpendicular to the line, the transitional part has a
step between the top of the transitional part and the plate plane.
5. The heat exchange plate for a plate-type heat exchanger as claimed in claim 1 or 2,
wherein
when viewed in a direction facing the plate plane, the multiple lines are arranged
substantially in a V-shaped, W-shaped or wave-shaped pattern.
6. The heat exchange plate for a plate-type heat exchanger as claimed in claim 1, wherein
the distance from the top of the protrusion to the plate plane is greater than the
distance from the top of the transitional part to the plate plane, and the distance
from the top of the protrusion to the top of the transitional part is less than or
equal to the distance from the top of the transitional part to the plate plane.
7. The heat exchange plate for a plate-type heat exchanger as claimed in claim 1, wherein
amongst protrusions and transitional parts arranged along one of the lines, the protrusions
are connected via corresponding transitional parts, and together with the transitional
parts form an entire ridge.
8. The heat exchange plate for a plate-type heat exchanger as claimed in claim 3, wherein
the top of the protrusion is substantially round.
9. The heat exchange plate for a plate-type heat exchanger as claimed in claim 1 or 2,
wherein
amongst protrusions and transitional parts arranged along one of the lines, the protrusions
are connected via corresponding transitional parts, and together with the transitional
parts form an entire ridge;
ridges projecting to one side of the plate plane are arranged alternately with ridges
projecting to another side, which is opposite to said side, of the plate plane.
10. The heat exchange plate for a plate-type heat exchanger as claimed in claim 9, wherein
protrusions in a ridge projecting to one side of the plate plane are staggered in
the longitudinal direction of the ridge with respect to protrusions in an adjacent
ridge projecting to the other side of the plate plane.
11. A plate-type heat exchanger, comprising:
the heat exchange plate for a plate-type heat exchanger as claimed in claim 1.