EP2772718B1 - Plate heat exchanger - Google Patents
Plate heat exchanger Download PDFInfo
- Publication number
- EP2772718B1 EP2772718B1 EP12843569.0A EP12843569A EP2772718B1 EP 2772718 B1 EP2772718 B1 EP 2772718B1 EP 12843569 A EP12843569 A EP 12843569A EP 2772718 B1 EP2772718 B1 EP 2772718B1
- Authority
- EP
- European Patent Office
- Prior art keywords
- communicating
- gasket member
- path
- heat transfer
- gasket
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
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- 239000012530 fluid Substances 0.000 claims description 90
- 239000007789 gas Substances 0.000 claims description 15
- 239000011261 inert gas Substances 0.000 claims description 7
- 238000010525 oxidative degradation reaction Methods 0.000 description 12
- 230000015556 catabolic process Effects 0.000 description 7
- 238000006731 degradation reaction Methods 0.000 description 7
- QVGXLLKOCUKJST-UHFFFAOYSA-N atomic oxygen Chemical compound [O] QVGXLLKOCUKJST-UHFFFAOYSA-N 0.000 description 5
- 229910052760 oxygen Inorganic materials 0.000 description 5
- 239000001301 oxygen Substances 0.000 description 5
- 238000006243 chemical reaction Methods 0.000 description 4
- 239000000853 adhesive Substances 0.000 description 3
- 230000001070 adhesive effect Effects 0.000 description 3
- 239000007788 liquid Substances 0.000 description 3
- 229920000642 polymer Polymers 0.000 description 3
- IJGRMHOSHXDMSA-UHFFFAOYSA-N Atomic nitrogen Chemical compound N#N IJGRMHOSHXDMSA-UHFFFAOYSA-N 0.000 description 2
- 230000032683 aging Effects 0.000 description 2
- 238000005219 brazing Methods 0.000 description 2
- 230000006835 compression Effects 0.000 description 2
- 238000007906 compression Methods 0.000 description 2
- 238000004132 cross linking Methods 0.000 description 2
- 238000005304 joining Methods 0.000 description 2
- 238000000034 method Methods 0.000 description 2
- 230000002093 peripheral effect Effects 0.000 description 2
- 150000002978 peroxides Chemical class 0.000 description 2
- 238000003466 welding Methods 0.000 description 2
- 230000002401 inhibitory effect Effects 0.000 description 1
- 230000007774 longterm Effects 0.000 description 1
- 229910052757 nitrogen Inorganic materials 0.000 description 1
- 238000007789 sealing Methods 0.000 description 1
- 239000000126 substance Substances 0.000 description 1
- 238000011144 upstream manufacturing Methods 0.000 description 1
Images
Classifications
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F28—HEAT EXCHANGE IN GENERAL
- F28D—HEAT-EXCHANGE APPARATUS, NOT PROVIDED FOR IN ANOTHER SUBCLASS, IN WHICH THE HEAT-EXCHANGE MEDIA DO NOT COME INTO DIRECT CONTACT
- F28D9/00—Heat-exchange apparatus having stationary plate-like or laminated conduit assemblies for both heat-exchange media, the media being in contact with different sides of a conduit wall
- F28D9/0062—Heat-exchange apparatus having stationary plate-like or laminated conduit assemblies for both heat-exchange media, the media being in contact with different sides of a conduit wall the conduits for one heat-exchange medium being formed by spaced plates with inserted elements
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F28—HEAT EXCHANGE IN GENERAL
- F28F—DETAILS OF HEAT-EXCHANGE AND HEAT-TRANSFER APPARATUS, OF GENERAL APPLICATION
- F28F3/00—Plate-like or laminated elements; Assemblies of plate-like or laminated elements
- F28F3/08—Elements constructed for building-up into stacks, e.g. capable of being taken apart for cleaning
- F28F3/10—Arrangements for sealing the margins
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F28—HEAT EXCHANGE IN GENERAL
- F28D—HEAT-EXCHANGE APPARATUS, NOT PROVIDED FOR IN ANOTHER SUBCLASS, IN WHICH THE HEAT-EXCHANGE MEDIA DO NOT COME INTO DIRECT CONTACT
- F28D9/00—Heat-exchange apparatus having stationary plate-like or laminated conduit assemblies for both heat-exchange media, the media being in contact with different sides of a conduit wall
- F28D9/0031—Heat-exchange apparatus having stationary plate-like or laminated conduit assemblies for both heat-exchange media, the media being in contact with different sides of a conduit wall the conduits for one heat-exchange medium being formed by paired plates touching each other
- F28D9/0043—Heat-exchange apparatus having stationary plate-like or laminated conduit assemblies for both heat-exchange media, the media being in contact with different sides of a conduit wall the conduits for one heat-exchange medium being formed by paired plates touching each other the plates having openings therein for circulation of at least one heat-exchange medium from one conduit to another
- F28D9/005—Heat-exchange apparatus having stationary plate-like or laminated conduit assemblies for both heat-exchange media, the media being in contact with different sides of a conduit wall the conduits for one heat-exchange medium being formed by paired plates touching each other the plates having openings therein for circulation of at least one heat-exchange medium from one conduit to another the plates having openings therein for both heat-exchange media
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F28—HEAT EXCHANGE IN GENERAL
- F28F—DETAILS OF HEAT-EXCHANGE AND HEAT-TRANSFER APPARATUS, OF GENERAL APPLICATION
- F28F3/00—Plate-like or laminated elements; Assemblies of plate-like or laminated elements
- F28F3/08—Elements constructed for building-up into stacks, e.g. capable of being taken apart for cleaning
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F28—HEAT EXCHANGE IN GENERAL
- F28F—DETAILS OF HEAT-EXCHANGE AND HEAT-TRANSFER APPARATUS, OF GENERAL APPLICATION
- F28F3/00—Plate-like or laminated elements; Assemblies of plate-like or laminated elements
- F28F3/08—Elements constructed for building-up into stacks, e.g. capable of being taken apart for cleaning
- F28F3/083—Elements constructed for building-up into stacks, e.g. capable of being taken apart for cleaning capable of being taken apart
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F28—HEAT EXCHANGE IN GENERAL
- F28F—DETAILS OF HEAT-EXCHANGE AND HEAT-TRANSFER APPARATUS, OF GENERAL APPLICATION
- F28F2275/00—Fastening; Joining
- F28F2275/20—Fastening; Joining with threaded elements
- F28F2275/205—Fastening; Joining with threaded elements with of tie-rods
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F28—HEAT EXCHANGE IN GENERAL
- F28F—DETAILS OF HEAT-EXCHANGE AND HEAT-TRANSFER APPARATUS, OF GENERAL APPLICATION
- F28F3/00—Plate-like or laminated elements; Assemblies of plate-like or laminated elements
- F28F3/02—Elements or assemblies thereof with means for increasing heat-transfer area, e.g. with fins, with recesses, with corrugations
- F28F3/04—Elements or assemblies thereof with means for increasing heat-transfer area, e.g. with fins, with recesses, with corrugations the means being integral with the element
- F28F3/042—Elements or assemblies thereof with means for increasing heat-transfer area, e.g. with fins, with recesses, with corrugations the means being integral with the element in the form of local deformations of the element
Definitions
- the present invention relates to a plate heat exchanger for exchanging heat between a high-temperature fluid and a low-temperature fluid. More particularly, the present invention relates to a plate heat exchanger in which by stacking plural heat transfer plates and interposing a gasket between peripheries or the like of each adjacent ones of the heat transfer plates, a flow path adapted to pass a high-temperature fluid and a flow path adapted to pass a low-temperature fluid are formed alternately between each adjacent heat transfer plates.
- WO 2004/011868 A1 discloses a plate heat exchanger having the features in the preamble of claim 1.
- WO 2004/072570 A1 discloses a plate heat exchanger having the features in the preamble of claim 3.
- plural heat transfer plates 20 are stacked in an upright posture between a plate-shaped rectangular fixed frame 11 in an upright posture and a plate-shaped rectangular movable frame 12 in an upright posture as shown in FIG. 8 , a first flow path 1 and a second flow path 2 are formed alternately between the heat transfer plates 20 as shown in FIG. 9 , and a high-temperature fluid H is passed through the first flow path 1 while a low-temperature fluid C is passed through the second flow path 2, thereby exchanging heat between the high-temperature fluid H and low-temperature fluid C.
- Passage holes 11a to 11d serving as inlet ports and outlet ports for the fluids H and C are provided in four corners of the fixed frame 11, whereas no passage hole is provided in the movable frame 12.
- respective dedicated plates hereinafter referred to as a "D plate” and “E plate”
- Passage holes (not numbered) are provided in four corners of the D plate 31, and a gasket (hereinafter referred to as a "D gasket") 140 is interposed between the D plate 31 and the fixed frame 11, surrounding the passage holes. Note that no passage hole is provided in the E plate 32.
- passage holes 21 to 24 serving as inlet ports and outlet ports for the fluids H and C are provided in four corners of each of the heat transfer plates 20, a heat transfer portion (not numbered) is provided in an intermediate portion of the heat transfer plate 20, and a gasket 130 is interposed between each adjacent ones of the heat transfer plates 20, for example, such that the upper and lower left passage holes 21 and 22 are communicated with the heat transfer portion while the upper and lower right passage holes 23 and 24 are closed to the heat transfer portion, or vice versa.
- the gasket 130 is made up of a flow-path forming gasket 131 configured to surround a periphery (inner side of an outer peripheral edge) of each heat transfer plate 20 and communicating-path forming gaskets 132 configured to surround circumferences of the passage holes 21 to 24, where the flow-path forming gasket 131 and communicating-path forming gaskets 132 may be formed either separately or integrally (not shown).
- the upper and lower right communicating-path forming gaskets 132 surround the upper and lower right passage holes 23 and 24, thereby forming communicating paths 3 isolated from the upper and lower left passage holes 21 and 22 as well as from the first flow path 1, and the flow-path forming gasket 131 surrounds the upper and lower left passage holes 21 and 22 as well as the heat transfer portion, thereby forming the first flow path 1 adapted to pass the high-temperature fluid H.
- the upper and lower left communicating-path forming gaskets 132 surround the upper and lower left passage holes 21 and 22, thereby forming communicating paths 3 isolated from the upper and lower right passage holes 23 and 24 as well as from the second flow path 2, and the flow-path forming gasket 131 surrounds the upper and lower right passage holes 23 and 24 as well as the heat transfer portion, thereby forming the second flow path 2 adapted to pass the low-temperature fluid C therethrough.
- the high-temperature fluid H flows downward through the first flow path 1 from the upper left passage hole 21 and is discharged through the lower left passage hole 22 while the low-temperature fluid C flows upward through the second flow path 2 from the lower right passage hole 24 and is discharged through the upper right passage hole 23, thereby exchanging heat between the two fluids H and C.
- Patent Literature 1 and the like describe a joined plate heat exchanger in which plural cassette plates constructed by permanently joining peripheries or other portions of two heat transfer plates by laser welding, brazing, or the like are stacked in an upright posture and gaskets are interposed on peripheries of the cassette plates, thereby forming a first flow path or second flow path in the cassette plates and forming the second flow path or first flow path between the cassette plates.
- Patent Literature 2 describes a plate heat exchanger comprising a flow-path forming gasket and a communicating-path forming gasket which are integrated into a single gasket and interposed between heat transfer plates, in which part of the flow-path forming gasket and part of the communicating-path forming gasket are arranged side-by-side to provide double (two) gaskets in a border between a heat transfer portion and passage holes.
- the double gaskets are firmly fixed to the heat transfer plates without using an adhesive and in other part, the gasket is bonded to the heat transfer plates using an adhesive.
- the double gaskets are interposed between every other pair of the stacked heat transfer plates (alternately), thereby forming a flow path configured to communicate the heat transfer portion and passage holes without double gaskets.
- Those heat transfer plates which lack double gaskets are subject to deformation due to internal pressure, but since the double gaskets are not bonded to the heat transfer plates with an adhesive, pressure tightness of the plate heat exchanger is improved.
- the high-temperature fluid H flowing into the first flow path 1 flows through the communicating path 3 formed by the communicating-path forming gasket 132 which surrounds the passage hole 21. Since the communicating-path forming gasket 132 which forms the communicating path 3 through which the high-temperature fluid H flows has its inner side (wetted side) placed in contact with the high-temperature fluid H in a hot, humid environment as shown in FIG. 10 , thermal degradation such as hardening or softening proceeds with long-term use.
- main component of the communicating-path forming gasket 132 is polymer (RH). Consequently, when the communicating-path forming gasket 132 is heated by the high-temperature fluid H, the polymer reacts with oxygen (O 2 ) to generate alkyl radicals (R•). Since an outer side (non-wetted side) of the flow-path forming gasket 131 contacts the atmosphere, alkyl radicals (R•) react with oxygen to generate peroxy radicals (ROO•). The peroxy radicals (ROO•) react with polymer (RH) to generate peroxide (ROOH). The peroxide (ROOH) is unstable and readily decomposes itself into alkoxy radicals (RO•) and hydroxyl radicals (OH•).
- the communicating-path forming gasket 132 which forms the communicating path 3 through which the high-temperature fluid H flows has its wetted side placed in contact with the high-temperature fluid H, and its non-wetted side placed in contact with the atmosphere. Consequently, high molecules which make up a main component break down due to oxidative degradation reactions, increasing the number of radicals and causing breakage of molecular chains and cross-linking reactions to proceed. This results in a loss of elasticity intrinsic to rubber.
- the communicating-path forming gasket 132 is structurally in a compressive environment, compression set increases, resulting in insufficient surface pressure, and cracks develop, resulting in a rupture. Then, as a result of the rupture, the high-temperature fluid H may leak from the communicating path 3 into the second flow path, mixing with the low-temperature fluid C.
- JP 2000 283687 A discloses a plate heat exchanger capable of checking if a small quantity of liquid leaks from a seal part between stacked plates. To this end a liquid discharge passage is provided in the form of a groove for allowing liquid leaking to the outside of each plate to drop.
- an object of the present invention is to provide a plate heat exchanger that is less likely to cause degradation of communicating-path forming gaskets which form a communicating path through which a high-temperature fluid flows.
- a plurality of heat transfer plates are stacked, each being provided with a plurality of passage holes; a flow-path forming gasket is interposed between peripheries of each adjacent ones of the plurality of heat transfer plates, thereby alternately forming a first flow path adapted to pass a high-temperature fluid and a second flow path adapted to pass a low-temperature fluid on opposite sides of each heat transfer plate; communicating-path forming gaskets surrounding the passage holes are each interposed between each adjacent ones of the plurality of heat transfer plates, thereby forming a communicating path adapted to cause a fluid to flow in and out of the first flow path and a communicating path adapted to cause a fluid to flow in and out the second flow path; and each of the communicating-path forming gaskets is made up of an inner gasket member and an outer gasket member arranged in two lines, the inner gasket member surrounding the passage holes while the outer gasket member surrounding the inner gasket member.
- the plate heat exchanger is characterized in
- the communicating-path forming gasket may be arranged in two parallel lines only between the heat transfer plates which form the communicating path through which the high-temperature fluid flows.
- a plurality of cassette plates are stacked, each being made up of two heat transfer plates which are provided with a plurality of passage holes and are permanently joined on peripheries; a flow-path forming gasket is interposed between peripheries of each adjacent ones of the plurality of cassette plates; communicating-path forming gaskets surrounding the passage holes are each interposed between each adjacent ones of the plurality of heat transfer plates, thereby alternately forming a first flow path adapted to pass a high-temperature fluid and a second flow path adapted to pass a low-temperature fluid inside each cassette plate and between the cassette plates, wherein each of the communicating-path forming gaskets is made up of an inner gasket member and an outer gasket member arranged in two lines, the inner gasket member surrounding the passage holes while the outer gasket member surrounding the inner gasket member.
- the plate heat exchanger is characterized in that a drain hole is formed in the heat transfer plates between the inner gasket member and the outer gasket
- a configuration can be adopted in which a gas supply hole is formed in the heat transfer plates between the inner gasket member and the outer gasket member of each of the communicating-path forming gaskets; and an enclosed space surrounded by the inner gasket member, the outer gasket member, and the heat transfer plates is filled with an inert gas.
- a plate heat exchanger according to a first embodiment of the present invention is described below with reference to FIGS. 1 to 3 .
- the same components as conventional components are described by the same reference numerals as the corresponding conventional components.
- terms such as upper, lower, right, and left are exemplary in each embodiment, and, needless to say, may represent different positions depending on actual usage.
- the plate heat exchanger according to the first embodiment is an apparatus in which a first flow path 1 and a second flow path 2 are formed alternately between heat transfer plates 20 as shown in FIGS. 1 to 3 , a high-temperature fluid H is passed through the first flow path 1 while a low-temperature fluid C is passed through the second flow path 2.
- the first flow paths 1 and the second flow paths 2 are formed by respective gaskets 30 interposed between the heat transfer plates 20.
- the gaskets 30 each are made up of a flow-path forming gasket 31 configured to surround a periphery of each heat transfer plate 20 and a communicating-path forming gasket 32 configured to surround circumferences of the passage holes 21 to 24, so that the flow-path forming gasket 31 and the communicating-path forming gasket 32 may be formed either integrally (shown in FIGS. 1 and 2 ) or separately (shown in FIG. 3 ).
- the gasket 30 in which the flow-path forming gasket 31 and the communicating-path forming gasket 32 are formed integrally is based on shared use of a border between a heat transfer portion and the passage holes 21 to 24, as shown in FIG. 2 .
- the communicating-path forming gasket (hereinafter, referred to as "double-line gasket") 32 provided with a communicating path 3 through which a high-temperature fluid H is passed is made up of an inner gasket member 32a and an outer gasket member 32b arranged in two lines. Consequently, each heat transfer plate 20 is double-grooved to correspond to the inner gasket member 32a and the outer gasket member 32b of the double-line gasket 32.
- the inner gasket member 32a is formed annularly so as to surround the passage holes 21 and 22.
- the outer gasket member 32b is formed in the shape of a modified trapezoid and its border with the second flow path 2 is shared with the flow-path forming gasket 31.
- the double-line gasket 32 is configured by arranging the annular inner gasket member 32a and the annular outer gasket member 32b concentrically in two parallel lines, the inner gasket member 32a surrounding the passage holes 21 and 22 while the outer gasket member 32b surrounding the inner gasket member 32a. Therefore, no part of the outer gasket member 32b is shared with the flow-path forming gasket 31.
- the double-line gasket 32 surrounds the upper and lower left passage holes 21 and 22, thereby forming the communicating path 3 through which the high-temperature fluid H flows.
- the communicating path 3 through which the low-temperature fluid C flows is formed by the communicating-path forming gasket 132, which is a conventionally-used typical gasket (hereinafter referred to as a "single-line gasket") 130, surrounding the upper and lower right passage holes 23 and 24.
- the communicating path 3 may be formed by the double-line gasket 32 surrounding the upper and lower right passage holes 23 and 24.
- the first flow path 1 adapted to pass the high-temperature fluid H is formed by the communicating-path forming gasket 132, which is a single-line gasket 130, being interposed between a pair of heat transfer plates 20 such that the communicating-path forming gasket 132 isolates the upper and lower right passage holes 23 and 24 and that the flow-path forming gasket 131 surrounds the upper and lower left passage holes 21 and 22, and the heat transfer portion.
- the communicating-path forming gasket 132 which is a single-line gasket 130, being interposed between a pair of heat transfer plates 20 such that the communicating-path forming gasket 132 isolates the upper and lower right passage holes 23 and 24 and that the flow-path forming gasket 131 surrounds the upper and lower left passage holes 21 and 22, and the heat transfer portion.
- the flow-path forming gasket 131 which forms the first flow path 1 may also be made up of an inner gasket member and an outer gasket member arranged in two parallel lines. This can prevent the gasket which forms the first flow path from oxidative degradation. Furthermore the flow-path forming gasket 131 which forms the second flow path 2 may be also made up of an inner gasket member and an outer gasket member arranged in two parallel lines. This makes it possible to assemble the first flow path 1 and the second flow path 2 without distinguishing therebetween.
- the high-temperature fluid H flows through the first flow path 1 from the upper left passage hole 21 and is discharged through the lower left passage hole 22 while the low-temperature fluid C flows through the second flow path 2 from the lower right passage hole 24 and is discharged through the upper right passage hole 23, thereby exchanging heat between the high-temperature fluid H and the low-temperature fluid C.
- the high-temperature fluid H flows into the first flow path 1 by passing through the upper left communicating path 3.
- the high-temperature fluid H in the communicating path 3 contacts the inner gasket member 32a of the double-line gasket 32, but the inner gasket member 32a, whose circumferences are surrounded by the outer gasket member 32b, does not contact the atmosphere, and is thus less prone to oxidative degradation reactions.
- the gasket 32 which forms the lower left communicating path 3 may be configured to have a single line rather than two lines. Even if the communicating paths 3 used to communicate the upper and lower right passage holes 23 and 24 is formed by the communicating-path forming gasket 132 configured to be a single-line gasket 130, the communicating paths 3, through which the low-temperature fluid C flows, do not get so hot as to cause oxidative degradation of the communicating-path forming gaskets 132.
- the plate heat exchanger is configured such that the double-line gaskets 32 will not crack and that the high-temperature fluid H will not leak from the communicating paths 3.
- a drain hole 25 and/or a gas supply hole 26 are provided in the heat transfer plate 20 sandwiched between the inner gasket member 32a and the outer gasket member 32b of the double-line gasket 32.
- the drain hole 25 is made continuous by the annular gasket 33 interposed between each pair of heat transfer plates 20 where the first flow path 1 is provided.
- a nozzle 13 continuous with each drain hole 25 is mounted on the fixed frame 11, making it possible to detect any leakage of the high-temperature fluid H from the nozzle 13 and hence detect any leakage from the inner gasket members 32a due to cracks, as shown in FIG. 6 .
- FIGS. 5 and 6 also show how the double-line gasket 32 shown in FIG. 2 is interposed between each pair of the heat transfer plates 20 and how the communicating hole 21 is surrounded by double-line D gaskets 41 and 42 interposed between the fixed frame 11 and a D plate 20d, but the plate heat exchanger according to the second embodiment can use the double-line gasket 32 shown in FIG. 3 as well.
- the gas supply hole 26 is formed to make the inner gasket member 32a still less prone to oxidative degradation reactions.
- an inert gas such as nitrogen is supplied from the gas supply hole 26 to an enclosed space surrounded by the inner gasket member 32a and the outer gasket member 32b of the double-line gasket 32 and the two heat transfer plates 20 so that the inner gasket member 32a does not contact oxygen at all.
- the enclosed space since the first flow paths 1 are placed next to one another via the heat transfer plates 20, by interposing the annular gasket 33 continuous with the gas supply hole 26 between each pair of heat transfer plates 20 where the first flow path 1 is provided, an inert gas is supplied into the enclosed space through each nozzle 14 mounted on the fixed frame 11 and communicated with the gaskets 33. As shown in FIG. 4 , the nozzles 14 for use to supply the inert gas are mounted on the fixed frame 11.
- the drain hole 25 and the gas supply hole 26 may be provided only in the upper left communicating path 3 through which the high-temperature fluid H flows at a high temperature, but when the drain hole 25 and the gas supply hole 26 are provided also in the double-line gasket 32 forming the lower left communicating path 3 through which the high-temperature fluid H flows at a lowered temperature, the heat transfer plate 20 can be assembled upside down.
- the drain hole 25 and the gas supply hole 26 are provided in the upside-down position, the drain hole 25 is formed to serve as the gas supply hole 26 and the gas supply hole 26 is formed to serve as the drain hole 25.
- double-line gaskets 32 are interposed between plural cassette plates 200 stacked in an upright posture.
- the cassette plate 200 is constructed by permanently joining peripheries of two heat transfer plates 20 by laser welding, brazing, or the like (indicated by black dots in FIG. 7 ), and the first flow path 1 adapted to pass the high-temperature fluid H or the second flow path 2 adapted to pass the low-temperature fluid C is provided therein.
- Plural cassette plates 200 are stacked, and the second flow path 2 adapted to pass the low-temperature fluid C or the first flow path 1 adapted to pass the high-temperature fluid H is provided between each adjacent ones of the cassette plates 200.
- the gaskets 30 are interposed between the peripheries of the stacked cassette plates 200.
- the gasket 30 is a combination of the flow-path forming gasket (not shown) interposed in the permanently joined peripheries of the cassette plate 200 and the double-line gasket 32 forming the communicating path 3.
- the double-line gasket 32 is configured by arranging the annular inner gasket member 32a and the annular outer gasket member 32b concentrically in two lines, the inner gasket member 32a surrounding the passage holes 21 and 22 while the outer gasket member 32b surrounding the inner gasket member 32a.
- the outer gasket member 31b is installed inside the permanently joined portions as illustrated.
- the outer gasket member 32b may be installed in a space 201 between the permanently joined portions and the inner gasket member 32a may be installed inward from the permanently joined portion (a line on which the outer gasket member 32b is installed in FIG. 7 ).
- the communicating paths 3 are formed by the double-line gaskets 32 which surround the passage holes 21 and 22. Although the inner gasket members 32a of the double-line gaskets 32 are placed in contact with the high-temperature fluid H, reactions with oxygen in the atmosphere are inhibited, thereby inhibiting oxidative degradation.
- the plate heat exchanger configured by assembling the cassette plates 200 is also less prone to early leakage of the high-temperature fluid H, with settling or subsidence of the double-line gaskets 32 inhibited, where the settling could be caused by cracks and aging degradation.
- the plate heat exchanger can be configured such that the high-temperature fluid H will not leak even if the low-temperature fluid C is passed through the cassette plates 200 and the high-temperature fluid H is passed between the cassette plates 200.
- the plurality of heat transfer plates 20 are stacked, each being provided with the plurality of passage holes 21, 22, 23, and 24;
- the flow-path forming gasket 31 is interposed between peripheries of each adjacent ones of the heat transfer plates 20, thereby alternately forming the first flow path 1 adapted to pass the high-temperature fluid H and the second flow path 2 adapted to pass the low-temperature fluid C on opposite sides of each heat transfer plate 20;
- the communicating-path forming gaskets 32 surrounding the passage holes 21, 22, 23, and 24 are interposed between adjacent ones of the heat transfer plates 20, thereby forming the communicating path 3 adapted to cause the fluid H to flow in and out of the first flow path 1 and the communicating path 3 adapted to cause the fluid C to flow in and out the second flow path 2;
- each of the communicating-path forming gaskets 32 is made up of the inner gasket member 32a and the outer gasket member 32b arranged in two lines, the inner gasket member 32a surrounding the passage holes 21, 22, 23, and 24 while the outer
- the communicating-path forming gaskets 32 each made up of the inner gasket member 32a and the outer gasket member 32b arranged in two parallel lines, surround the passage holes 21, 22, 23, and 24, forming the communicating paths 3, although the inner gasket member 32a is exposed to the high-temperature fluid H, reactions with oxygen in the atmosphere are inhibited. Therefore, breakage of molecular chains and cross-linking reactions due to oxidative degradation reactions do not proceed in the inner gasket member 32a which maintains sealing and consequently increases in compression set and cracks are suppressed. Thus, the high-temperature fluid H flowing through the communicating paths 3 formed by the communicating-path forming gaskets 32 can be made less prone to leakage.
- the communicating-path forming gasket 32 is arranged in two parallel lines only between the heat transfer plates 20 which form the communicating path 3 through which the high-temperature fluid H flows.
- the communicating-path forming gasket 32 which forms the communicating path 3 through which the high-temperature fluid H flows is prone to degradation due to oxidative degradation reactions, only the communicating-path forming gasket 32 is configured to have two-line arrangement and the flow-path forming gasket 31 which forms a flow path through which the low-temperature fluid C flows is configured to have a single-line arrangement.
- the plurality of cassette plates 200 are stacked, each of the cassette plates 200 being made up of two heat transfer plates 20 which are provided with the plurality of passage holes 21, 22, 23, and 24 and are permanently joined along peripheries; the flow-path forming gasket 31 is interposed between peripheries of each adjacent ones of the cassette plates 200; the communicating-path forming gasket 32 surrounding the passage holes 21, 22, 23, and 24 is interposed between the adjacent heat transfer plates 200, thereby alternately forming the first flow path 1 adapted to pass the high-temperature fluid H and the second flow path 2 adapted to pass the low-temperature fluid C inside each cassette plate 200 and between the cassette plates 200, wherein each of the communicating-path forming gaskets 32 is made up of an inner gasket member 32a and an outer gasket member 32b arranged in two lines, the inner gasket member 32a surrounding the passage holes while the outer gasket member 32b surrounding the inner gasket 32a.
- the communicating-path forming gasket 32 interposed between the cassette plates 200 is made up of the inner gasket member 32a and the outer gasket member 32b arranged in two lines, when the first flow path 1 adapted to pass the high-temperature fluid H is provided in the cassette plates 200 the communicating-path forming gasket 32 is less prone to oxidative degradation reactions, and consequently progress of gasket degradation can be suppressed, and leakage of the high-temperature fluid H from the communicating path 3 can be prevented from being easily caused.
- the drain hole 25 is formed in the heat transfer plate 20 between the inner gasket member 32a and the outer gasket member 32b of the communicating-path forming gasket 32. Since the drain hole 25 is formed in the heat transfer plate between the inner gasket member 32a and the outer gasket member 32b, even if the inner gasket undergoes settling or subsidence due to thermal degradation or aging degradation, the high-temperature fluid H leaking from the inner gasket member 32a can be discharged through the drain hole 25 in the outer gasket member 32b.
- the gas supply hole 26 is formed in the heat transfer plate 20 between the inner gasket member 32a and the outer gasket member 32b of the communicating-path forming gaskets 32 and an enclosed space surrounded by the inner gasket member and the heat transfer plates 20 is filled with an inert gas. Since the enclosed space surrounded by the inner gasket member 32a, the outer gasket member 32b, and the heat transfer plates 20 is filled with an inert gas, it is possible to minimize oxidative degradation reactions of the inner gasket member 32a by eliminating air in the enclosed space.
- the present invention is not limited to the first to third embodiments described above and that various changes can be made to the embodiments.
- the plate heat exchanger described in the third embodiment in which the cassette plates 200 are stacked may be provided with the exhaust hole and the gas supply hole 26 described in the second embodiment.
- the communicating-path forming gasket 30 may be arranged in two lines only on the upstream side of the first flow path 1 as described in the first embodiment.
- the nozzle 13 continuous with the drain hole 25 and the nozzle 14 continuous with the gas supply hole 26 may be installed on the movable frame 12 rather than on the fixed frame 11.
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- Engineering & Computer Science (AREA)
- Physics & Mathematics (AREA)
- Thermal Sciences (AREA)
- Mechanical Engineering (AREA)
- General Engineering & Computer Science (AREA)
- Heat-Exchange Devices With Radiators And Conduit Assemblies (AREA)
Description
- This application claims the priority to Japanese Patent Application No.
2011-233098 - The present invention relates to a plate heat exchanger for exchanging heat between a high-temperature fluid and a low-temperature fluid. More particularly, the present invention relates to a plate heat exchanger in which by stacking plural heat transfer plates and interposing a gasket between peripheries or the like of each adjacent ones of the heat transfer plates, a flow path adapted to pass a high-temperature fluid and a flow path adapted to pass a low-temperature fluid are formed alternately between each adjacent heat transfer plates.
WO 2004/011868 A1 for instance discloses a plate heat exchanger having the features in the preamble of claim 1.WO 2004/072570 A1 for instance discloses a plate heat exchanger having the features in the preamble ofclaim 3. - In a plate heat exchanger, plural
heat transfer plates 20 are stacked in an upright posture between a plate-shaped rectangularfixed frame 11 in an upright posture and a plate-shaped rectangularmovable frame 12 in an upright posture as shown inFIG. 8 , a first flow path 1 and asecond flow path 2 are formed alternately between theheat transfer plates 20 as shown inFIG. 9 , and a high-temperature fluid H is passed through the first flow path 1 while a low-temperature fluid C is passed through thesecond flow path 2, thereby exchanging heat between the high-temperature fluid H and low-temperature fluid C. -
Passage holes 11a to 11d serving as inlet ports and outlet ports for the fluids H and C are provided in four corners of thefixed frame 11, whereas no passage hole is provided in themovable frame 12. Also, respective dedicated plates (hereinafter referred to as a "D plate" and "E plate") 31 and 32 are overlaid on thefixed frame 11 and themovable frame 12. Passage holes (not numbered) are provided in four corners of theD plate 31, and a gasket (hereinafter referred to as a "D gasket") 140 is interposed between theD plate 31 and thefixed frame 11, surrounding the passage holes. Note that no passage hole is provided in theE plate 32. - Also,
passage holes 21 to 24 serving as inlet ports and outlet ports for the fluids H and C are provided in four corners of each of theheat transfer plates 20, a heat transfer portion (not numbered) is provided in an intermediate portion of theheat transfer plate 20, and agasket 130 is interposed between each adjacent ones of theheat transfer plates 20, for example, such that the upper and lowerleft passage holes right passage holes - The
gasket 130 is made up of a flow-path forming gasket 131 configured to surround a periphery (inner side of an outer peripheral edge) of eachheat transfer plate 20 and communicating-path forming gaskets 132 configured to surround circumferences of thepassage holes 21 to 24, where the flow-path forming gasket 131 and communicating-path forming gaskets 132 may be formed either separately or integrally (not shown). - In the plate heat exchanger, the upper and lower right communicating-
path forming gaskets 132 surround the upper and lowerright passage holes paths 3 isolated from the upper and lowerleft passage holes path forming gasket 131 surrounds the upper and lowerleft passage holes - Also, in the plate heat exchanger, the upper and lower left communicating-
path forming gaskets 132 surround the upper and lowerleft passage holes paths 3 isolated from the upper and lowerright passage holes second flow path 2, and the flow-path forming gasket 131 surrounds the upper and lowerright passage holes second flow path 2 adapted to pass the low-temperature fluid C therethrough. - Thus, in
FIG. 9 , the high-temperature fluid H flows downward through the first flow path 1 from the upperleft passage hole 21 and is discharged through the lowerleft passage hole 22 while the low-temperature fluid C flows upward through thesecond flow path 2 from the lowerright passage hole 24 and is discharged through the upperright passage hole 23, thereby exchanging heat between the two fluids H and C. - Also, although not illustrated, Patent Literature 1 and the like describe a joined plate heat exchanger in which plural cassette plates constructed by permanently joining peripheries or other portions of two heat transfer plates by laser welding, brazing, or the like are stacked in an upright posture and gaskets are interposed on peripheries of the cassette plates, thereby forming a first flow path or second flow path in the cassette plates and forming the second flow path or first flow path between the cassette plates.
- On the other hand,
Patent Literature 2 describes a plate heat exchanger comprising a flow-path forming gasket and a communicating-path forming gasket which are integrated into a single gasket and interposed between heat transfer plates, in which part of the flow-path forming gasket and part of the communicating-path forming gasket are arranged side-by-side to provide double (two) gaskets in a border between a heat transfer portion and passage holes. In the plate heat exchanger, the double gaskets are firmly fixed to the heat transfer plates without using an adhesive and in other part, the gasket is bonded to the heat transfer plates using an adhesive. - The double gaskets are interposed between every other pair of the stacked heat transfer plates (alternately), thereby forming a flow path configured to communicate the heat transfer portion and passage holes without double gaskets. Those heat transfer plates which lack double gaskets are subject to deformation due to internal pressure, but since the double gaskets are not bonded to the heat transfer plates with an adhesive, pressure tightness of the plate heat exchanger is improved.
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- Patent Literature 1:
JP 2005-106412 A - Patent Literature 2:
JP 9-72686 A - However, the conventional plate heat exchanger shown above in
FIGS. 8 and9 have problems such as described below. - In the plate heat exchanger, as shown in
FIG. 9 , the high-temperature fluid H flowing into the first flow path 1 flows through the communicatingpath 3 formed by the communicating-path forming gasket 132 which surrounds thepassage hole 21. Since the communicating-path forming gasket 132 which forms the communicatingpath 3 through which the high-temperature fluid H flows has its inner side (wetted side) placed in contact with the high-temperature fluid H in a hot, humid environment as shown inFIG. 10 , thermal degradation such as hardening or softening proceeds with long-term use. - Also, main component of the communicating-
path forming gasket 132 is polymer (RH). Consequently, when the communicating-path forming gasket 132 is heated by the high-temperature fluid H, the polymer reacts with oxygen (O2) to generate alkyl radicals (R•). Since an outer side (non-wetted side) of the flow-path forming gasket 131 contacts the atmosphere, alkyl radicals (R•) react with oxygen to generate peroxy radicals (ROO•). The peroxy radicals (ROO•) react with polymer (RH) to generate peroxide (ROOH). The peroxide (ROOH) is unstable and readily decomposes itself into alkoxy radicals (RO•) and hydroxyl radicals (OH•). - In short, the communicating-
path forming gasket 132 which forms the communicatingpath 3 through which the high-temperature fluid H flows has its wetted side placed in contact with the high-temperature fluid H, and its non-wetted side placed in contact with the atmosphere. Consequently, high molecules which make up a main component break down due to oxidative degradation reactions, increasing the number of radicals and causing breakage of molecular chains and cross-linking reactions to proceed. This results in a loss of elasticity intrinsic to rubber. At the same time, since the communicating-path forming gasket 132 is structurally in a compressive environment, compression set increases, resulting in insufficient surface pressure, and cracks develop, resulting in a rupture. Then, as a result of the rupture, the high-temperature fluid H may leak from the communicatingpath 3 into the second flow path, mixing with the low-temperature fluid C. - Also, double gaskets are interposed inside the plate heat exchanger described in
Patent Literature 2. However, the communicating-path forming gasket 132 which forms the communicatingpath 3 through which the high-temperature fluid H flows does not have two lines, and thus oxidative degradation can occur, resulting in external leakage of the high-temperature fluid H. - When the high-temperature fluid H is a dangerous chemical solution, leaking out of the high-temperature fluid H from the plate heat exchanger may cause secondary accidents. If the gaskets are replaced a little earlier to prevent secondary accidents, this will increase running costs. Also, a method is conceivable which inhibits oxidative degradation and prevents the high-temperature fluid H from flowing out, by covering the entire plate heat exchanger with an airtight sheet or the like or inserting rubber or the like into gaps among outer peripheral portions of the stacked heat transfer plates, but such a method is not adopted because of problems in terms of costs and quality.
- Documents
WO 2004/011868 A1 ,WO 2004/072570 A1 ,JP 2008 051390 A JP H11 503819 A JP H05 79786 A JP H05 264192 A JP 2006 520883 A JP H02 192598 A JP 2006 303262 A JP S55 145873 A JP 2000 283687 A - Thus, an object of the present invention is to provide a plate heat exchanger that is less likely to cause degradation of communicating-path forming gaskets which form a communicating path through which a high-temperature fluid flows.
- In a plate heat exchanger according to the present invention, a plurality of heat transfer plates are stacked, each being provided with a plurality of passage holes; a flow-path forming gasket is interposed between peripheries of each adjacent ones of the plurality of heat transfer plates, thereby alternately forming a first flow path adapted to pass a high-temperature fluid and a second flow path adapted to pass a low-temperature fluid on opposite sides of each heat transfer plate; communicating-path forming gaskets surrounding the passage holes are each interposed between each adjacent ones of the plurality of heat transfer plates, thereby forming a communicating path adapted to cause a fluid to flow in and out of the first flow path and a communicating path adapted to cause a fluid to flow in and out the second flow path; and each of the communicating-path forming gaskets is made up of an inner gasket member and an outer gasket member arranged in two lines, the inner gasket member surrounding the passage holes while the outer gasket member surrounding the inner gasket member. The plate heat exchanger is characterized in that a drain hole is formed in the heat transfer plates between the inner gasket member and the outer gasket member of each of the communicating-path forming gaskets.
- Here, as one aspect of the plate heat exchanger according to the present invention, the communicating-path forming gasket may be arranged in two parallel lines only between the heat transfer plates which form the communicating path through which the high-temperature fluid flows.
- In a plate heat exchanger according to the present invention different from the one described above, a plurality of cassette plates are stacked, each being made up of two heat transfer plates which are provided with a plurality of passage holes and are permanently joined on peripheries; a flow-path forming gasket is interposed between peripheries of each adjacent ones of the plurality of cassette plates; communicating-path forming gaskets surrounding the passage holes are each interposed between each adjacent ones of the plurality of heat transfer plates, thereby alternately forming a first flow path adapted to pass a high-temperature fluid and a second flow path adapted to pass a low-temperature fluid inside each cassette plate and between the cassette plates, wherein each of the communicating-path forming gaskets is made up of an inner gasket member and an outer gasket member arranged in two lines, the inner gasket member surrounding the passage holes while the outer gasket member surrounding the inner gasket member. The plate heat exchanger is characterized in that a drain hole is formed in the heat transfer plates between the inner gasket member and the outer gasket member of each of the communicating-path forming gaskets.
- Also, as one aspect of the plate heat exchanger according to the present invention, a configuration can be adopted in which a gas supply hole is formed in the heat transfer plates between the inner gasket member and the outer gasket member of each of the communicating-path forming gaskets; and an enclosed space surrounded by the inner gasket member, the outer gasket member, and the heat transfer plates is filled with an inert gas.
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FIG. 1 is a schematic exploded perspective view showing a plate heat exchanger according to first and second embodiments of the present invention. -
FIG. 2 is a schematic exploded perspective view showing principal part of the plate heat exchanger according to the first and second embodiments of the present invention. -
FIG. 3 is a schematic exploded perspective view showing principal part of the plate heat exchanger according to a variation of the first and second embodiments of the present invention. -
FIG. 4 is a perspective view showing the plate heat exchanger according to the second embodiment of the present invention. -
FIG. 5 is an enlarged exploded perspective view showing principal part of the plate heat exchanger according to the second embodiment of the present invention. -
FIG. 6 is an enlarged sectional view along the line V-V inFIG. 5 , showing principal part of the plate heat exchanger according to the second embodiment of the present invention. -
FIG. 7 is an enlarged sectional view showing principal part of the plate heat exchanger according to the third embodiment of the present invention. -
FIG. 8 is a schematic perspective view showing a conventional plate heat exchanger. -
FIG. 9 is a schematic exploded perspective view showing the conventional plate heat exchanger. -
FIG. 10 is an enlarged sectional view of principal part showing principal part of the conventional plate heat exchanger. - A plate heat exchanger according to a first embodiment of the present invention is described below with reference to
FIGS. 1 to 3 . The same components as conventional components are described by the same reference numerals as the corresponding conventional components. In the following description, terms such as upper, lower, right, and left are exemplary in each embodiment, and, needless to say, may represent different positions depending on actual usage. - As is conventionally the case, the plate heat exchanger according to the first embodiment is an apparatus in which a first flow path 1 and a
second flow path 2 are formed alternately betweenheat transfer plates 20 as shown inFIGS. 1 to 3 , a high-temperature fluid H is passed through the first flow path 1 while a low-temperature fluid C is passed through thesecond flow path 2. The first flow paths 1 and thesecond flow paths 2 are formed byrespective gaskets 30 interposed between theheat transfer plates 20. - The
gaskets 30 each are made up of a flow-path forming gasket 31 configured to surround a periphery of eachheat transfer plate 20 and a communicating-path forming gasket 32 configured to surround circumferences of the passage holes 21 to 24, so that the flow-path forming gasket 31 and the communicating-path forming gasket 32 may be formed either integrally (shown inFIGS. 1 and2 ) or separately (shown inFIG. 3 ). Thegasket 30 in which the flow-path forming gasket 31 and the communicating-path forming gasket 32 are formed integrally is based on shared use of a border between a heat transfer portion and the passage holes 21 to 24, as shown inFIG. 2 . - In the plate heat exchanger according to the first embodiment, as shown in
FIG. 2 , the communicating-path forming gasket (hereinafter, referred to as "double-line gasket") 32 provided with a communicatingpath 3 through which a high-temperature fluid H is passed is made up of aninner gasket member 32a and anouter gasket member 32b arranged in two lines. Consequently, eachheat transfer plate 20 is double-grooved to correspond to theinner gasket member 32a and theouter gasket member 32b of the double-line gasket 32. - The
inner gasket member 32a is formed annularly so as to surround the passage holes 21 and 22. Theouter gasket member 32b is formed in the shape of a modified trapezoid and its border with thesecond flow path 2 is shared with the flow-path forming gasket 31. - As shown in
FIG. 3 , when the flow-path forming gasket 31 and the communicating-path forming gasket 32 are formed separately, the double-line gasket 32 is configured by arranging the annularinner gasket member 32a and the annularouter gasket member 32b concentrically in two parallel lines, theinner gasket member 32a surrounding the passage holes 21 and 22 while theouter gasket member 32b surrounding theinner gasket member 32a. Therefore, no part of theouter gasket member 32b is shared with the flow-path forming gasket 31. - Thus, the double-
line gasket 32 surrounds the upper and lower left passage holes 21 and 22, thereby forming the communicatingpath 3 through which the high-temperature fluid H flows. The communicatingpath 3 through which the low-temperature fluid C flows is formed by the communicating-path forming gasket 132, which is a conventionally-used typical gasket (hereinafter referred to as a "single-line gasket") 130, surrounding the upper and lower right passage holes 23 and 24. However, the communicatingpath 3 may be formed by the double-line gasket 32 surrounding the upper and lower right passage holes 23 and 24. - Then, the first flow path 1 adapted to pass the high-temperature fluid H is formed by the communicating-
path forming gasket 132, which is a single-line gasket 130, being interposed between a pair ofheat transfer plates 20 such that the communicating-path forming gasket 132 isolates the upper and lower right passage holes 23 and 24 and that the flow-path forming gasket 131 surrounds the upper and lower left passage holes 21 and 22, and the heat transfer portion. - Note that although not illustrated, the flow-
path forming gasket 131 which forms the first flow path 1 may also be made up of an inner gasket member and an outer gasket member arranged in two parallel lines. This can prevent the gasket which forms the first flow path from oxidative degradation. Furthermore the flow-path forming gasket 131 which forms thesecond flow path 2 may be also made up of an inner gasket member and an outer gasket member arranged in two parallel lines. This makes it possible to assemble the first flow path 1 and thesecond flow path 2 without distinguishing therebetween. - As the
gasket 30 and the single-line gasket 130 are interposed between adjacentheat transfer plates 20 alternately, the high-temperature fluid H flows through the first flow path 1 from the upperleft passage hole 21 and is discharged through the lowerleft passage hole 22 while the low-temperature fluid C flows through thesecond flow path 2 from the lowerright passage hole 24 and is discharged through the upperright passage hole 23, thereby exchanging heat between the high-temperature fluid H and the low-temperature fluid C. - In so doing, the high-temperature fluid H flows into the first flow path 1 by passing through the upper
left communicating path 3. The high-temperature fluid H in the communicatingpath 3 contacts theinner gasket member 32a of the double-line gasket 32, but theinner gasket member 32a, whose circumferences are surrounded by theouter gasket member 32b, does not contact the atmosphere, and is thus less prone to oxidative degradation reactions. - Since the high-temperature fluid H flowing through the lower
left communicating path 3 has been lowered in temperature by exchanging heat with the low-temperature fluid C, thegasket 32 which forms the lowerleft communicating path 3 may be configured to have a single line rather than two lines. Even if the communicatingpaths 3 used to communicate the upper and lower right passage holes 23 and 24 is formed by the communicating-path forming gasket 132 configured to be a single-line gasket 130, the communicatingpaths 3, through which the low-temperature fluid C flows, do not get so hot as to cause oxidative degradation of the communicating-path forming gaskets 132. - Thus, the plate heat exchanger is configured such that the double-
line gaskets 32 will not crack and that the high-temperature fluid H will not leak from the communicatingpaths 3. - Next, a plate heat exchanger according to a second embodiment of the present invention is described below with reference to
FIGS. 2 to 6 . According to the second embodiment, adrain hole 25 and/or agas supply hole 26 are provided in theheat transfer plate 20 sandwiched between theinner gasket member 32a and theouter gasket member 32b of the double-line gasket 32. - In order to discharge the high-temperature fluid H leaking from the
inner gasket members 32a of the double-line gaskets 32, thedrain hole 25 is made continuous by theannular gasket 33 interposed between each pair ofheat transfer plates 20 where the first flow path 1 is provided. - Then, as shown in
FIG. 4 , anozzle 13 continuous with eachdrain hole 25 is mounted on the fixedframe 11, making it possible to detect any leakage of the high-temperature fluid H from thenozzle 13 and hence detect any leakage from theinner gasket members 32a due to cracks, as shown inFIG. 6 . -
FIGS. 5 and6 also show how the double-line gasket 32 shown inFIG. 2 is interposed between each pair of theheat transfer plates 20 and how the communicatinghole 21 is surrounded by double-line D gaskets frame 11 and aD plate 20d, but the plate heat exchanger according to the second embodiment can use the double-line gasket 32 shown inFIG. 3 as well. - In either case, the
gas supply hole 26 is formed to make theinner gasket member 32a still less prone to oxidative degradation reactions. In other words, an inert gas such as nitrogen is supplied from thegas supply hole 26 to an enclosed space surrounded by theinner gasket member 32a and theouter gasket member 32b of the double-line gasket 32 and the twoheat transfer plates 20 so that theinner gasket member 32a does not contact oxygen at all. - Regarding the enclosed space, since the first flow paths 1 are placed next to one another via the
heat transfer plates 20, by interposing theannular gasket 33 continuous with thegas supply hole 26 between each pair ofheat transfer plates 20 where the first flow path 1 is provided, an inert gas is supplied into the enclosed space through eachnozzle 14 mounted on the fixedframe 11 and communicated with thegaskets 33. As shown inFIG. 4 , thenozzles 14 for use to supply the inert gas are mounted on the fixedframe 11. - The
drain hole 25 and thegas supply hole 26 may be provided only in the upperleft communicating path 3 through which the high-temperature fluid H flows at a high temperature, but when thedrain hole 25 and thegas supply hole 26 are provided also in the double-line gasket 32 forming the lowerleft communicating path 3 through which the high-temperature fluid H flows at a lowered temperature, theheat transfer plate 20 can be assembled upside down. Thus, when thedrain hole 25 and thegas supply hole 26 are provided in the upside-down position, thedrain hole 25 is formed to serve as thegas supply hole 26 and thegas supply hole 26 is formed to serve as thedrain hole 25. - Next, a plate heat exchanger according to a third embodiment of the present invention is described below with reference to
FIG. 7 . According to the third embodiment, double-line gaskets 32 are interposed betweenplural cassette plates 200 stacked in an upright posture. - The
cassette plate 200 is constructed by permanently joining peripheries of twoheat transfer plates 20 by laser welding, brazing, or the like (indicated by black dots inFIG. 7 ), and the first flow path 1 adapted to pass the high-temperature fluid H or thesecond flow path 2 adapted to pass the low-temperature fluid C is provided therein. -
Plural cassette plates 200 are stacked, and thesecond flow path 2 adapted to pass the low-temperature fluid C or the first flow path 1 adapted to pass the high-temperature fluid H is provided between each adjacent ones of thecassette plates 200. Thegaskets 30 are interposed between the peripheries of the stackedcassette plates 200. - The
gasket 30 is a combination of the flow-path forming gasket (not shown) interposed in the permanently joined peripheries of thecassette plate 200 and the double-line gasket 32 forming the communicatingpath 3. The double-line gasket 32 is configured by arranging the annularinner gasket member 32a and the annularouter gasket member 32b concentrically in two lines, theinner gasket member 32a surrounding the passage holes 21 and 22 while theouter gasket member 32b surrounding theinner gasket member 32a. Theouter gasket member 31b is installed inside the permanently joined portions as illustrated. - Alternatively, although not illustrated, the
outer gasket member 32b may be installed in aspace 201 between the permanently joined portions and theinner gasket member 32a may be installed inward from the permanently joined portion (a line on which theouter gasket member 32b is installed inFIG. 7 ). - Since the high-temperature fluid H is passed through the first flow path 1 in the
cassette plate 200, the high-temperature fluid H also flows through the communicatingpaths 3. The communicatingpaths 3 are formed by the double-line gaskets 32 which surround the passage holes 21 and 22. Although theinner gasket members 32a of the double-line gaskets 32 are placed in contact with the high-temperature fluid H, reactions with oxygen in the atmosphere are inhibited, thereby inhibiting oxidative degradation. - Therefore, the plate heat exchanger configured by assembling the
cassette plates 200 is also less prone to early leakage of the high-temperature fluid H, with settling or subsidence of the double-line gaskets 32 inhibited, where the settling could be caused by cracks and aging degradation. The plate heat exchanger can be configured such that the high-temperature fluid H will not leak even if the low-temperature fluid C is passed through thecassette plates 200 and the high-temperature fluid H is passed between thecassette plates 200. - Thus, in the plate heat exchanger according to the present embodiment, the plurality of
heat transfer plates 20 are stacked, each being provided with the plurality of passage holes 21, 22, 23, and 24; the flow-path forming gasket 31 is interposed between peripheries of each adjacent ones of theheat transfer plates 20, thereby alternately forming the first flow path 1 adapted to pass the high-temperature fluid H and thesecond flow path 2 adapted to pass the low-temperature fluid C on opposite sides of eachheat transfer plate 20; the communicating-path forming gaskets 32 surrounding the passage holes 21, 22, 23, and 24 are interposed between adjacent ones of theheat transfer plates 20, thereby forming the communicatingpath 3 adapted to cause the fluid H to flow in and out of the first flow path 1 and the communicatingpath 3 adapted to cause the fluid C to flow in and out thesecond flow path 2; and each of the communicating-path forming gaskets 32 is made up of theinner gasket member 32a and theouter gasket member 32b arranged in two lines, theinner gasket member 32a surrounding the passage holes 21, 22, 23, and 24 while theouter gasket member 32b surrounding theinner gasket 32a. Therefore, since the communicating-path forming gaskets 32, each made up of theinner gasket member 32a and theouter gasket member 32b arranged in two parallel lines, surround the passage holes 21, 22, 23, and 24, forming the communicatingpaths 3, although theinner gasket member 32a is exposed to the high-temperature fluid H, reactions with oxygen in the atmosphere are inhibited. Therefore, breakage of molecular chains and cross-linking reactions due to oxidative degradation reactions do not proceed in theinner gasket member 32a which maintains sealing and consequently increases in compression set and cracks are suppressed. Thus, the high-temperature fluid H flowing through the communicatingpaths 3 formed by the communicating-path forming gaskets 32 can be made less prone to leakage. - Also, in the plate heat exchanger according to the present embodiment, the communicating-
path forming gasket 32 is arranged in two parallel lines only between theheat transfer plates 20 which form the communicatingpath 3 through which the high-temperature fluid H flows. Thus, in view of the fact that the communicating-path forming gasket 32 which forms the communicatingpath 3 through which the high-temperature fluid H flows is prone to degradation due to oxidative degradation reactions, only the communicating-path forming gasket 32 is configured to have two-line arrangement and the flow-path forming gasket 31 which forms a flow path through which the low-temperature fluid C flows is configured to have a single-line arrangement. - Also, in the plate heat exchanger according to the present embodiment, the plurality of
cassette plates 200 are stacked, each of thecassette plates 200 being made up of twoheat transfer plates 20 which are provided with the plurality of passage holes 21, 22, 23, and 24 and are permanently joined along peripheries; the flow-path forming gasket 31 is interposed between peripheries of each adjacent ones of thecassette plates 200; the communicating-path forming gasket 32 surrounding the passage holes 21, 22, 23, and 24 is interposed between the adjacentheat transfer plates 200, thereby alternately forming the first flow path 1 adapted to pass the high-temperature fluid H and thesecond flow path 2 adapted to pass the low-temperature fluid C inside eachcassette plate 200 and between thecassette plates 200, wherein each of the communicating-path forming gaskets 32 is made up of aninner gasket member 32a and anouter gasket member 32b arranged in two lines, theinner gasket member 32a surrounding the passage holes while theouter gasket member 32b surrounding theinner gasket 32a. Since the communicating-path forming gasket 32 interposed between thecassette plates 200 is made up of theinner gasket member 32a and theouter gasket member 32b arranged in two lines, when the first flow path 1 adapted to pass the high-temperature fluid H is provided in thecassette plates 200 the communicating-path forming gasket 32 is less prone to oxidative degradation reactions, and consequently progress of gasket degradation can be suppressed, and leakage of the high-temperature fluid H from the communicatingpath 3 can be prevented from being easily caused. - Also, in the plate heat exchanger according to the present embodiment, the
drain hole 25 is formed in theheat transfer plate 20 between theinner gasket member 32a and theouter gasket member 32b of the communicating-path forming gasket 32. Since thedrain hole 25 is formed in the heat transfer plate between theinner gasket member 32a and theouter gasket member 32b, even if the inner gasket undergoes settling or subsidence due to thermal degradation or aging degradation, the high-temperature fluid H leaking from theinner gasket member 32a can be discharged through thedrain hole 25 in theouter gasket member 32b. - Also, in the plate heat exchanger according to the present embodiment, the
gas supply hole 26 is formed in theheat transfer plate 20 between theinner gasket member 32a and theouter gasket member 32b of the communicating-path forming gaskets 32 and an enclosed space surrounded by the inner gasket member and theheat transfer plates 20 is filled with an inert gas. Since the enclosed space surrounded by theinner gasket member 32a, theouter gasket member 32b, and theheat transfer plates 20 is filled with an inert gas, it is possible to minimize oxidative degradation reactions of theinner gasket member 32a by eliminating air in the enclosed space. - Note that the present invention is not limited to the first to third embodiments described above and that various changes can be made to the embodiments. For example, the plate heat exchanger described in the third embodiment in which the
cassette plates 200 are stacked may be provided with the exhaust hole and thegas supply hole 26 described in the second embodiment. Also, the communicating-path forming gasket 30 may be arranged in two lines only on the upstream side of the first flow path 1 as described in the first embodiment. Also, thenozzle 13 continuous with thedrain hole 25 and thenozzle 14 continuous with thegas supply hole 26 may be installed on themovable frame 12 rather than on the fixedframe 11. -
- 1... First flow path
- 2... Second flow path
- 3... Communicating path
- 20... Heat transfer plate
- 21, 22, 23, 24... Passage hole
- 25... Drain hole
- 26... Gas supply hole
- 30... Gasket
- 31... Flow-path forming gasket
- 32... Communicating-path forming gasket (double-line gasket)
- 32a... Inner gasket member
- 32b... Outer gasket member
- 200... Cassette plate
- C... Low-temperature fluid
- H... High-temperature fluid
Claims (4)
- A plate heat exchanger wherein:a plurality of heat transfer plates (20) are stacked, each being provided with a plurality of passage holes (21, 22, 23, 24);a flow-path forming gasket (31) is interposed between peripheries of each adjacent ones of the plurality of heat transfer plates (20), thereby alternately forming a first flow path (1) adapted to pass a high-temperature fluid (H) and a second flow path (2) adapted to pass a low-temperature fluid (C) on opposite sides of each heat transfer plate (20);communicating-path forming gaskets (32) surrounding the passage holes (21, 22, 23, 24) are each interposed between each adjacent ones of the plurality of heat transfer plates (20), thereby forming a communicating path (3) adapted to cause a fluid to flow in and out of the first flow path (1) and a communicating path adapted to cause a fluid to flow in and out the second flow path (2); andeach of the communicating-path forming gaskets (32) is made up of an inner gasket member (32a) and an outer gasket member (32b) arranged in two lines, the inner gasket member (32a) surrounding the passage holes (21, 22, 23, 24) while the outer gasket member (32b) surrounding the inner gasket member (32a);characterized in that a drain hole (25) is formed in the heat transfer plates (20) between the inner gasket member (32a) and the outer gasket member (32b) of each of the communicating-path forming gaskets (32).
- The plate heat exchanger according to claim 1, wherein the communicating-path forming gasket (32) is arranged in two parallel lines only between the heat transfer plates (20) which form the communicating path (3) through which the high-temperature fluid (H) flows.
- A plate heat exchanger wherein:a plurality of cassette plates (200) are stacked, each being made up of two heat transfer plates (20) which are provided with a plurality of passage holes (21, 22, 23, 24) and are permanently joined on peripheries;a flow-path forming gasket (31) is interposed between peripheries of each adjacent ones of the plurality of cassette plates (200);communicating-path forming gaskets (32) surrounding the passage holes (21, 22, 23, 24) are each interposed between each adjacent ones of the plurality of cassette plates (200), thereby alternately forming a first flow path (1) adapted to pass a high-temperature fluid (H) and a second flow path (2) adapted to pass a low-temperature fluid (L) inside each cassette plate (200) and between the cassette plates (200); andwherein each of the communicating-path forming gaskets (32) is made up of an inner gasket member (32a) and an outer gasket member (32b) arranged in two lines, the inner gasket member (32a) surrounding the passage holes (21, 22, 23, 24) while the outer gasket member (32b) surrounding the inner gasket member (32a);characterized in that a drain hole (25) is formed in the heat transfer plates (20) between the inner gasket member (32a) and the outer gasket member (32b) of each of the communicating-path forming gaskets (32).
- The plate heat exchanger according to any one of claims 1 to 3, wherein a gas supply hole (26) is formed in the heat transfer plates (20) between the inner gasket member (32a) and the outer gasket member (32b) of each of the communicating-path forming gaskets (32); and an enclosed space surrounded by the inner gasket member (32a), the outer gasket member (32b), and the heat transfer plates (20) is filled with an inert gas.
Applications Claiming Priority (2)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
JP2011233098 | 2011-10-24 | ||
PCT/JP2012/077362 WO2013061966A1 (en) | 2011-10-24 | 2012-10-23 | Plate heat exchanger |
Publications (3)
Publication Number | Publication Date |
---|---|
EP2772718A1 EP2772718A1 (en) | 2014-09-03 |
EP2772718A4 EP2772718A4 (en) | 2015-07-29 |
EP2772718B1 true EP2772718B1 (en) | 2019-05-15 |
Family
ID=48167796
Family Applications (1)
Application Number | Title | Priority Date | Filing Date |
---|---|---|---|
EP12843569.0A Active EP2772718B1 (en) | 2011-10-24 | 2012-10-23 | Plate heat exchanger |
Country Status (5)
Country | Link |
---|---|
US (1) | US20140338870A1 (en) |
EP (1) | EP2772718B1 (en) |
JP (1) | JP6097696B2 (en) |
CN (1) | CN103946663B (en) |
WO (1) | WO2013061966A1 (en) |
Families Citing this family (10)
Publication number | Priority date | Publication date | Assignee | Title |
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CN103917843B (en) * | 2011-11-11 | 2016-11-09 | 株式会社日阪制作所 | Heat-exchangers of the plate type |
DE102013222130A1 (en) * | 2013-10-30 | 2015-04-30 | MAHLE Behr GmbH & Co. KG | Heat exchanger |
CN104101237B (en) * | 2014-06-25 | 2016-06-15 | 无锡溥汇机械科技有限公司 | A kind of plate type heat exchanger |
CN104121791B (en) * | 2014-07-18 | 2015-12-16 | 无锡溥汇机械科技有限公司 | A kind of plate type heat exchanger |
CN104359337A (en) * | 2014-12-04 | 2015-02-18 | 胡甜甜 | Multi-medium plate heat exchanger |
US20170089644A1 (en) * | 2015-09-30 | 2017-03-30 | Spx Flow, Inc. | Port Connection for a Heat Exchanger |
CN107478078A (en) * | 2017-08-17 | 2017-12-15 | 佛山禅能换热器有限公司 | Mix application method and plate type heat exchanger of the sealing gasket in plate type heat exchanger |
US10458718B2 (en) * | 2017-11-29 | 2019-10-29 | Asia Vital Components Co., Ltd. | Airtight penetration structure for heat dissipation device |
CN114636331A (en) * | 2020-12-16 | 2022-06-17 | 丹佛斯有限公司 | Gasket unit insert for heat exchanger |
DE102022112039A1 (en) | 2022-05-13 | 2023-11-16 | Akg Verwaltungsgesellschaft Mbh | Safety heat exchanger |
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- 2012-10-23 EP EP12843569.0A patent/EP2772718B1/en active Active
- 2012-10-23 US US14/354,120 patent/US20140338870A1/en not_active Abandoned
- 2012-10-23 WO PCT/JP2012/077362 patent/WO2013061966A1/en active Application Filing
- 2012-10-23 JP JP2013540787A patent/JP6097696B2/en active Active
- 2012-10-23 CN CN201280048896.XA patent/CN103946663B/en active Active
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Also Published As
Publication number | Publication date |
---|---|
JPWO2013061966A1 (en) | 2015-04-02 |
CN103946663A (en) | 2014-07-23 |
EP2772718A4 (en) | 2015-07-29 |
JP6097696B2 (en) | 2017-03-15 |
CN103946663B (en) | 2016-06-29 |
EP2772718A1 (en) | 2014-09-03 |
WO2013061966A1 (en) | 2013-05-02 |
US20140338870A1 (en) | 2014-11-20 |
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