Not Applicable.
Not Applicable.
Not Applicable.
This invention is related to heat exchangers and in more particular applications, to intercoolers used to transfer heat from a charge air flow to a coolant between stages of a charge air compressor.
Heat exchangers that utilize enclosed flow passages that are interleaved with open flow passages to transfer heat between a fluid flowing through the enclosed passages and another fluid flowing through the open flow passages are known. Common examples of such heat exchangers are automotive radiators and condensers which include enclosed passages for a coolant or refrigerant interleaved with open passages for a cooling air flow. Due to a continuing desire to increase the performance of vehicular engines, whether it be for automotive, truck, or off-highway/construction-type vehicles, it has become increasingly desirable to incorporate charge air compressors that provide a pressurized air flow to the inlet of the vehicle's combustion engine. It is also desirable in such charge air systems to provide an intercooler heat exchanger that cools the pressurized charge air flow between stages of the air compressor. In view of this, there is a continuing desire to improve both the efficiency and economic production of such intercoolers.
In accordance with one feature of the invention, a heat exchanger includes a heat exchanger core, a housing, and a seal structure.
As one feature, the seal structure is a multi-piece structure.
In one feature, the seal structure is a one-piece seal structure.
According to one feature, the core has a pair of opposite faces bounded by a four sided periphery. The core includes a plurality of enclosed flow passages extending between two opposite sides of the periphery to direct a first fluid through the core, and a plurality of open flow passages extending between the opposite faces to direct a second fluid through the core, with each of the two opposite sides of the periphery having a contoured shape defined at least partially by the enclosed flow passages. The housing surrounds the core to define an inlet manifold for the second fluid to direct the second fluid into the second flow passages at one of the faces and an outlet manifold for the second fluid to collect the second fluid from the second flow passages at the other face.
In one feature, the seal structure includes first and second seal extensions. The first extension is sandwiched between one of the two opposite sides of the periphery and a first wall of the housing to restrict bypassing of the second fluid around the second flow passages, the first extension conforming to the contoured shape of the one of the two opposite sides of the periphery. The second extension is sandwiched between a second wall of the housing and a third side of the periphery that connects the two opposite sides of the periphery.
As one feature, the seal structure further includes a third seal extension sandwiched between the other of the two opposite sides of the periphery and a third wall of the housing to restrict bypassing of the second fluid around the second flow passages, with the third extension conforming to the contoured shape of the other of the two opposite sides of the periphery. The second extension extends between and connects the first and third extensions so that the seal structure surrounds three of the sides of the periphery of the core.
In one feature, the housing includes a cast housing having a core chamber that receives the core and surrounds the core except for a fourth side of the periphery opposite from the third side. The core chamber has an inlet for the second fluid and an outlet for the second fluid and the core is positioned in the core chamber between the inlet and the outlet for the second fluid.
In accordance with one feature, the core further includes a fluid connection extending from the third side of the periphery of the core to direct the first fluid to or from the core, the second wall includes an opening sized to allow passage of the fluid connection, and the third extension includes a gasket section that engages around the fluid connection and the opening to restrict leakage of the second fluid from the housing.
According to one feature, the contoured shape of the one of the two opposite sides includes a plurality of recesses and the first extension includes a plurality of corresponding projections extending into the recesses.
In one feature, the core includes a plurality of plate pairs, with each plate pair defining one of the enclosed flow passages, and each of the open flow passage being defined between two adjacent plate pairs. The first extension includes a plurality of projections, with each of the projections extending between two adjacent plate pairs at the one of the opposite sides.
In accordance with one feature of the invention, the seal structure includes first, second and third seal extensions, with the first extension sandwiched between one of the two opposite sides of the periphery and the housing to restrict bypassing of the second fluid around the second flow passages, the second extension sandwiched between the housing and a third side of the periphery that connects the two opposite sides of the periphery, and the third extension sandwiched between the other of the two opposite sides of the periphery and the housing to restrict bypassing of the second fluid around the second flow passages.
As one feature, the first and third extensions conform to the contoured shapes of the two opposite sides of the periphery.
In one feature, the core further includes a fluid connection extending from the third side of the periphery of the core to direct the first fluid to or from the core, the housing includes an opening sized to allow passage of the fluid connection, and the third extension includes a gasket section that engages around the fluid connection and the opening to restrict leakage of the second fluid from the housing.
According to one feature, the contoured shapes of the two opposite sides includes a plurality of recesses and the first and third extensions each includes a plurality of corresponding projections extending into the recesses of the corresponding opposite side.
As one feature, the core includes a plurality of plate pairs, each plate pair defining one of the enclosed flow passages, and each of the open flow passage being defined between two adjacent plate pairs. Each of the first and third extensions includes a plurality of projections, with each of the projections extending between two adjacent plate pairs at the corresponding the opposite side.
In accordance with one feature of the invention, a heat exchanger includes a heat exchanger core, a housing, and a seal structure. The heat exchanger core has a pair of opposite faces bounded by a periphery. The core including a plurality of enclosed flow passages to direct a first fluid through the core and a plurality of open flow passages extending between the opposite faces to direct a second fluid through the core. The housing surrounds the core to define an inlet manifold area for the second fluid to direct the second fluid into the second flow passages at one of the faces and an outlet manifold for the second fluid to collect the second fluid from the second flow passages at the other face. The one-piece seal structure is sandwiched between the housing and a majority of the periphery to restrict bypassing of the second fluid around the second flow passages.
As one feature, the seal structure is a multi-piece structure.
In one feature, the seal structure is a one-piece seal structure.
As one feature, the seal conforms to contoured shapes of two opposite sides of the periphery.
In one feature, the housing includes a cast housing having a core chamber that receives the core, with the core positioned in the core chamber between an inlet and outlet for the second fluid.
In a further feature, the core further includes a fluid connection extending from the third side of the periphery of the core to direct the first fluid to or from the core, the chamber includes an opening sized to allow passage of the fluid connection, and the third extension includes a gasket section that engages around the fluid connection and the opening to restrict leakage of the second fluid from the housing.
According to one feature, two opposite sides of the periphery include a plurality of recesses, and the seal includes a plurality of corresponding projections extending into the recesses.
In one feature, the core includes a plurality of plate pairs, with each plate pair defining one of the enclosed flow passages, and each of the open flow passage being defined between two adjacent plate pairs. The seal includes a plurality of projections, with each of the projections extending between two adjacent plate pairs at the periphery of the core.
Other features, objects, and advantages of the invention will be realized by a detailed review of the entire specification, including the appended claims and drawings.
With reference to
With reference to
With reference to
While the core 30 has been described in some detail for the illustrated embodiment, it should be understood that other suitable forms of heat exchanger cores may be employed in the heat exchanger 24, including, for example, bar-plate type constructions, nested plate type constructions, and even so-called parallel flow constructions that utilize flattened or round tubes extending between a pair of header/manifold tanks.
As best seen in
As best seen in FIGS. 5 and 7-10, the seal structure 34 is a one-piece construction that includes three connected seal extensions 102, 104 and 106, with the extension 102 sandwiched between the core side 42 and the wall 94 of the housing 32, the extension 104 sandwiched between the core side 46 and the wall 98 of the housing 32, and the extension 106 sandwiched between the core side 44 and the wall 96 of the housing 32. Preferably, the seal structure 34 is molded as one-piece from silicone or other suitably resilient material that allows the seal extensions 102 and 104 to conform to the contoured shape of the sides 42 and 44. In this regard, it is highly preferred that each of the extensions 102 and 104 include a plurality of finger-like projections or protrusions 108 and 110 that extend into the recesses 70 and 72, respectively, that are defined between the plate pairs 54 at each of the sides 42 and 44 of the periphery 40 of the core 30. It should be noted that, as seen in
During the assembly of the intercooler 24, it is desirable that the seal structure 34 be engaged around the periphery 40 of the core 30 prior to the core 30 and the seal structure 34 being inserted into the core chamber 82 of the housing 32. In this regard, it may be desirable to size the projections 108 and 110 so that they snuggly engage between the flanges 66 of adjacent plate pairs 54, and/or to provide small engaging tabs 120 on selected ones of the projections 108 and 110, as best seen in
As best seen in
With reference to
While a one-piece structure is preferred for the seal structure 34, it is also possible to form the seal structure 34 as a multi-piece structure using some suitable form of interconnecting or interlocking joint, examples of which are shown in
It should be appreciated that the purpose of the seal structure 34 is to restrict or limit (rather than completely eliminate) the leakage of charge air 16 between the housing and contoured shape of the edges 42 and 44 of the periphery 40 of the core 30. Accordingly, an absolute/air-tight seal is not required.
It should be appreciated that the seal structure 34 allows for the use of a one-piece cast housing 32 and a heat exchanger core 30, such as a brazed stack plate core, to be utilized for a heat exchanger without requiring overly tight and/or expensive tolerances or core constructions so as to limit the bypassing of air flow around the open passages 52 of the core 30.