Exemplary embodiments pertain to a shell-and-tube heat exchanger and more specifically to a shell-and-tube heat exchanger with a compound tubesheet.
A shell-and-tube heat exchanger is a class of heat exchanger that includes a shell and a bundle of tubes inside the shell. When aluminum tubes are used in a steel shell, due to fouling and corrosion, these heat exchangers may experience wall thinning of the tubes beyond allowable limits. This is due to the high galvanic corrosion pairing between dissimilar metals. For continuous operation of such heat exchangers, the tubes may be replaced on a regular basis, causing an operation shut down.
Disclosed is a shell-and-tube heat exchanger assembly, comprising: a first tubesheet configured for being secured to a shell of the shell-and-tube heat exchanger assembly, the first tubesheet including: a first section and a second section, the second section configured to be secured to a first shell end of the shell: and the first section including a plurality of holes configured to support a respective plurality of aluminum tubes extending through the shell, wherein the first section is configured to limit a galvanic response of the plurality of aluminum tubes when exposed to a chiller water.
In addition to one or more of the above disclosed features, or as an alternate the first section comprises a cladded metal.
In addition to one or more of the above disclosed features, or as an alternate the first section comprises an insert.
In addition to one or more of the above disclosed features, or as an alternate the first section comprises a polymer.
In addition to one or more of the above disclosed features, or as an alternate the first section has a rectangular surface area and is secured to a cutout in the second section, wherein the cutout is rectangular.
In addition to one or more of the above disclosed features, or as an alternate the first section is press fit into the second section.
In addition to one or more of the above disclosed features, or as an alternate the first section is welded to the second section.
In addition to one or more of the above disclosed features, or as an alternate the first section is water-tight secured to the second section.
In addition to one or more of the above disclosed features, or as an alternate the assembly includes a first plenum secured to the first section, the first section having a surface area that is at least as large as a contact area between the first plenum and the first section.
In addition to one or more of the above disclosed features, or as an alternate the first tubesheet is formed from a polymer.
In addition to one or more of the above disclosed features, or as an alternate the first tubesheet comprises a hub-spoke-wheel subassembly.
In addition to one or more of the above disclosed features, or as an alternate the first section comprises a hub section of the hub-spoke-wheel subassembly, the second section comprises a wheel section of the hub-spoke-wheel subassembly, and a third section of the assembly comprises a spoke section of the hub-spoke-wieel subassembly, the third section being radially between and interconnecting the first section and the second section.
In addition to one or more of the above disclosed features, or as an alternate the second section includes a first groove that is axially extending and configured to receive a first shell end of the shell.
In addition to one or more of the above disclosed features, or as an alternate the second section includes a disc member that is integral with the second section.
In addition to one or more of the above disclosed features, or as an alternate the second section includes a plurality of spokes that are radially extending and circumferentially spaced from each other about the disc member.
In addition to one or more of the above disclosed features, or as an alternate the first section includes a second groove that is radially extending and configured to be secured to the disc member and the plurality of spokes.
In addition to one or more of the above disclosed features, or as an alternate the plurality of spokes are axially forward of the disc member and have a radial outer-side secured to a radial underside of the second section.
In addition to one or more of the above disclosed features, or as an alternate the assembly includes a second tubesheet that is materially the same as the first tubesheet.
In addition to one or more of the above disclosed features, or as an alternate the plurality of aluminum are supported by the plurality of holes in the first section, and wherein the first section comprises aluminum.
Further disclosed is a method of directing fluid through a shell-and-tube heat exchanger assembly comprising: directing a first fluid through a plurality of tubes extending through a shell: and directing a second fluid through the shell, exterior to the plurality of aluminum tubes, without causing a corrosive reaction between the aluminum tubes and a first tubesheet of the shell-and-tube heat exchanger assembly.
The following descriptions should not be considered limiting in any way. With reference to the accompanying drawings, like elements are numbered alike:
A detailed description of one or more embodiments of the disclosed apparatus and method are presented herein by way of exemplification and not limitation with reference to the Figures.
Turning to
Within the shell 101 there may be one or more baffles 125 (illustrated schematically in
The assembly 100 is designed to allow a plurality of fluids (fluids) 130 including a first fluid 130a and a second fluid 130b of different starting temperatures to flow through it. The first fluid 130a flows through the aluminum tubes 120 (the tube side), while the second fluid 130b flows in the shell (the shell side) but outside the aluminum tubes 120. Heat is transferred between the fluids 130 through the aluminum tubes 120, either from tube side to shell side or vice versa. The fluids 130 may be either liquids or gases on either the shell or the tube side. In order to transfer heat efficiently, a large heat transfer area is generally used, requiring many aluminum tubes 120, which are usually disposed horizontally inside the shell 101, which may be a cylindrical tank-like structure.
Turning to
The shell 101 may be formed of steel. In the embodiment of
According to the disclosed embodiments one of the tubesheets 160, for example the first tubesheet 160a, may be a compound tubesheet that may include a plurality of sections (sections) 210 including a first section 210a and a second section 210b. The first section 210a may include the holes 180 and the second section 210b may be secured to the shell 101. For example, the first section 210a may be a radially inner section and the second section 210b is a radially exterior section.
In one embodiment, the first tubesheet 160a has a circular surface area and the first section 210a has a rectangular surface area. In one embodiment a diameter D1 of the first tubesheet 160a is larger than each perimeter edge 215 of the first section 210a. With this configuration, and with the first section 210a centered in the first tubesheet 160a, the first section 210a will avoid direct contact with the shell 101. The sections 210 may comprise different materials, discussed below, so that this configuration may avoid engaging the shell 101 with different materials and potentially compromising a strength of connection between the second section 210b and the shell 101.
In one embodiment, a useful life of the assembly 100 is determined in advance and the extent of galvanization of the first section 210a is such as to protect the aluminum tubes 120 during the useful life of the assembly 100. As such, downtime for replacing the aluminum tubes 120 due to corrosion at the first tubesheet 160a may be avoided.
In one embodiment, the first section 210a and the second section 210b are formed of a continuous base material such as steel. The first section 210a may be cladded. The cladding may be a rolled-in thin metallic layer of aluminum or a suitable alloy, a spray coat, or other commercial process of cladding metal. The cladding material can be any material that is more electrochemically negative than the aluminum tubes when exposed to chiller water. For example, materials with a lower electrochemical potential than the aluminum tubes when exposed to chiller water, e.g., the cladding can be a more electrochemically active Al alloy (e.g., including zinc and/or magnesium), pure zinc, pure magnesium, and the like.
Turning to
Chiller water as used herein can include pure water, potable water, brines (e.g., saltwater, polyethylene, polypropylene, and the like), and treated water including additives such as corrosion inhibiters or antifreeze, and the like.
In one embodiment a surface size of the first section 210a of the first tubesheet 160a is as large, or larger, than a contact area between the first plenum 150a and the first tubesheet 160a. This avoids a configuration where the first plenum 150a is disposed on an uneven surface that is not water-tight when, for example, the first section 210a is a different thickness than the second section 210b. The first section 210a may be press fit into the second section 210b, welded to the second section 210b, or secured by another leak tight process. With such embodiment, first tubesheet 160a may be a template for use with different chillers requiring different configurations of holes 180 and/or different materials for the first section 210a due to the use of different aluminum tubes 120 (e.g., having different thickness, outside diameter, flow area, and the like). That is, the first section 210a may be interchanged for different operating parameters.
In the embodiment illustrated in
Turning to
In such embodiment the first section 210a is a hub section that includes the holes 180, and the first plenum 150a is secured to the first section 210a (
In the embodiment illustrated in
With the above embodiments, a galvanic pairing between the aluminum tubes 120 and support structure of the assembly 100 may be selectively eliminated at one or both of the tubesheets 160.
The term “about” is intended to include the degree of error associated with measurement of the particular quantity based upon the equipment available at the time of filing the application. The terminology used herein is for the purpose of describing particular embodiments only and is not intended to be limiting of the present disclosure. As used herein, the singular forms “a”, “an” and “the” are intended to include the plural forms as well, unless the context clearly indicates otherwise. It will be further understood that the terms “comprises” and/or “comprising,” when used in this specification, specify the presence of stated features, integers, steps, operations, elements, and/or components, but do not preclude the presence or addition of one or more other features, integers, steps, operations, element components, and/or groups thereof.
While the present disclosure has been described with reference to an exemplary embodiment or embodiments, it will be understood by those skilled in the art that various changes may be made and equivalents may be substituted for elements thereof without departing from the scope of the present disclosure. In addition, many modifications may be made to adapt a particular situation or material to the teachings of the present disclosure without departing from the essential scope thereof. Therefore, it is intended that the present disclosure not be limited to the particular embodiment disclosed as the best mode contemplated for carrying out this present disclosure, but that the present disclosure will include all embodiments falling within the scope of the claims.
This application claims the benefit of U.S. Application No. 62/873,571, filed on Jul. 12, 2019, which is incorporated herein by reference in its entirety.
Filing Document | Filing Date | Country | Kind |
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PCT/US2020/040251 | 6/30/2020 | WO | 00 |
Number | Date | Country | |
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62873571 | Jul 2019 | US |