Spiral baffled heat exchanger
The innovative baffle and sealing strip configuration in the heat exchanger addresses flow non-uniformity and vibration issues, enhancing efficiency and maintenance accessibility.
Patent Information
- Application Number
- JP2025019922
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2019-05-31
- Filing Date
- 2025-02-10
- Publication Date
- 2026-01-22
- Estimated Expiration
- 2040-05-27
AI Technical Summary
Conventional shell-and-tube heat exchangers suffer from non-uniform fluid flow, flow bypass, leakage, and vibration issues, leading to reduced heat transfer efficiency and increased maintenance costs due to fouling and corrosion.
A heat exchanger design featuring elliptical sector-shaped baffles and sealing strips arranged at specific angles to direct fluid flow in a spiral pattern, minimizing recirculation zones and leaks while allowing for easy maintenance.
Enhances heat transfer efficiency, reduces vibration risk, and facilitates quick maintenance by ensuring uniform fluid flow and minimizing bypass, thereby improving operational performance and reducing maintenance costs.
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Abstract
Description
[Background technology]
[0001] The heat exchange assembly targets increased performance by maximizing the heat transfer to pressure drop ratio while offering reduced installation and maintenance costs, as well as effective protection against damage from vibration or loss of efficiency due to contamination.
[0002] Whether in the offshore, refining, power, petrochemical, or paper and food industries, heat exchangers are often at the heart of the above-listed objectives. Numerous configurations of heat exchangers are known and used for a variety of applications. One widely used configuration of heat exchanger is the shell-and-tube heat exchanger, as shown, for example, in FIG. 1. The shell-and-tube heat exchanger of FIG. 1 includes a cylindrical shell 10 housing a bundle of parallel tubes 11 extending between two end plates 12. A first fluid 13 flows within and through the space between the two end plates to contact the bundle of parallel tubes 11 through which a second fluid 14 passes. To provide improved heat exchange between the two fluids, the flow of the first fluid 13 is defined by intermediate baffles 15, which form separate compartments arranged to change direction as the flow of the first fluid 13 passes from one compartment to the next. Baffles 15 , configured as circular sections, are disposed perpendicular to the longitudinal axis 16 of the shell 10 to provide a zigzag flow 17 of the first fluid 13 .
[0003] Disadvantageously, in a shell-and-tube heat exchanger, such as the heat exchanger shown in FIG. 1 , the second fluid must abruptly change its direction of flow several times along the length of the shell. These abrupt changes in flow direction cause a reduction in the dynamic pressure of the second fluid and its non-uniform flow velocity, which, in combination, adversely affect the performance of the heat exchanger. Furthermore, cleaning the shell-and-tube heat exchanger requires that the parallel-tube bundle 11 be removed from the shell 10; otherwise, only clean fluid can be used as the first fluid 13 flowed within the shell 10 of the shell-and-tube heat exchanger. Enabling the parallel-tube bundle 11 to be removable requires sufficient clearance between the parallel-tube bundle 11 and the shell 10 to allow for damage-free removal. Typically, the gap between the parallel tube bundle 11 and the shell 10 is large enough so that a significant amount of the first fluid 13 to be heated or cooled will bypass the parallel tube bundle 11 and mix with the heated or cooled first fluid 13 at the outlet of the shell-and-tube heat exchanger.
[0004] Still referring to a shell-and-tube heat exchanger (e.g., the heat exchanger shown in FIG. 1 ), it is well known that the perpendicular position of the baffles relative to the longitudinal axis of the shell results in a relatively inefficient heat transfer coefficient / pressure drop ratio because the baffles generate large form drag. Adjacent baffles, extending parallel to each other and perpendicular to the longitudinal axis of the shell, define orthogonal flow paths characterized by numerous sharp turns between adjacent channels. Heat transfer efficiency can be improved by reducing the spacing between the baffles. However, reducing the spacing results in wide recirculation zones, forcing most of the flow to leak between the tubes and the baffles and along the outer edges of the baffles. Nonuniform flow distribution within each compartment defined between adjacent baffles causes numerous vortices, stagnation regions, and expansions / contractions, which reduce local temperature differences. An additional factor contributing to the reduced heat transfer coefficient is the fact that the tubes traversed by the first fluid must be positioned a certain radial distance from the shell. Therefore, the cross flow around a peripherally located tube is faster than around a centrally mounted tube.
[0005] Thus, conventional baffle arrangements, such as those described above, result in flow bypass through baffle-shell clearances and flow leakage through tube-baffle clearances. While bypass and leakage flow reduce crossflow heat transfer, flow maldistribution caused by significant velocity fluctuations increases backflow and vortices in dead zones, which in turn leads to the placement of foulants on the outside of tubes within the tube bundle. If a heat exchanger is left to continue operating after the placement of foulants in the shell, significant loss of performance will be incurred over time, which translates into increased operating costs and energy consumption. If a heat exchanger is removed from service for cleaning due to the accumulation of foulants, there will be a loss or reduction in production, which translates into operating costs similar to or greater than the value of the heat exchanger. Furthermore, heat exchangers left in a fouled state for excessively long periods of time will develop hardened deposits that are difficult to remove and can cause corrosion in localized areas at higher temperatures. Hardened deposits develop, corrosion occurs, and the tube bundle can deteriorate to the point where the tube bundle should be removed for inspection and the damaged tubes plugged.
[0006] Furthermore, because the long pipes, often reaching lengths of 24 feet, are supported by a series of baffles spaced at substantial distances to solve problems associated with non-uniform velocities, conventional arrangements can suffer from flow-induced vibration of the pipes.
[0007] Spiral baffled heat exchangers have been used to overcome the problem of non-uniform flow in shell-and-tube heat exchangers. The helical pattern of the primary fluid flow can enable particularly effective conversion of available pressure drop to heat transfer and reduce the risk of vibration in the parallel pipe bundle. However, helical baffles can have large gaps that allow the primary fluid flow to leak around the baffles, resulting in both reduced velocity across the tube bundle and lower thermal efficiency due to loss of temperature driving force. These problems can arise particularly when removable bundles of tubes with large tube-to-shell clearances are desired. Furthermore, tube bundle bypass can also be particularly critical when cooling viscous liquids, whereby the viscosity of the cooled liquid is significantly higher than the viscosity of the liquid when it enters the heat exchanger. In other words, warmer, less viscous liquids can flow more easily around and bypass the tube bundle compared to the cooled, more viscous liquid.
[0008] Sealing devices are used to help prevent baffle bypass in spirally baffled heat exchangers. The sealing devices for such spirally baffled heat exchangers are substantially the same type as those used for conventional baffles, making them relatively ineffective at preventing bypass within spirally baffled heat exchangers. Additionally, because spirally baffled heat exchangers generally have lower pressure drops than segmented baffled heat exchangers, the penalty associated with the pressure drop induced by the sealing devices relative to improved heat transfer is relatively high. At best, sealing devices used in conventionally baffled heat exchangers may provide only a minor improvement in heat transfer, and at worst, they may interfere with the spiral flow paths within the bundle, thereby significantly reducing heat transfer. Summary of the Invention [Means for solving the problem]
[0009] It is desirable to configure a baffle assembly that can achieve uniformity of fluid flow without recirculation, dead zones, or leaks / bypasses of heat transfer surfaces. Furthermore, it is desirable to configure a baffle assembly with multiple baffle and sealing device positioning to maintain higher heat transfer rates within acceptable pressure drop and vibration limits. Additionally, it is desirable to have a baffle assembly that allows for accelerated tube bundle maintenance by providing greater tube-shell clearance, allowing for rapid removal and replacement for cleaning and repair. The embodiments disclosed herein address one or more of these.
[0010] An embodiment of the present disclosure may provide a heat exchanger. The heat exchanger may include a shell having a longitudinal axis and configured to receive a first fluid. The heat exchanger may further include a plurality of elliptical sector-shaped baffles each mounted within the shell at an angle relative to the longitudinal axis to direct the first fluid flow through the shell in a spiral pattern. The heat exchanger may further include a first plurality of sealing strips having first and second ends radially disposed between the shell and a plurality of axially extending tubes. Additionally, each of the plurality of baffles may include an outer circumferential edge spaced longitudinally from the outer circumferential edge positions of the remaining plurality of baffles, a proximal radial edge spaced from the distal radial edge, and a plurality of spaced apart holes on a proximal side opposite the distal side and configured to be traversed by a plurality of axially extending tubes carrying a second fluid. A first end of each of the first plurality of sealing strips may be coupled to a distal side of one of the plurality of baffles between a proximal radial edge and a distal radial edge of one of the plurality of baffles. A second end of each of the first plurality of sealing strips may be coupled to a proximal side of another of the plurality of baffles between a proximal radial edge and a distal radial edge of the other of the plurality of baffles. Furthermore, each of the first plurality of sealing strips may be disposed either orthogonally to both the distal side of one of the plurality of baffles and the proximal side of the other of the plurality of baffles, or at an angle from the orthogonal to the proximal side of the other of the plurality of baffles, where the angle may be greater than 0° and up to 80° in a direction defined from the proximal radial edge to the distal radial edge of one of the plurality of baffles.
[0011] An embodiment of the present disclosure may further provide a method of assembling a heat exchanger. The method may include providing a central rod having a longitudinal axis. Furthermore, the method may include mounting a plurality of elliptical sector-shaped baffles on the central rod at an angle relative to the longitudinal axis of the central rod such that a helical pattern is formed by the plurality of baffles. Each of the plurality of baffles may include an outer circumferential edge spaced longitudinally from the outer circumferential edge positions of the remaining plurality of baffles, a proximal radial edge spaced from the distal radial edge, a proximal side opposite the distal side, and a plurality of spaced apart holes. Furthermore, the method may include disposing a plurality of axially extending tubes within the plurality of spaced apart holes of each of the plurality of baffles, and the plurality of axially extending tubes may carry a second fluid. Furthermore, the method may include coupling a first plurality of seal strips, each having a first end and a second end, radially between the shell and the plurality of axially extending tubes. Coupling the first plurality of sealing strips may include coupling a first end of each of the first plurality of sealing strips to a distal side of one of the plurality of baffles and a second end of each of the first plurality of sealing strips to a proximal side of another of the plurality of baffles. Each of the first plurality of sealing strips may be disposed either orthogonal to both the distal side of one of the plurality of baffles and the proximal side of the other of the plurality of baffles or at an angle from the orthogonal to the proximal side of the other of the plurality of baffles, where the angle may be greater than 0° and up to 80° in a direction defined from the distal radial edge to the proximal radial edge of one of the plurality of baffles.
[0012] In one aspect, embodiments disclosed herein relate to a heat exchanger. The heat exchanger may include a shell, a plurality of baffles, a plurality of axially extending tubes, and a plurality of sealing strips. The shell may have a longitudinal axis and may be configured to receive a first fluid. A helix angle H BThe plurality of baffles, each mounted within the shell in B Helix angle H is less than s and arranged from a proximal side of the plurality of baffles to a distal side of the plurality of baffles, and having a helix angle H B and H s is defined as the angle of the individual baffle or seal strip relative to the longitudinal axis of the shell.
[0013] In some embodiments, the sealing strips may be configured to partially direct fluid flow in a spiral toward the outlet. The first plurality of sealing strips may be disposed from a distal side of the first baffle adjacent to the proximal radial edge of the first baffle to a proximal side of the second baffle adjacent to the distal radial edge of the second baffle, the first and second baffles being located in the same sector or quadrant. Alternatively, the first plurality of sealing strips may be disposed from a distal side of the first baffle intermediate the proximal and distal radial edges of the first baffle to a proximal side of the second baffle intermediate the proximal and distal radial edges of the second baffle, the second baffle being located in a different sector or quadrant from the first baffle.
[0014] A first end of each of the first plurality of sealing strips, in some embodiments, may be coupled distally to a first of the plurality of baffles, and a second end of each of the first plurality of sealing strips may be coupled proximally to a second of the plurality of baffles.
[0015] Each of the first plurality of sealing strips may have an inner surface and an outer surface, and the first plurality of sealing strips may be angled from the outer surface to the inner surface at an angle from normal to the shell in a direction defined from a proximal radial edge to a distal radial edge of one of the plurality of baffles.
[0016] In some embodiments, each of the first plurality of sealing strips may be angled from 15° up to 45° from perpendicular to the shell so that the first fluid stream strikes the sealing strip at an angle of 105° up to 135°.
[0017] An outer surface of each of the first plurality of sealing strips may be disposed generally proximate to an inner surface of the shell, and in some embodiments, the inner surface of each of the first plurality of sealing strips may be spaced from an outer diameter of a nearest tube of the plurality of axially extending tubes by a distance equal to the distance between outer diameters of two adjacent tubes of the plurality of axially extending tubes.
[0018] Each of the plurality of baffles may include at least one of a first plurality of sealing strips coupled to a proximal side of the baffle and at least one of a first plurality of sealing strips coupled to a distal side thereof. In some embodiments, each of the first plurality of sealing strips coupled to a distal side of each of the plurality of baffles may be rotationally offset about a longitudinal axis from each of the plurality of sealing strips coupled to a proximal side of each of the plurality of baffles.
[0019] In some embodiments, each of the first plurality of sealing strips has a curved outer diameter with a curvature that is elliptical, and / or each of the first plurality of sealing strips has a curved inner diameter with a curvature that is elliptical.
[0020] Each of the first plurality of sealing strips may have a width that is an outer diameter minus an inner diameter that varies along the length of the sealing strip from the first end to the second end, and / or each of the first plurality of sealing strips has a depth from proximal to distal that varies along the width or length of the sealing strip.
[0021] In some embodiments, an equal number of sealing strips may be coupled to each baffle of the plurality of baffles, and in some embodiments, the number of sealing strips per revolution about the longitudinal axis of the shell is a multiple of the number of baffles per revolution about the longitudinal axis of the shell.
[0022] The heat exchanger according to embodiments herein may further include a second plurality of sealing strips each having a first end and a second end, each positioned between any two baffles, radially disposed between the shell and the plurality of axially extending tubes. Each of the second plurality of sealing strips has a helix angle H greater than 5°. s Unlike the baffle helix angle H B Helix angle H is less than 2s The baffles may be arranged from the proximal end of the baffles to the distal end of the baffles, and the helix angle H B , H s , H 2s is defined as the angle of the individual baffle or seal strip relative to the longitudinal axis of the shell.
[0023] Heat exchangers according to embodiments herein may include a second plurality of sealing strips, each having a first end and a second end radially disposed between the shell and the plurality of axially extending tubes, each positioned between any two adjacent baffles, each of the second plurality of sealing strips disposed from a proximal radial edge of a baffle to a distal radial edge of an adjacent baffle. In some embodiments, an inner diameter of each of the second plurality of sealing strips may be spaced from an outer diameter of a nearest tube of the plurality of axially extending tubes by a distance equal to the distance between the outer diameters of two adjacent tubes of the plurality of axially extending tubes.
[0024] In another aspect, embodiments herein relate to a method of assembling a heat exchanger. The method may include providing a central rod having a longitudinal axis and mounting a plurality of elliptical sector-shaped baffles to the central rod at an angle relative to the longitudinal axis of the central rod such that a helical pattern is formed by the plurality of baffles. Each of the plurality of baffles may include an outer circumferential edge spaced longitudinally from the outer circumferential edge positions of the remaining plurality of baffles, a proximal radial edge spaced from the distal radial edge, a proximal side opposite the distal side, and a plurality of spaced apart holes, and disposing a plurality of axially extending tubes within the plurality of spaced apart holes of each of the plurality of baffles, the plurality of axially extending tubes being configured to carry a second fluid. The method may further include coupling a first plurality of seal strips, each having a first end and a second end, radially between the shell and the plurality of axially extending tubes. The step of coupling the first plurality of sealing strips may include coupling a first end of each of the first plurality of sealing strips proximal to one of the plurality of baffles and coupling a second end of each of the first plurality of sealing strips to another, more distal one of the plurality of baffles, wherein each of the first plurality of sealing strips has a baffle helix angle H greater than 5°. B Helix angle H is less than sThe baffles may be arranged from the proximal end of the baffles to the distal end of the baffles, and the helix angle H B and H s is defined as the angle of the individual baffle or seal strip relative to a longitudinal axis of the shell. The method may further include disposing the assembled center rod, the plurality of baffles, the plurality of axially extending tubes, and the first plurality of seal strips within the shell configured to receive the first fluid.
[0025] Each of the coupled first plurality of seal strips may have an inner diameter and an outer diameter. In some embodiments, coupling the first plurality of seal strips may further include angling the coupled first plurality of seal strips from the outer diameter to the inner diameter at an angle from perpendicular to the shell in a direction defined from a proximal radial edge to a distal radial edge of one of the plurality of baffles. In some embodiments, coupling the first plurality of seal strips may further include spacing an inner diameter of each of the first plurality of seal strips from an outer diameter of a nearest one of the plurality of axially extending tubes by a distance equal to the distance between the outer diameters of two adjacent tubes of the plurality of axially extending tubes. And, in some embodiments, coupling the first plurality of seal strips may further include rotatingly offsetting each of the first plurality of seal strips coupled to a distal side of each of the plurality of baffles from each of the plurality of seal strips coupled to a proximal side of each of the plurality of baffles.
[0026] The method of assembly may further include coupling a second plurality of sealing strips having first and second ends radially between the shell and the plurality of axially extending tubes, wherein coupling the second plurality of sealing strips may include coupling a first end of each of the second plurality of sealing strips to a distal proximal radial edge of one of the plurality of baffles and coupling a second end of each of the second plurality of sealing strips to a proximal distal radial edge of another of the plurality of baffles, each of the second plurality of sealing strips extending parallel to the longitudinal axis of the shell.
[0027] In another aspect, embodiments herein are directed to a heat exchanger. The heat exchanger may include a shell having a longitudinal axis and configured to receive a first fluid; a plurality of baffles mounted within the shell at an angle to the longitudinal axis and spaced apart from one another along the longitudinal axis and configured to direct flow of the first fluid along a spiral pattern through the shell, each baffle having an outer circumferential edge, a proximal radial edge spaced apart from a distal radial edge, a proximal side opposite the distal side, and a plurality of spaced apart holes formed through each baffle from the proximal side to the distal side, the holes configured to be traversed by a plurality of axially extending tubes, the tubes configured to carry a second fluid; and a plurality of sealing members each having a first end and a second end, the sealing members disposed radially between the shell and the plurality of axially extending tubes, the first end of each sealing member being coupled to a distal side of a respective baffle and the second end of each sealing member being coupled to a proximal side of a respective baffle. In some embodiments, the sealing member may include a sealing strip or a sealing rod.
[0028] In another aspect, embodiments herein are directed to a heat exchanger including a shell having a longitudinal axis, the shell configured to receive a first fluid, wherein a plurality of baffles are arranged at a helix angle H to direct the first fluid flow through the shell in a helical pattern. BEach of the plurality of baffles may include an outer circumferential edge spaced longitudinally from the outer circumferential edge positions of the remaining plurality of baffles, a proximal radial edge spaced from the distal radial edge, a proximal side opposite the distal side, and a plurality of spaced apart holes configured to be traversed by a plurality of axially extending tubes configured to carry a second fluid. A first plurality of circumferentially offset seal strips, each having a first end and a second end, may be radially disposed between the shell and the plurality of axially extending tubes, each positioned between any two adjacent baffles. In some embodiments, each of the plurality of baffles is connected to at least two of the first plurality of seal strips, including a distal seal strip connected to a distal side of the baffle and a proximal seal strip connected to a proximal side of the same baffle, the proximal seal strip being circumferentially offset from the distal seal strip. In some embodiments, each of the first plurality of seal strips may be parallel to the longitudinal axis of the exchanger.
[0029] Other aspects and advantages of the present invention will be apparent from the following description and appended claims. The present invention provides, for example, the following. (Item 1) 1. A heat exchanger comprising: a shell having a longitudinal axis and configured to receive a first fluid; a plurality of baffles, the plurality of baffles arranged at a helix angle H to direct a first fluid flow through the shell in a helical pattern; B and each of the plurality of baffles is mounted in the shell, an outer circumferential edge spaced longitudinally from the outer circumferential edge locations of the remainder of the plurality of baffles; a proximal radial edge spaced from a distal radial edge; From the distal side to the opposite proximal side, a plurality of spaced apart holes configured to be traversed by a plurality of axially extending tubes configured to carry a second fluid; a plurality of baffles, a first plurality of seal strips, each having a first end and a second end radially disposed between the shell and the plurality of axially extending tubes, each of the first plurality of seal strips positioned between any two adjacent baffles; Equipped with Each of the first plurality of sealing strips has a baffle helix angle H greater than 5° B Helix angle H is less than s wherein the plurality of baffles are arranged from a proximal end to a distal end of the plurality of baffles; The helix angle H B and H s is defined as the angle of the individual baffle or seal strip relative to the longitudinal axis of the shell. (Item 2) Item 10. The heat exchanger of claim 1, wherein the sealing strip is configured to partially direct fluid flow in a spiral toward an outlet and partially direct fluid flow away from the shell and toward the plurality of axially extending tubes. (Item 3) the first plurality of sealing strips are disposed from a distal side of a first baffle adjacent to a proximal radial edge of the first baffle to a proximal side of a second baffle adjacent to a distal radial edge of the second baffle, the first and second baffles being located within the same sector or quadrant; or the first plurality of sealing strips are disposed from a distal side of the first baffle intermediate the proximal and distal radial edges of the first baffle to a proximal side of the second baffle intermediate the proximal and distal radial edges of the second baffle, the second baffle being located in a different sector or quadrant than the first baffle; Item 1. The heat exchanger according to item 1. (Item 4) 2. The heat exchanger of claim 1, wherein a first end of each of the first plurality of sealing strips is coupled to a distal side of a first one of the plurality of baffles, and a second end of each of the first plurality of sealing strips is coupled to a proximal side of a second one of the plurality of baffles. (Item 5) Item 2. The heat exchanger according to item 1, wherein the plurality of baffles are elliptical sector-shaped baffles. (Item 6) Item 1. The heat exchanger of item 1, wherein the first plurality of sealing strips have an inner surface and an outer surface, and the first plurality of sealing strips are angled from the outer surface to the inner surface by an angle from perpendicular to the shell in a direction defined from a proximal radial edge to a distal radial edge of one of the plurality of baffles. (Item 7) 7. The heat exchanger of claim 6, wherein each of the first plurality of sealing strips is angled from 15° up to 45° from perpendicular to the shell. (Item 8) Item 2. The heat exchanger of item 1, wherein an outer surface of each of the first plurality of sealing strips is positioned generally adjacent to an inner surface of the shell. (Item 9) Item 10. The heat exchanger of claim 1, wherein an inner surface of each of the first plurality of sealing strips is spaced from an outer surface of a nearest tube of the plurality of axially extending tubes by a distance equal to the distance between outer diameters of two adjacent tubes of the plurality of axially extending tubes. (Item 10) Item 1, wherein each of the plurality of baffles includes at least one of the first plurality of sealing strips coupled to the proximal side and at least one of the first plurality of sealing strips coupled to the distal side. (Item 11) 2. The heat exchanger of claim 1, wherein each of the first plurality of sealing strips coupled to a distal side of each of the plurality of baffles is rotationally offset about the longitudinal axis from each of the first plurality of sealing strips coupled to a proximal side of each of the plurality of baffles. (Item 12) Item 1. The heat exchanger of item 1, wherein each of the first plurality of sealing strips has a curved outer diameter with a curvature that is elliptical, and / or each of the first plurality of sealing strips has a curved inner diameter with a curvature that is elliptical. (Item 13) Item 1, wherein each of the first plurality of sealing strips has a width that is an outer diameter minus an inner diameter that varies along the length of the sealing strip from the first end to the second end, and / or each of the first plurality of sealing strips has a depth from proximal to distal that varies along the width or length of the sealing strip. (Item 14) Item 10. The heat exchanger of claim 1, wherein an equal number of sealing strips are coupled to each baffle of the plurality of baffles. (Item 15) Item 1. The heat exchanger of item 1, wherein the number of sealing strips per revolution about the longitudinal axis of the shell is a multiple of the number of baffles per revolution about the longitudinal axis of the shell. (Item 16) Item 10. The heat exchanger of claim 1, wherein the first plurality of sealing strips are formed from steel. (Item 17) a second plurality of seal strips, each having a first end and a second end radially disposed between the shell and the plurality of axially extending tubes, each positioned between any two baffles; Furthermore, Each of the second plurality of sealing strips has a helix angle H greater than 5° s Unlike the baffle helix angle H BHelix angle H is less than 2s wherein the plurality of baffles are arranged from a proximal end to a distal end of the plurality of baffles; The helix angle H B , H s , H 2s is defined as the angle of the individual baffle or seal strip relative to the longitudinal axis of the shell; Item 1. The heat exchanger according to item 1. (Item 18) a second plurality of seal strips, each having a first end and a second end radially disposed between the shell and the plurality of axially extending tubes, each positioned between any two adjacent baffles; Furthermore, each of the second plurality of sealing strips is disposed from a proximal radial edge of a baffle to a distal radial edge of an adjacent baffle; Item 1. The heat exchanger according to item 1. (Item 19) Item 19. The heat exchanger of item 18, wherein an inner surface of each of the second plurality of sealing strips is spaced from an outer surface of a nearest tube of the plurality of axially extending tubes by a distance equal to the distance between outer diameters of two adjacent tubes of the plurality of axially extending tubes. (Item 20) 1. A method of assembling a heat exchanger, the method comprising: providing a central rod having a longitudinal axis; mounting a plurality of elliptical sector-shaped baffles on the central rod at an angle relative to a longitudinal axis of the central rod such that a spiral pattern is formed by the plurality of baffles, each of the plurality of baffles comprising: an outer circumferential edge spaced longitudinally from the outer circumferential edge locations of the remainder of the plurality of baffles; a proximal radial edge spaced from a distal radial edge; From the distal side to the opposite proximal side, a plurality of spaced apart holes; and disposing a plurality of axially extending tubes within the plurality of spaced apart holes of each of the plurality of baffles, the plurality of axially extending tubes configured to carry a second fluid; and coupling a first plurality of sealing strips radially between the shell and the plurality of axially extending tubes, each sealing strip having a first end and a second end, wherein coupling the first plurality of sealing strips includes: coupling a first end of each of the first plurality of sealing strips proximate to one of the plurality of baffles; and coupling a second end of each of the first plurality of sealing strips to another more distal one of the plurality of baffles, wherein each of the first plurality of sealing strips is greater than 5° and has a baffle helix angle H B Helix angle H is less than s wherein the plurality of baffles are arranged from a proximal end to a distal end of the plurality of baffles; The helix angle H B and H s is defined as the angle of the individual baffle or seal strip relative to the longitudinal axis of the shell; and disposing the assembled center rod, a plurality of baffles, a plurality of axially extending tubes, and a first plurality of seal strips within a shell configured to receive a first fluid; A method comprising: (Item 21) The joined first plurality of seal strips have an inner surface and an outer surface, and joining the first plurality of seal strips further comprises: angling the coupled first plurality of sealing strips from the outer surface to the inner surface at an angle from perpendicular to the shell in a direction defined from a proximal radial edge to a distal radial edge of one of the plurality of baffles. 21. A method of assembly according to item 20, comprising: (Item 22) Coupling the first plurality of sealing strips further comprises: spacing an inner surface of each of the first plurality of sealing strips from an outer surface of a nearest one of the plurality of axially extending tubes by a distance equal to a distance between outer diameters of two adjacent ones of the plurality of axially extending tubes; 21. A method of assembly according to item 20, comprising: (Item 23) Coupling the first plurality of sealing strips further comprises: Rotatingly offsetting each of the first plurality of sealing strips coupled to a distal side of each of the plurality of baffles from each of the first plurality of sealing strips coupled to a proximal side of each of the plurality of baffles. 21. A method of assembly according to item 20, comprising: (Item 24) and further coupling a second plurality of sealing strips having a first end and a second end radially between the shell and the plurality of axially extending tubes, wherein coupling the second plurality of sealing strips comprises: coupling a first end of each of the second plurality of sealing strips to a distal proximal radial edge of one of the plurality of baffles; coupling a second end of each of the second plurality of sealing strips to a proximal, distal radial edge of another of the plurality of baffles; each of the second plurality of sealing strips extending parallel to a longitudinal axis of the shell; 21. A method of assembly according to item 20. (Item 25) 1. A heat exchanger comprising: a shell having a longitudinal axis and configured to receive a first fluid; a plurality of baffles mounted within the shell at an angle relative to the longitudinal axis, spaced apart from one another along the longitudinal axis, and configured to direct flow of the first fluid along a helical pattern through the shell, each of the baffles comprising: an outer circumferential edge; a proximal radial edge spaced from a distal radial edge; From the distal side to the opposite proximal side, a plurality of spaced apart holes formed through each baffle from the proximal side to the distal side, the holes configured to be traversed by a plurality of axially extending tubes, the tubes configured to carry a second fluid; and a plurality of baffles, a plurality of seal members, each seal member having a first end and a second end, the seal members being radially disposed between the shell and the plurality of axially extending tubes, the first end of each seal member being coupled to a distal side of a respective baffle and the second end of each seal member being coupled to a proximal side of a respective baffle; A heat exchanger comprising: (Item 26) Item 26. The heat exchanger of item 25, wherein the sealing member comprises a sealing strip or a sealing rod. (Item 27) 1. A heat exchanger comprising: a shell having a longitudinal axis and configured to receive a first fluid; a plurality of baffles, the plurality of baffles arranged at a helix angle H to direct a first fluid flow through the shell in a helical pattern; B and each of the plurality of baffles is mounted in the shell, an outer circumferential edge spaced longitudinally from the outer circumferential edge locations of the remainder of the plurality of baffles; a proximal radial edge spaced from a distal radial edge; From the distal side to the opposite proximal side, a plurality of spaced apart holes configured to be traversed by a plurality of axially extending tubes configured to carry a second fluid; a plurality of baffles, a first plurality of circumferentially offset seal strips, each having a first end and a second end radially disposed between the shell and the plurality of axially extending tubes, each positioned between any two adjacent baffles; A heat exchanger comprising: (Item 28) 28. The heat exchanger of claim 27, wherein each of the plurality of baffles is connected to at least two of the first plurality of seal strips, including a distal seal strip connected to a distal side of the baffle and a proximal seal strip connected to a proximal side of the same baffle, the proximal seal strip being circumferentially offset from the distal seal strip. (Item 29) Item 28. The heat exchanger of item 27, wherein each of the first plurality of sealing strips is parallel to a longitudinal axis of the heat exchanger. [Brief explanation of the drawings]
[0030] [Figure 1] FIG. 1 illustrates a diagram of flow distribution within a conventional shell-and-tube heat exchanger.
[0031] [Figure 2] FIG. 2 illustrates a diagrammatic perspective view of a heat exchanger according to one or more embodiments of the present disclosure.
[0032] [Figure 3] FIG. 3 illustrates a perspective view of a baffle cage of a heat exchanger according to one or more embodiments of the present disclosure.
[0033] [Figure 4] 4A and 4B illustrate perspective views of a baffle of a heat exchanger according to one or more embodiments of the present disclosure.
[0034] [Figure 5A]5A-5E illustrate multiple views of a heat exchanger according to one or more embodiments of the present disclosure. [Figure 5B] 5A-5E illustrate multiple views of a heat exchanger according to one or more embodiments of the present disclosure. [Figure 5C] 5A-5E illustrate multiple views of a heat exchanger according to one or more embodiments of the present disclosure. [Figure 5D] 5A-5E illustrate multiple views of a heat exchanger according to one or more embodiments of the present disclosure. [Figure 5E] 5A-5E illustrate multiple views of a heat exchanger according to one or more embodiments of the present disclosure.
[0035] [Figure 6A] 6A-6D illustrate perspective views of a heat exchanger according to several embodiments of the present disclosure. [Figure 6B] 6A-6D illustrate perspective views of a heat exchanger according to several embodiments of the present disclosure. [Figure 6C] 6A-6D illustrate perspective views of a heat exchanger according to several embodiments of the present disclosure. [Figure 6D] 6A-6D illustrate perspective views of a heat exchanger according to several embodiments of the present disclosure.
[0036] [Figure 7] FIG. 7 illustrates a side view of a heat exchanger according to one or more embodiments of the present disclosure.
[0037] [Figure 8] FIG. 8 illustrates a side view of a heat exchanger according to one or more embodiments of the present disclosure.
[0038] [Figure 9] FIG. 9 illustrates a side view of a heat exchanger according to one or more embodiments of the present disclosure.
[0039] [Figure 10]FIG. 10 is a graphical representation of data comparing a heat exchanger according to an embodiment herein with a prior art heat exchanger. DETAILED DESCRIPTION OF THE INVENTION
[0040] Embodiments of the present disclosure are described in detail below with reference to the accompanying drawings. Like elements in various drawings may be represented by like reference numerals for consistency. Furthermore, in the following detailed description, numerous specific details are set forth to provide a more thorough understanding of the claimed subject matter. However, it will be apparent to those skilled in the art that the described embodiments may be practiced without these specific details. In other instances, well-known features have not been described in detail to avoid unnecessarily complicating the description.
[0041] Referring to FIG. 2 , in one or more embodiments, a spirally baffled heat exchanger 200 according to one or more embodiments of the present disclosure is shown. The heat exchanger 200 may include a shell 220 through which a first fluid is passed, a plurality of axially extending tubes 230 through which a second fluid is passed, and a plurality of elliptical sector-shaped baffles 240. By “elliptical sector-shaped,” it is understood that the baffles take the general form of an elliptical sector, which geometrically includes the area bounded by the arc of a circle and the line segments connecting the center (origin) of the ellipse and the endpoints of the arc, but may not include the entire sector, taking into account other components of the heat exchanger (such as tubes) and the manner of arrangement of the baffles (e.g., encompassing or abutting a central tube, or accommodating tubes along the periphery of the elliptical sector, as illustrated in FIGS. 3 and 4 ).
[0042] Shell 220 may include an inlet 228 and an outlet 229 between which a first fluid may pass into shell 220. Baffles 240 may each be positioned at an angle λ relative to a line (NN) normal to longitudinal axis 221 of shell 220 to direct first fluid flow 222 in a spiral pattern 231 across shell 220 from inlet 228 to outlet 229. The spiral pattern 231 of first fluid flow 222 may enable efficient conversion of available pressure drop to heat transfer and may reduce the risk of vibration due to the fact that unsupported tube length is minimized. In one or more embodiments, there may be no dead spots for fouling along first fluid flow 222, and the amount of heat transfer may be increased due to the elimination of vortices or backmixing. Additionally, in one or more embodiments, the direction of first fluid flow 222 may be opposite to the direction of second fluid flow 232 within tube 230. In other words, in one or more embodiments, the second fluid may flow in a direction that is substantially from the outlet 229 to the inlet 228. Additionally, while the baffles 240 as shown in Figure 2 are flat, in one or more embodiments, the opposite side of each baffle may be curved to direct the first fluid flow 222 along a spiral pattern.
[0043] Referring now to FIG. 3 , a baffle cage 341 is shown in accordance with one or more embodiments of the present disclosure. The baffle cage 341 may include successive baffles 340 positioned at an angle from normal to a longitudinal axis (not shown) of the baffle cage 341, and the successive baffles 340 may be rotationally offset longitudinally from one another such that a spiral pattern is formed. The rotational offset between the successive baffles 340 may be such that at least the proximal radial edge 344 of one baffle 340 overlaps or abuts the distal radial edge 345 of a longitudinally adjacent baffle 340. For example, FIG. 3 illustrates an embodiment in which the proximal radial edge 344 of each baffle 340 overlaps the distal edge 345 of the successive baffle 340. In one or more embodiments, the proximal radial edge 344 of each baffle 340 may be the radial edge of the baffle 340 axially closest to the inlet (not shown) of the heat exchanger shell (not shown), and the distal radial edge 345 of each baffle 340 may be the radial edge of the baffle 340 axially farthest from the inlet of the heat exchanger shell. Furthermore, in one or more embodiments, there may be an equal number of baffles 340 per 360° rotation about the longitudinal axis about which the baffles 340 are disposed. Furthermore, the baffles 340 may support multiple tubes 330 and direct the first fluid flow (not shown) in a helical path. Additionally, in one or more embodiments, the baffles 340 may be interconnected by multiple rods 342. Spacers 349 may optionally be used during construction to ensure baffle spacing. As shown, the spacers 349 are rectangular, although other shapes may also be used. 3 , in one or more embodiments, each baffle 340 may have an outer circumferential edge 343, and each outer circumferential edge 343 may be spaced apart from the outer circumferential edge 343 of an adjacent baffle 340. Each baffle may also include a proximal radial edge 344 at one end of the outer circumferential edge 343 and a distal radial edge 345 at the other end of the outer circumferential edge 343, such that the elliptical sector-shaped baffle 340 is defined by the outer circumferential edge 343, the proximal radial edge 344, and the distal radial edge 345.Additionally, each baffle may have a proximal side 346 and a distal side 347 opposite one another, and a plurality of spaced-apart holes 348 extending through the baffle 340 from the proximal side 346 to the distal side 347. In one or more embodiments, the proximal side 346 of each baffle 340 may be the side of the baffle 340 axially closest to the inlet of the heat exchanger shell, and the distal side 347 may be the side of each baffle 340 axially farthest from the inlet of the heat exchanger shell. One tube 330 of the plurality of axially extending tubes 330 may pass through each of the holes 348 in the baffle 340. In one or more embodiments, the holes 348 of one baffle 340 may align with holes on another baffle 340 such that the axially extending tube 330 may fit through the hole 348 and be supported by the plurality of baffles 340. Note that although not shown on all baffles 340, each baffle 340 may contain through holes 348.
[0044] 3, the tubes 330 and through-holes 348 do not extend to the circumferential edge 343. Thus, when disposed within a shell (not shown), a gap will exist between the shell and the outermost tube 330. Tube cage 341, according to embodiments herein, may include a plurality of sealing rods or strips 350 positioned at an angle such that fluid flowing through the shell is directed at least partially back toward the tubes 330. The strips 350 may thus provide the dual function of improved sealing and structural support, reducing the amount of fluid that may bypass the plurality of tubes while also supporting the structure of the cage 341.
[0045] In addition to the sealing and structural support functions of strips 350, which may be referred to herein as sealing strips, strips 350 may be positioned in a manner to provide a sealing function with a small pressure drop and a flow barrier to prevent fluid from flowing in the gap between tubes 330 and baffle edges 343 throughout the spiral flow path. The flow barrier function may alternatively be obtained through the use of other structures, such as longitudinal strips having a generally rectangular shape, positioned to effectively block the space between the tube bundle and the shell; however, such a flow barrier would come at the expense of a significant pressure drop. In contrast to longitudinal strips, embodiments herein are directed to strips that are designed and oriented to provide improved sealing, structural support, and a relatively small pressure drop, as will be more fully described below.
[0046] Rods 342, as described above, are optional and may additionally be used to support the baffles during tube insertion. Thus, although rods are shown interconnecting the baffles in FIG. 3, in one or more embodiments of the present disclosure, rods are not required to support and interconnect the baffles 340. Instead, as shown and described in further detail below, in one or more embodiments, strips may be used to support and interconnect the baffles about a central rod.
[0047] 4A and 4B, a baffle 440 is shown according to one or more embodiments of the present disclosure. In one or more embodiments, multiple baffles 440 may be coupled to a central rod 423 within a shell (not shown) of a heat exchanger (not shown). Successive baffles 440 may be positioned at an angle from a normal to the longitudinal axis 424 of the central rod 423, and the successive baffles 440 may be rotationally offset longitudinally from one another so that a helical pattern is formed. The rotational offset between successive baffles 440 may be such that at least a proximal radial edge 444 of one baffle 440 overlaps a distal radial edge 445 of a longitudinally adjacent baffle 440. In one or more embodiments, the proximal radial edge 444 of each baffle 440 may be the radial edge of the baffle 440 that is axially closest to an inlet (not shown) of the heat exchanger shell (not shown), and the distal radial edge 445 of each baffle 440 may be the radial edge of the baffle 440 that is axially farthest from the inlet of the heat exchanger shell.
[0048] 4A and 4B , in one or more embodiments, the baffles 440 may be elliptical sector-shaped. Each baffle 440 may have an outer circumferential edge 443, and each outer circumferential edge 443 may be spaced apart from the outer circumferential edge 443 of an adjacent baffle 440. Each baffle may also include a proximal radial edge 444 at one end of the outer circumferential edge 443 and a distal radial edge 445 at the other end of the outer circumferential edge 443, such that the elliptical sector-shaped baffle 440 is defined by the outer circumferential edge 443, the proximal radial edge 444, and the distal radial edge 445. Furthermore, each baffle may have a proximal side 446 and a distal side 447 opposite each other, and a plurality of spaced-apart holes 448 extending through the baffle 440 from the first side 446 to the second side 447. In one or more embodiments, the proximal side 446 of each baffle 440 may be the side of the baffle 440 closest to the inlet of the heat exchanger shell, and the distal side 447 may be the side of each baffle 440 farthest from the inlet of the heat exchanger shell. One of multiple axially extending tubes (not shown) may pass through a hole 448 in the baffle 440. In one or more embodiments, the hole 448 of one baffle 440 may align with a hole on another baffle (not shown) so that the axially extending tube may be supported by multiple baffles. Additionally, in one or more embodiments, the baffles 440 may each include a central hole 449 at the intersection between the proximal radial edge 444 and the distal radial edge 445 through which the central rod 423 may pass to couple each of the baffles 440 to the central rod 423. Although only a few holes 448 are illustrated in Figures 4A / B, one skilled in the art will understand that each baffle includes multiple holes similar to those illustrated in Figures 3 or 5B, for example.
[0049] The central hole 449 of each baffle 440 may be uniquely angled such that the baffle 440 is positioned at an angle from normal to the longitudinal axis 424 of the central rod 423. Additionally, in some embodiments, the baffle angle may vary along the length of the heat exchanger, such as when a proximal baffle is positioned at a first angle relative to the longitudinal axis and a more distal baffle is positioned at a different angle relative to the longitudinal axis. As another example, a proximal baffle may be positioned at a first angle relative to the longitudinal axis, and more distal baffles may be positioned successively at increasing or decreasing angles relative to the longitudinal axis.
[0050] 5A-5E, multiple views of a heat exchanger 500 are shown in accordance with one or more embodiments of the present disclosure. In one or more embodiments, the heat exchanger 500 may include a shell 520 (FIG. 5B) through which a first fluid is passed, a plurality of axially extending tubes 530 through which a second fluid is passed, a plurality of elliptical sector-shaped baffles 540, and a first plurality of sealing strips 550 disposed between the baffles 540. The shell 520 may include an inlet (not shown) and an outlet (not shown) between which the first fluid may pass into the shell 520. Furthermore, the plurality of tubes 530, the plurality of baffles 540, and the first plurality of sealing strips 550 may be disposed within the shell 520.
[0051] 5A and 5B, in one or more embodiments, multiple baffles 540 may be arranged such that successive baffles 540 are positioned at an angle from a line normal to the longitudinal axis 521 of the shell 520. In one or more embodiments, the baffles 540 may be coupled to and arranged around the central rod 523, and the successive baffles 540 may be rotationally longitudinally offset from one another such that a spiral pattern is formed. The rotational offset between successive baffles 540 may be such that at least the proximal radial edge 544 of one baffle 540 abuts or overlaps the distal radial edge 545 of a longitudinally adjacent baffle 540. In one or more embodiments, the proximal radial edge 544 of each baffle 540 may be the radial edge of the baffle 540 axially closest to the inlet of the shell 520 of the heat exchanger 500, and the distal radial edge 545 of each baffle 540 may be the radial edge of the baffle 540 axially farthest from the inlet of the shell 520 of the heat exchanger 500. Further, in one or more embodiments, there may be an equal number of baffles 540 per 360° rotation about the longitudinal axis 521 around which the baffles 540 are disposed. For example, in one or more embodiments, there may be four baffles 540 per 360° rotation about the longitudinal axis 521 of the shell 520. Although four elliptical sector-shaped baffles per 360° rotation about the longitudinal axis of the shell are shown, in one or more embodiments, any number of baffles of various shapes may be utilized per 360° rotation about the longitudinal axis of the shell, so long as the baffles are offset in the longitudinal direction such that a spiral flow path is formed.
[0052] 5A and 5B , in one or more embodiments, the baffles 540 may be elliptical sector-shaped. Each baffle 540 may have an outer circumferential edge 543, and each outer circumferential edge 543 may be spaced apart from the outer circumferential edge 543 of an adjacent baffle 540. Each baffle 540 may also include a proximal radial edge 544 at one end of the outer circumferential edge 543 and a distal radial edge 545 at the other end of the outer circumferential edge 543, such that the elliptical sector-shaped baffle 540 is defined by the outer circumferential edge 543, the proximal radial edge 544, and the distal radial edge 545. Furthermore, each baffle 540 may have a proximal side 546 and a distal side 547 opposite each other, and a plurality of spaced-apart holes 548 extending through the baffle 540 from the proximal side 546 to the distal side 547. In one or more embodiments, the proximal side 546 of each baffle 540 may be the side of the baffle 540 that is axially closest to the inlet of the shell 520 of the heat exchanger 500, and the distal side 547 may be the side of each baffle 540 that is axially farthest from the inlet of the shell 520 of the heat exchanger 500.
[0053] In one or more embodiments, one tube 530 of the plurality of axially extending tubes 530 may pass through a hole 548 in a baffle 540, and the direction of the second fluid flow in the tube 530 may be opposite to the direction of the first fluid flow from the shell inlet to the shell outlet. Further, in one or more embodiments, the hole 548 in one baffle 540 may align with a hole on another baffle 540 such that the tubes 530 may extend axially along the entire length of the heat exchanger 500 and each of the tubes 530 may be supported by the plurality of baffles 540. Furthermore, the distance 534 between the outer diameters 535 of each of the tubes 530 disposed in each of the holes 548 may be consistent across the entirety of the plurality of tubes 530. Additionally, as discussed above, in one or more embodiments, baffles 540 may each include a central hole 549 at the intersection between first radial edge 544 and second radial edge 545 through which central rod 523 may pass to couple each of baffles 540 to central rod 523. Central hole 549 of each baffle 540 may be uniquely angled such that baffle 540 is positioned at an angle from a line normal to longitudinal axis 521 of shell 520.
[0054] 5A-5E , in one or more embodiments, each of the first plurality of seal strips 550 may be disposed between a first baffle 540 and a corresponding successive baffle 540 that is at least a full 360° rotation from the first baffle 540. Furthermore, each of the first plurality of seal strips 550 may be disposed radially between the plurality of tubes 530 and the inner surface 525 of the shell 520. In one or more embodiments, the inner surface 525 may have a diameter 590. Furthermore, in one or more embodiments, each of the first plurality of seal strips 550 may be coupled to each of the first baffle 540 and the corresponding successive baffle 540. In one or more embodiments, the first plurality of seal strips 550 may be disposed such that each of the first plurality of seal strips 550 is substantially perpendicular to the helical path defined by the baffles in the shell 520 of the heat exchanger 500. 5A, 5D, and 5E, in one or more embodiments, a first end 551 of each of the first plurality of sealing strips 550 may be coupled to a distal side 547 of one of the plurality of baffles 540 between a proximal radial edge 544 and a distal radial edge 545, and a second end 552 of each of the first plurality of sealing strips 550 may be coupled to a proximal side 546 of another of the plurality of baffles 540 between the proximal radial edge 544 and the distal radial edge 545.
[0055] As shown in FIGS. 5A and 5D , in one or more embodiments, each of the first plurality of sealing strips 550 may be positioned orthogonally to both the distal side 547 of one baffle 540 and the proximal side 546 of another baffle 540. As shown in FIG. 5E , in other embodiments, each of the plurality of sealing strips 550 may be connected between two baffles 540. As illustrated in FIG. 5E , the sealing strips 550 may be positioned such that an angle is formed between the sealing strip 550 and a line perpendicular to the proximal side 546 of one baffle 540 and the distal side of the other baffle 540. In some embodiments, the angle 595 may be greater than 0° to a maximum of 80°. In further embodiments, the angle 595 may be one of greater than 0° to a maximum of 30°, 15° to a maximum of 45°, 45° to a maximum of 80°, or 15° to a maximum of 30°. Due to possible leakage of the first fluid between successive ones of the plurality of baffles 540, the first fluid flow direction 522 may vary slightly from the helical path formed by the plurality of baffles 540. Furthermore, due to this possible difference in the first fluid flow direction, the angle 595 of the seal strips 550 may vary such that each of the first plurality of seal strips 550 may be perpendicular to the helical first fluid flow direction 522.
[0056] 5A and 5B, the baffles 540 may be arranged in four quadrants. In some embodiments, a sealing strip 550 may connect a first baffle 540 to a second baffle 540 in the same quadrant (or the same sector, where no more than four baffles are used per 360° rotation). The sealing strip may connect from the distal side 547 of the first baffle 540 to the proximal side 546 of the second baffle 540 at a point adjacent the distal edge 545 of the second baffle 540, as described above. For example, the sealing strip may connect the distal side 547 of the first baffle 540 from adjacent to the proximal edge 544 of the first baffle to the proximal side 546 of the second baffle adjacent the distal edge 545 of the second baffle. As another example, the sealing strip may connect the distal side 547 of the first baffle 540 from adjacent to the proximal edge 544 of the first baffle to the proximal side 546 of the second baffle adjacent to the proximal edge 544 of the second baffle.
[0057] In some embodiments, a sealing strip 550 may connect a first baffle 540 to a second baffle 540 in adjacent quadrants (segments). The sealing strip may connect from the distal side 547 of the first baffle 540 to the proximal side 546 of the second baffle 540, as described above. For example, in some embodiments, the sealing strip may connect the distal side 547 of the first baffle 540 from intermediate the proximal and distal edges 544 and 545 of the first baffle to the proximal side 546 of the second baffle intermediate the proximal and distal edges 544 and 545 of the second baffle.
[0058] In other embodiments, the heat exchanger may include some seal strips 550 connecting between baffles 540 in the same quadrant, while other seal strips 550 may connect between baffles 540 in adjacent quadrants.
[0059] In some embodiments, improved heat exchange and reduced pressure drop can be achieved when the sealing strip 550 can partially direct the flow helically toward the outlet, as shown in FIG. 5E. In other words, the sealing strip 550 can be adjusted to the helix angle H of the baffle 540. B Helix angle H less than s , where the helix angle is defined as the angle of the baffle or seal strip relative to the longitudinal axis of the heat exchanger. In some embodiments, the seal strip helix angle H s may range from greater than 0° to 80°, such as from a lower limit of 5°, 10°, 15°, 20°, 25°, 30°, 35°, 40°, or 45°, to an upper limit of 25°, 30°, 40°, 45°, 50°, 60°, 70°, 75°, or 80°, and any lower limit may be combined with any larger upper limit, according to embodiments herein. In some embodiments, the helix angle H of the baffle B Helix angle H exceeds s It has been found that strips having a baffle angle H can impede the spiral flow path of the fluid (i.e., tend to drive the flow back towards the inlet) while providing a better seal. In contrast, where the sealing strip encourages spiral flow, an adequate seal is provided while both reducing pressure drop (relative to a conventional seal) and improving heat transfer results. In various embodiments, a baffle angle H B can be consistent or can vary along the length of the heat exchanger. When various baffle angles are used, for example, the proximal baffle may be positioned at a first angle (H B1 , not shown), with the more distal baffle being arranged at a second, different angle (H B2 As another example, the proximal baffle may be positioned at a first angle relative to the longitudinal axis, with more distal baffles positioned at increasing or decreasing angles (H B1 <H B2 <H B3 etc.) may be arranged consecutively.
[0060] As described above, in one or more embodiments, the first plurality of seal strips 550 may be positioned such that each of the first plurality of seal strips 550 is perpendicular or nearly perpendicular to the helical path defined by the baffles within the shell 520 of the heat exchanger 500. In other embodiments, due to possible differences in leakage and first fluid flow direction, the angle 595 of the seal strips 550 may be varied such that each of the first plurality of seal strips 550 may be perpendicular to the helical first fluid flow direction. While it is desirable for the fluid to flow as close to the geometrical conductor as possible, it is recognized herein that this is not always the case. Thus, the fluid flow path may not be perpendicular to the seal strips 550 as shown. The amount of leakage and change in first fluid flow direction may also vary depending on the nature of the fluid being conveyed and the dimensions of the well and baffles. Embodiments herein may therefore include estimating the first fluid flow direction, such as by computational fluid dynamics or other simulations or experimental investigations, so that the angle of the strips 550 can be arranged to account for expected differences between the geometric spiral conductor and the actual fluid path, so that the strips are perpendicular to the flow.
[0061] While the embodiments shown in Figures 5A-5E may include multiple sealing strips that are all positioned at the same angle between one baffle and another, in one or more embodiments, the sealing strips may be positioned at different angles within the heat exchanger. In other words, in one or more embodiments, one sealing strip of the multiple sealing strips may be positioned perpendicular to both the distal side of one baffle and the proximal side of another baffle, and another sealing strip of the multiple sealing strips may be positioned at an angle from perpendicular to the proximal side of one baffle and the distal side of the other baffle, where the angle may be greater than 0° and up to 80°. Thus, in one or more embodiments, all of the sealing strips may be positioned with the same angular orientation between the baffles, while in other embodiments, a combination of sealing strips with different angular orientations may be used. Furthermore, in one or more embodiments, sealing strips of a first angular orientation may be used between baffles for the first few revolutions about the longitudinal axis and sealing strips of a second angular orientation may be used between baffles for the remaining revolutions about the longitudinal axis, while in other embodiments, different patterns of sealing strips of the first angular orientation and sealing strips of the second angular orientation may be used. Furthermore, in one or more embodiments, sealing strips of more than two angular orientations may be used in different patterns throughout the heat exchanger.
[0062] 5B and 5C, in one or more embodiments, each of the first plurality of seal strips may have a curved inner surface 553 and a curved outer surface 554. In one or more embodiments, the curved outer surface 554 of each seal strip 550 may be positioned generally proximate to the inner surface 525 of the shell 520. Further, in one or more embodiments, the curved outer surface 554 of one or more of the seal strips 550 may have a clearance of 1 to 5 mm from the inner surface 525 of the shell 520. For example, the curved outer surface 554 of one or more of the seal strips 550 may have a clearance of 3 mm from the inner surface 525 of the shell 520. Additionally, the curvature of the curved outer surface 554 of the seal strips 550 may be elliptical in shape and may match the curvature of the inner surface 525 of the shell 520. While noting that the seal strips may be elliptical, the appearance of the seal strips may vary with angle. For example, H S In the case where H is small, the strips may be nearly straight. S In cases where the shell diameter, the strip will be elliptical. The elliptical shape ensures that the space between the shell and the strip and the space between the tube bundle and the strip, respectively, can be the same along the length of the strip. Furthermore, because the strip is elliptical, the strip can be represented by a minor diameter and a major diameter (not shown), and the shell diameter, the spacing from the shell diameter, and the strip angle H S may define the elliptical nature of the strip.
[0063] Further, in one or more embodiments, the curvature of the curved inner surface 553 of each of the first plurality of seal strips 550 may be elliptical in shape, and the curvature of the inner surface 553 may differ from the curvature of the outer surface 554 of each of the first plurality of seal strips 550. In other words, in one or more embodiments, the curvature of the inner surface 553 of each seal strip 550 may conform to the curvature of an imaginary cylinder with a diameter equal to the diameter 590 of the inner surface 525 of the shell 520 minus the radial width of the seal strip 550. Furthermore, the inner surface 553 of each of the first plurality of seal strips 550 may be spaced from the outer diameter 535 of the nearest tube 530 of the plurality of axially extending tubes 530 by a distance 557. The distance 557 between the inner surface 553 of the seal strip 550 and the outer diameter 535 of the nearest tube 530 may be equal to the distance 534 between the outer diameters 535 of two adjacent tubes 530. Further, the first plurality of seal strips 550 may be angled from the outer surface 554 to the inner surface 553 by an angle 556 from a line 555 perpendicular to the shell 520 in the direction of the first fluid flow 522. For example, in one or more embodiments, the first plurality of seal strips 550, which are disposed perpendicular to the angled baffle 540, may each be angled 15° to 45° from a line 555 perpendicular to the shell 520 such that the first fluid flow 522 contacts the seal strip at an angle between 105° and 135° and is deflected back toward the plurality of tubes 530. Further, the first plurality of seal strips 550 may have a thickness 558, and a larger thickness 558 may be used for a heat exchanger 500 with a larger diameter 590 of the inner surface 525 of the shell 520.
[0064] As described with respect to some embodiments herein, each of the first plurality of seal strips 550 may have a curved outer diameter with an elliptical curvature, and / or each of the first plurality of seal strips may have a curved inner diameter with an elliptical curvature. In other embodiments, the seal strips 550 may be wider in areas where the bundle-shell gap is larger. Because the grid layout of holes through the baffle may not result in a circular pattern for the outermost holes, seal strips with varying widths may provide a better seal. In some embodiments, the width may be achieved by varying the elliptical curvature of each of the seal strip's inner and outer diameters. In other embodiments, the width may be systematically varied to match a contour gap or to provide a consistent contour gap between the seal strip's inner diameters for each individual tube. Similarly, the seal strip depth may be varied. Thus, in various embodiments, each of the first plurality of sealing strips may have a width that is the outer diameter minus the inner diameter that varies along the length from the first end to the second end of the sealing strip, and / or each of the first plurality of sealing strips may have a depth from proximal to distal that varies along the width or length of the sealing strip.
[0065] Additionally, in one or more embodiments, the number of first plurality of seal strips 550 per 360° rotation about the longitudinal axis 521 may be a multiple of the number of baffles per 360° rotation about the longitudinal axis 521. Furthermore, the number of first plurality of seal strips 550 disposed between a baffle 540 and a corresponding consecutive baffle 540 that is a full 360° rotation from the baffle 540 may be equal for all baffles 540 in the plurality of baffles 540. For example, in one or more embodiments, there may be four baffles 540 per 360° rotation about the longitudinal axis 521, and there may be four of the first plurality of seal strips 550 per 360° rotation about the longitudinal axis 521, such that there is one of the first plurality of seal strips 550 per baffle 540 per 360° rotation about the longitudinal axis 521. In other embodiments, there may be four baffles 540 per 360° rotation about the longitudinal axis 521, and there may be eight of the first plurality of seal strips 550 per 360° rotation about the longitudinal axis 521, such that there are two of the first plurality of seal strips 550 per baffle 540 per 360° rotation about the longitudinal axis 521. The number of the first plurality of seal strips 550 per 360° rotation about the longitudinal axis 521 may depend on the size of the inner surface 525 of the shell 520, the number of the plurality of tubes 530 disposed within the heat exchanger, and the distance 534 between the outer diameters 535 of the plurality of tubes 530. In one or more embodiments, there may be one of the first plurality of seal strips 550 disposed within the shell 520 for every 8 to 10 rows of the plurality of tubes 530 disposed within the heat exchanger 500.
[0066] 5A , in one or more embodiments, at least one of the first plurality of seal strips 550 may be coupled to a proximal side 546 of a baffle 540 and at least one of the first plurality of seal strips 550 may be coupled to a distal side 547 of the baffle 540. Additionally, in one or more embodiments, each of the first plurality of seal strips 550 coupled to the distal side 547 of each of the plurality of baffles 540 may be rotationally offset about the longitudinal axis 521 of the shell 520 from each of the first plurality of seal strips 550 coupled to the proximal side 546 of each of the plurality of baffles 540. In one or more embodiments, the rotationally offset seal strips 550 may follow a predetermined pattern along the entire length of the heat exchanger 500. Additionally, although rotationally offset adjacent seal strips 550 are shown in FIG. 5A , in one or more embodiments, adjacent seal strips 550 may be longitudinally aligned along the entire length of the heat exchanger 500. Additionally, in one or more embodiments, the first plurality of seal strips 550 may be formed from steel.
[0067] In yet other embodiments, the first plurality of seal strips 550 may be arranged so that each of the first plurality of seal strips 550 is generally parallel to the longitudinal axis of the heat exchanger (generally parallel being + / - 1° or another slight manufacturing tolerance). When parallel to the longitudinal axis, each seal strip should be connected to a proximal baffle 540 and a longitudinally adjacent distal baffle 540. Compared to previous practices that included holes for seal strips in each baffle plate, using a single long seal strip from one end of the exchanger to the other has been found to provide both a better seal and reduced pressure drop between longitudinally adjacent baffles. In some embodiments, seal strips connected to longitudinally adjacent baffles may be circumferentially offset. For example, each of the plurality of baffles may be connected to at least two seal strips 550, including a distal seal strip 550 connected to the distal side of the baffle and a proximal seal strip 550 connected to the proximal side of the same baffle, with the proximal seal strip being circumferentially offset from the distal seal strip. In some embodiments, the circumferential offset may be at least 10°, at least 15°, or at least 20°, but is necessarily offset by less than the total number of degrees of the individual elliptical sectors of the sector-shaped baffle. The rotationally or circumferentially offset sealing strips may thus include one, two, or more sealing strips connected to the proximal side of the baffle and one, two, or more sealing strips connected to the distal side of the baffle, with the number of sealing strips connected to the distal and proximal sides being equal in some sectors and unequal in other sectors. In some embodiments, an equal number of sealing strips may be coupled to each baffle of the plurality of baffles. In other embodiments, sealing strips may not be coupled to all baffles of the plurality of baffles.For example, in the case where four baffles are used per 360° rotation, including quadrants A, B, C, and D, sealing strips may be used, for example, only in quadrants A and C or B and D; in other embodiments, sealing strips may be used, for example, every three quadrants (sequentially A, D, C, B, A...). The number and placement of sealing strips may depend on the sealing and structural requirements of a particular heat exchanger.
[0068] 6A-6D, a portion of a heat exchanger 600 is shown, according to some embodiments of the present disclosure. As discussed above with respect to FIGS. 5A-5E, in one or more embodiments, the heat exchanger 600 may include a plurality of elliptical sector-shaped baffles 640 and a first plurality of sealing strips 650 disposed between the baffles 640. Each of the first plurality of sealing strips 650 may be disposed between the first baffle 640 and a corresponding successive baffle 640 that is a full 360° rotation from the first baffle 640. Additionally, a first end 651 of each of the first plurality of sealing strips 650 may be coupled to a distal side 647 of one of the plurality of baffles 640 between a proximal radial edge 644 and a distal radial edge 645, and a second end 652 of each of the first plurality of sealing strips 650 may be coupled to a proximal side 646 of another of the plurality of baffles 640 between the proximal radial edge 644 and the distal radial edge 645. In one or more embodiments, the proximal radial edge 644 of each baffle 640 may be the radial edge of the baffle 640 closest to an inlet of the shell of the heat exchanger 600, and the distal radial edge 645 of each baffle 640 may be the radial edge of the baffle 640 farthest from the inlet of the shell of the heat exchanger 600. Similarly, in one or more embodiments, the proximal side 646 of each baffle 640 may be the side of the baffle 640 closest to the inlet of the shell of the heat exchanger 600, and the distal side 647 may be the side of each baffle 640 farthest from the inlet of the shell of the heat exchanger 600.
[0069] 6A , in one or more embodiments, each of the first plurality of sealing strips 650 may be positioned orthogonally to both the distal side 647 of one baffle 640 and the proximal side 646 of another baffle 640. In other embodiments, each of the plurality of sealing strips 650 may be positioned at an angle (not shown) from orthogonal to the proximal side 646 of one baffle 640 and the distal side 647 of the other baffle 640, which angle may be greater than 0° up to 80°.
[0070] 6B , by way of example only, a sealing strip 650 may be connected between a first baffle 640 and a second baffle 640 in the same quadrant. Each of the multiple sealing strips may be disposed at an angle from perpendicular to the proximal side 646 of the first baffle 640, and the angle may be greater than 45° up to 80° in a direction defined from the distal radial edge 645 to the proximal radial edge 644 of the second baffle 640. Further, as discussed above, in other embodiments, the angle may be one of greater than 0° up to 30°, 15° up to 45°, or 15° up to 30°. Due to possible leakage of the first fluid between consecutive ones of the multiple baffles 640, the direction of the first fluid flow may vary slightly from the helical path formed by the multiple baffles 640. Furthermore, due to this possible difference in the first fluid flow direction, the angle of the seal strips 650 may vary such that each of the first plurality of seal strips 650 may be perpendicular to the spiral first fluid flow direction.
[0071] 6C , by way of example only, a sealing strip 650 may be connected between a first baffle 640 in a first quadrant and a second baffle 640 in an adjacent quadrant. Each of the multiple sealing strips may be disposed at an angle from perpendicular to the proximal side 646 of the first baffle 640, and the angle may be greater than 45° and up to 80° in a direction defined from the distal radial edge 645 to the proximal radial edge 644 of the second baffle 640. Further, as discussed above, in other embodiments, the angle may be one of greater than 0° and up to 30°, 15° and up to 45°, or 15° and up to 30° in a direction defined from the distal radial edge 645 to the proximal radial edge 644 of the second baffle 640. Due to possible leakage of the first fluid between consecutive baffles of the plurality of baffles 640, the direction of the first fluid flow may vary slightly from the helical path formed by the plurality of baffles 640. Furthermore, due to this possible difference in the first fluid flow direction, the angle of the seal strips 650 may vary such that each of the first plurality of seal strips 650 may be perpendicular to the helical first fluid flow direction.
[0072] In some embodiments, some sealing strips 650 may be connected between baffles 640 in the same quadrant, as illustrated in FIG. 6B, while other sealing strips 650 may be connected between baffles 640 in adjacent quadrants, as illustrated in FIG. 6C.
[0073] 6A-6C may include multiple sealing strips 650 that are all positioned at the same angle between one baffle 640 and another baffle 640, but with reference to FIG. 6C, in one or more embodiments, the sealing strips 650 may be positioned at different angles (not shown) within the heat exchanger. In other words, with reference to FIG. 6C, in one or more embodiments, one sealing strip 650a of the multiple sealing strips 650 may be positioned perpendicular to both the distal side 647 of one baffle 640 and the proximal side 646 of another baffle 640, and another sealing strip 650b of the multiple sealing strips 650 may be positioned at an angle from perpendicular to the proximal side 646 of one baffle 640 and the distal side 647 of the other baffle 640, where the angle may be greater than 0° and up to 80°. Thus, in one or more embodiments, all of the sealing strips 650 may be positioned between the baffles with the same angular arrangement, while in other embodiments, a combination of sealing strips 650 with different angular arrangements may be used. Furthermore, in one or more embodiments, sealing strips 650a with a first angular arrangement may be used between the baffles 640 for the first few rotations about the longitudinal axis, and sealing strips 650b with a second angular arrangement may be used between the baffles 640 for the remaining rotations about the longitudinal axis, while in other embodiments, different patterns of sealing strips 650a with first angular arrangements and sealing strips 650b with second angular arrangements may be used. Furthermore, in one or more embodiments, sealing strips with more than two angular arrangements may be used throughout the heat exchanger in different patterns. In some embodiments, both the angular arrangement of the sealing strips and the quadrants between which they are arranged may vary within the heat exchanger.
[0074] 7, a portion of a heat exchanger 700 is shown in accordance with one or more embodiments of the present disclosure. In one or more embodiments, the heat exchanger 700 may include a shell (not shown) through which a first fluid is passed, a plurality of axially extending tubes 730 through which a second fluid is passed, a plurality of elliptical sector-shaped baffles 740, and a first plurality of sealing strips 750 disposed between the baffles 740. The shell may include an inlet (not shown) and an outlet (not shown) between which the first fluid may pass into the shell. Further, the plurality of tubes 730, the plurality of baffles 740, and the first plurality of sealing strips 750 may be disposed within the shell.
[0075] 7 , similar to the heat exchangers discussed above, in one or more embodiments, multiple baffles 740 may be arranged such that successive baffles 740 are positioned at an angle from a line normal to the longitudinal axis of the shell (not shown). In one or more embodiments, the baffles 740 may be joined about the longitudinal axis, and successive baffles 740 may be rotationally offset longitudinally from one another such that a spiral pattern is formed. The rotational offset between successive baffles 740 may be such that at least the proximal radial edge 744 of one baffle 740 overlaps the distal radial edge 745 of a longitudinally adjacent baffle 740. In one or more embodiments, the proximal radial edge 744 of each baffle 740 may be the radial edge of the baffle 740 closest to the inlet of the shell of the heat exchanger 700, and the distal radial edge 745 of each baffle 740 may be the radial edge of the baffle 740 farthest from the inlet of the shell of the heat exchanger 700. Additionally, as discussed above, in one or more embodiments, there may be an equal number of baffles 740 per 360° rotation about the longitudinal axis about which the baffles 740 are disposed.
[0076] Still referring to FIG. 7 , in one or more embodiments, the baffles 740 may be elliptical sector-shaped. Each baffle 740 may have an outer circumferential edge 743, and each outer circumferential edge 743 may be spaced apart from the outer circumferential edge 743 of an adjacent baffle 740. Each baffle 740 may also include a proximal radial edge 744 at one end of the outer circumferential edge 743 and a distal radial edge 745 at the other end of the outer circumferential edge 743, such that the elliptical sector-shaped baffle 740 is defined by the outer circumferential edge 743, the proximal radial edge 744, and the distal radial edge 745. Furthermore, each baffle 740 may have a proximal side 746 and a distal side 747 opposite each other, and a plurality of spaced-apart holes (not shown) extending through the baffle 740 from the proximal side 746 to the distal side 747. In one or more embodiments, the proximal side 746 of each baffle 740 may be the side of the baffle 740 closest to the inlet of the shell of the heat exchanger 700, and the distal side 747 may be the side of each baffle 740 farthest from the inlet of the shell of the heat exchanger 700. Further, in one or more embodiments, one tube 730 of the plurality of axially extending tubes 730 may pass through a hole in the baffle 740. Thus, as discussed above, the plurality of tubes 730 may extend axially along the entire length of the heat exchanger 700, and each tube 730 may be supported by multiple baffles 740 that are equally spaced along the length of the tube 730. Furthermore, the distance between the outer diameters of each of the tubes 730 disposed in each of the holes may be consistent across the entirety of the plurality of tubes 730.
[0077] 7 , in one or more embodiments, each of the first plurality of seal strips 750 may be disposed between a first baffle 740 and a corresponding successive baffle 740 that is a full 360° rotation from the first baffle 740. Furthermore, each of the first plurality of seal strips 750 may be disposed radially between the plurality of tubes 730 and a diameter of the inner surface of the shell. As discussed above, in one or more embodiments, each of the first plurality of seal strips 750 may be coupled to each of the first baffle 740 and the corresponding successive baffle 740. In one or more embodiments, the first plurality of seal strips 750 may be disposed such that each of the first plurality of seal strips 750 is perpendicular to the helical first fluid flow direction within the shell of the heat exchanger 700. Further, in one or more embodiments, the first end 751 of each of the first plurality of sealing strips 750 may be coupled to the distal side 747 of one of the plurality of baffles 740 between the proximal radial edge 744 and the distal radial edge 745, and the second end 752 of each of the first plurality of sealing strips 750 may be coupled to the proximal side 746 of another of the plurality of baffles 740 between the proximal radial edge 744 and the distal radial edge 745.
[0078] As discussed above, in one or more embodiments, each of the first plurality of sealing strips 750 may be disposed orthogonally to both the distal side 747 of one baffle 740 and the proximal side 746 of another baffle 740. Additionally, in other embodiments, each of the plurality of sealing strips 750 may be disposed at an angle (not shown) from orthogonal to the proximal side 746 of one baffle 740 and the distal side 747 of the other baffle 740, where the angle may be greater than 0° up to 80°. In further embodiments, the angle may be one of greater than 0° up to 30°, 15° up to 45°, 45° up to 80°, or 15° up to 30°. Due to possible leakage of the first fluid between consecutive baffles in the plurality of baffles 740, the direction of the first fluid flow may vary slightly from the helical path formed by the plurality of baffles 740. Additionally, due to possible differences in the first fluid flow direction, the angle of the seal strips 750 may vary such that each of the first plurality of seal strips 750 may be perpendicular to the spiral first fluid flow direction. The baffles 740 may be arranged in quadrants. In some embodiments, the seal strips 750 may be connected between baffles 740 located in the same quadrant. In some embodiments, the seal strips 750 may be connected between baffles 740 located in adjacent quadrants. In some embodiments, the seal strips 750 may be connected between both baffles 740 located in the same quadrant and baffles 740 located in adjacent quadrants.
[0079] 7, in one or more embodiments, each of the first plurality of seal strips 750 may have a structure substantially similar to the first plurality of seal strips as described above with respect to FIGS. 5A-5E and 6A-6D. Accordingly, the first plurality of seal strips 750 may have a curved inner surface and a curved outer surface. In one or more embodiments, the curved outer surface of each seal strip 750 may be disposed generally proximate to the inner surface of the shell. Further, in one or more embodiments, the curved outer surface of one or more of the seal strips 750 may contact the inner surface of the shell. Additionally, the curvature of the curved outer surface of the seal strip 750 may be elliptical in shape and may match the curvature of the inner surface of the shell.
[0080] Further, in one or more embodiments, the curvature of the curved inner surface of each of the first plurality of seal strips 750 may be elliptical in shape, and the curvature of the inner surface may differ from the curvature of the outer surface of each of the first plurality of seal strips 750. In other words, in one or more embodiments, the curvature of the inner surface of each seal strip 750 may conform to the curvature of an imaginary cylinder with a diameter equal to the diameter of the inner surface of the shell minus the radial width of the seal strip 750. Furthermore, the inner surface of each of the first plurality of seal strips 750 may be spaced apart from the outer diameter of the nearest tube 730 of the plurality of axially extending tubes 730 by a distance. The distance between the inner surface of the seal strip 750 and the outer diameter of the nearest tube 730 may be equal to the distance between the outer diameters of two adjacent tubes 730. Further, in one or more embodiments, the first plurality of seal strips 750 may be angled from the outer surface to the inner surface by an angle from a line perpendicular to the shell in the direction of the first fluid flow. Additionally, the first plurality of sealing strips 750 may have a thickness that varies depending on the diameter of the inner surface of the shell.
[0081] 7 , in one or more embodiments, at least one of the first plurality of sealing strips 750 may be coupled to a proximal side 746 of a baffle 740, and at least one of the first plurality of sealing strips 750 may be coupled to a distal side 747 of a baffle 740. Additionally, in one or more embodiments, each of the first plurality of sealing strips 750 coupled to the distal side 747 of each of the plurality of baffles 740 may be longitudinally aligned with each of the first plurality of sealing strips 750 coupled to the proximal side 746 of each of the plurality of baffles 740 in a direction that is parallel to the longitudinal axis of the shell of the heat exchanger 700. As discussed above, in one or more embodiments, the number of first plurality of seal strips 750 disposed between a baffle 740 and a corresponding consecutive baffle 740 that is a full 360° rotation from the baffle 740 may be equal for all baffles 740 in the plurality of baffles 740, and thus the number of first plurality of seal strips 750 per 360° rotation about the longitudinal axis may be a multiple of the number of baffles 740 per 360° rotation about the longitudinal axis.
[0082] 8 , a portion of a heat exchanger 800 is shown in accordance with one or more embodiments of the present disclosure. In one or more embodiments, the heat exchanger 800 may include a shell (not shown) through which a first fluid is passed, a plurality of axially extending tubes 830 through which a second fluid is passed, a plurality of elliptical sector-shaped baffles 840, a first plurality of sealing strips 850 disposed between the baffles 840, and a second plurality of sealing strips 860 disposed between the baffles 840. The shell may include an inlet (not shown) and an outlet (not shown) between which the first fluid may pass into the shell. Furthermore, the plurality of tubes 830, the plurality of baffles 840, the first plurality of sealing strips 850, and the second plurality of sealing strips 860 may be disposed within the shell.
[0083] Still referring to FIG. 8 , similar to the heat exchangers discussed above, in one or more embodiments, multiple baffles 840 may be arranged such that successive baffles 840 are positioned at an angle from a line normal to the longitudinal axis of the shell (not shown). In one or more embodiments, the baffles 840 may be joined about the longitudinal axis, and the successive baffles 840 may be rotationally offset longitudinally from one another such that a spiral pattern is formed. The rotational offset between successive baffles 840 may be such that at least the proximal radial edge 844 of one baffle 840 overlaps the distal radial edge 845 of a longitudinally adjacent baffle 840. Furthermore, the longitudinal offset of the overlapping proximal and distal radial edges 844 and 845 between successive baffles 840 may create a gap 870 between the proximal and distal radial edges 844 and 845 through which the first fluid flow may travel. In one or more embodiments, the proximal radial edge 844 of each baffle 840 may be the radial edge of the baffle 840 closest to the inlet of the shell of the heat exchanger 800, and the distal radial edge 845 of each baffle 840 may be the radial edge of the baffle 840 furthest from the inlet of the shell of the heat exchanger 800. Additionally, as discussed above, in one or more embodiments, there may be an equal number of baffles 840 per 360° rotation about the longitudinal axis about which the baffles 840 are disposed.
[0084] 8 , in one or more embodiments, the baffles 840 may be elliptical sector-shaped. Each baffle 840 may have an outer circumferential edge 843, and each outer circumferential edge 843 may be spaced apart from the outer circumferential edge 843 of an adjacent baffle 840. Each baffle 840 may also include a proximal radial edge 844 at one end of the outer circumferential edge 843 and a distal radial edge 845 at the other end of the outer circumferential edge 843, such that the elliptical sector-shaped baffle 840 is defined by the outer circumferential edge 843, the proximal radial edge 844, and the distal radial edge 845. Furthermore, each baffle 840 may have a proximal side 846 and a distal side 847 opposite each other, and a plurality of spaced-apart holes (not shown) extending through the baffle 840 from the proximal side 846 to the distal side 847. In one or more embodiments, the proximal side 846 of each baffle 840 may be the side of the baffle 840 closest to the inlet of the shell of the heat exchanger 800, and the distal side 847 may be the side of each baffle 840 farthest from the inlet of the shell of the heat exchanger 800. Further, in one or more embodiments, one tube 830 of the plurality of axially extending tubes 830 may pass through each of the holes in the baffle 840. Thus, as discussed above, the plurality of tubes 830 may extend axially along the entire length of the heat exchanger 800, and each tube 830 may be supported by multiple baffles 840 that are equally spaced along the length of the tube 830. Furthermore, the distance between the outer diameters of each of the tubes 830 disposed in each of the holes may be consistent across the entirety of the plurality of tubes 830.
[0085] 8 , in one or more embodiments, each of the first plurality of seal strips 850 may be disposed between a first baffle 840 and a corresponding successive baffle 840 that is a full 360° rotation from the first baffle 840. Furthermore, each of the first plurality of seal strips 850 may be disposed radially between the plurality of tubes 830 and a diameter of the inner surface of the shell. As discussed above, in one or more embodiments, each of the first plurality of seal strips 850 may be coupled to each of the first baffle 840 and the corresponding successive baffle 840. In one or more embodiments, the first plurality of seal strips 850 may be disposed such that each of the first plurality of seal strips 850 is perpendicular to the helical first fluid flow direction within the shell of the heat exchanger 800. Further, in one or more embodiments, a first end 851 of each of the first plurality of sealing strips 850 is coupled to a distal side 847 of one of the plurality of baffles 840 between a proximal radial edge 844 and a distal radial edge 845, and a second end 852 of each of the first plurality of sealing strips 850 is coupled to a proximal side 846 of another of the plurality of baffles 840 between the proximal radial edge 844 and the distal radial edge 845.
[0086] As discussed above, in one or more embodiments, each of the first plurality of sealing strips 850 may be disposed orthogonally to both the distal side 847 of one baffle 840 and the proximal side 846 of another baffle 840. Additionally, in other embodiments, each of the plurality of sealing strips 850 may be disposed at an angle (not shown) from orthogonal to the proximal side 846 of one baffle 840 and the distal side 847 of another baffle 850, where the angle may be greater than 0° up to 80°. In further embodiments, the angle may be one of greater than 0° up to 30°, 15° up to 45°, 45° up to 80°, or 15° up to 30°. Due to possible leakage of the first fluid between consecutive baffles in the plurality of baffles 840, the direction of the first fluid flow may vary slightly from the helical path formed by the plurality of baffles 840. Furthermore, due to this possible difference in the first fluid flow direction, the angle of the seal strips 850 may vary such that each of the first plurality of seal strips 850 may be perpendicular to the spiral first fluid flow direction.
[0087] The baffles 740 may be arranged in quadrants. In some embodiments, sealing strips 750 may be connected between baffles 740 located in the same quadrant. In some embodiments, sealing strips 750 may be connected between baffles 740 located in adjacent quadrants. In some embodiments, sealing strips 750 may be connected between both baffles 740 located in the same quadrant and baffles 740 located in adjacent quadrants.
[0088] 8, in one or more embodiments, each of the first plurality of seal strips 850 may have a structure substantially similar to the first plurality of seal strips as described above with respect to FIGS. 5A-7. Accordingly, the first plurality of seal strips 850 may have a curved inner surface and a curved outer surface. Further, in one or more embodiments, at least one of the first plurality of seal strips 850 may be coupled to the proximal side 846 of the baffle 840, and at least one of the first plurality of seal strips 850 may be coupled to the distal side 847 of the baffle 840. Additionally, in one or more embodiments, each of the first plurality of seal strips 850 coupled to the distal side 847 of each of the plurality of baffles 840 may be longitudinally aligned with each of the first plurality of seal strips 850 coupled to the proximal side 846 of each of the plurality of baffles 840 in a direction parallel to the longitudinal axis of the shell of the heat exchanger 800. Further, as discussed above, in one or more embodiments, the number of first plurality of seal strips 850 disposed between a baffle 840 and a corresponding consecutive baffle 840 that is a full 360° rotation from the baffle 840 may be equal for all baffles 840 in the plurality of baffles 840, and thus the number of first plurality of seal strips 850 per 360° rotation about the longitudinal axis may be a multiple of the number of baffles per 360° rotation about the longitudinal axis.
[0089] 8 , each of the second plurality of sealing strips 860 may be disposed between one of the baffles 840 and the continuous baffle 840 in a gap 870 formed between a proximal side 846 of one of the baffles 840 and a distal side 847 of the continuous baffle 840 in a region where a distal radial edge 845 of one of the baffles 840 overlaps with a proximal radial edge 844 of the continuous baffle 840. Furthermore, each of the second plurality of sealing strips 860 may be coupled to the baffle 840 in a direction that is parallel to the longitudinal axis of the shell of the heat exchanger 800, and the second plurality of sealing strips 860 may be disposed radially between the shell and the plurality of tubes 830. Further, each of the second plurality of sealing strips 860 may have a first end 861 that may be coupled proximate to a proximal radial edge 844 of a distal side 847 of one of the plurality of baffles 840 and a second end 862 that may be coupled proximate to a distal radial edge 845 of a proximal side 846 of another of the plurality of baffles. Additionally, in one or more embodiments, each of the second plurality of sealing strips 860 may be trapezoidal in shape with an inner surface 863 and an outer surface 864. The inner surface 863 of each of the second plurality of sealing strips 860 may be spaced from the outer diameter of the nearest tube 830 of the plurality of axially extending tubes 830 by a distance that may be equal to the distance between the outer diameters of two adjacent tubes 830 of the plurality of axially extending tubes 830. Further, in one or more embodiments, the number of second plurality of sealing strips 860 disposed between baffles 840 and consecutive baffles 840 within gaps 870 formed by the areas of overlap between baffles 840 can be equal to the number of baffles per 360° rotation about the longitudinal axis.
[0090] Referring now to Figure 9, a heat exchanger 900 is shown in accordance with one or more embodiments of the present disclosure. Figure 9 illustrates a heat exchanger with a double helical flow pattern, which may include strips as described above between the helices. The strips are not shown to facilitate understanding of the flow pattern, but the following description will include the strips and illustrate how they may be incorporated into a heat exchanger with multiple helical flow paths.
[0091] In one or more embodiments, the heat exchanger 900 may include a shell 920 through which a first fluid is passed, a plurality of axially extending tubes (not shown) through which a second fluid is passed, a first plurality of elliptical sector-shaped baffles 940, a second plurality of elliptical sector-shaped baffles 980 longitudinally offset from the first plurality of baffles 940, a first plurality of sealing strips (not shown) disposed between the first baffles 940 and the second baffles 980, respectively, and a second plurality of sealing strips 960 disposed between the baffles 940. The shell may include an inlet 928 and an outlet (not shown) between which the first fluid may pass into the shell. Further, the plurality of tubes, the first plurality of baffles 940, the second plurality of baffles 980, the first plurality of sealing strips, and the second plurality of sealing strips may be disposed within the shell 920.
[0092] 9 , similar to the heat exchangers discussed above, in one or more embodiments, the first plurality of baffles 940 may be arranged such that successive first baffles 940 are positioned at an angle from a line that is normal to the longitudinal axis 921 of the shell 920. In one or more embodiments, the first plurality of baffles 940 may be joined about the longitudinal axis 920, and successive first baffles 940 may be rotationally longitudinally offset from one another such that a spiral pattern is formed. The rotational offset between successive first baffles 940 may be such that at least a first radial edge (not shown) of one first baffle 940 overlaps a second radial edge (not shown) of a longitudinally adjacent first baffle 940. Additionally, the longitudinal offset of the overlapping first and second radial edges between successive first baffles 940 may create gaps between the first and second radial edges through which the first fluid flow may proceed. Additionally, as discussed above, in one or more embodiments, there may be an equal number of first plurality of baffles 940 per 360° rotation about longitudinal axis 921 about which first plurality of baffles 940 are disposed.
[0093] Similarly, the second plurality of baffles 980 may be arranged such that successive second baffles 980 are positioned at an angle from a line that is normal to the longitudinal axis 921 of the shell 920. In one or more embodiments, the second plurality of baffles 980 may be joined about the longitudinal axis 920, and successive second baffles 980 may be rotationally longitudinally offset from one another to form a spiral pattern substantially the same as the spiral pattern of the first plurality of baffles 940. The rotational offset between successive second baffles 980 may be such that at least a first radial edge (not shown) of one second baffle 980 overlaps a second radial edge (not shown) of a longitudinally adjacent second baffle 980. Further, the longitudinal offset of the overlapping first and second radial edges between consecutive second baffles 980 may be the same as the longitudinal offset of the first baffles 940, creating the same gap between the first and second radial edges through which the first fluid flow may proceed. Furthermore, as discussed above, in one or more embodiments, there may be an equal number of second plurality of baffles 980 per 360° rotation about the longitudinal axis 921 about which the second plurality of baffles 980 are disposed. Additionally, the second plurality of baffles 980 may be longitudinally offset from the first plurality of baffles 940 such that the flow path between consecutive rotations of the first baffle 920 is separated into two separate flow paths. In one or more embodiments, the second plurality of baffles may be longitudinally offset from the first plurality of baffles by half the distance between first baffles 940 that are 360° rotations from each other.
[0094] Further, in one or more embodiments, the first plurality of baffles 940 and the second plurality of baffles 980 may each be elliptical sector-shaped. Each baffle 940, 980 may have an outer circumferential edge (not shown), and each outer circumferential edge may be spaced apart from the outer circumferential edge of an adjacent baffle 940, 980. Each baffle 940, 980 may also include a first radial edge at one end of the outer circumferential edge and a second radial edge at the other end of the outer circumferential edge, such that the elliptical sector-shaped baffles 940, 980 are defined by the outer circumferential edge, the first radial edge, and the second radial edge. Additionally, each of the baffles 940, 980 may have a first side (not shown) and a second side (not shown) opposite one another, and a plurality of spaced apart holes (not shown) extending through the baffle 940, 980 from the first side to the second side. In one or more embodiments, each of the first baffles 940 may be aligned with an adjacent second baffle 980 such that the holes in each of the first baffles 940 align with the holes in the adjacent second baffle 980, and one tube of the plurality of axially extending tubes may pass through each of the holes in the baffle 940, 980. Thus, as discussed above, a plurality of tubes may extend axially along the entire length of the heat exchanger 900, and each of the tubes may be supported by a plurality of baffles in each of the first plurality of baffles 940 and the second plurality of baffles 980. Additionally, the distance between the outer diameters of each of the tubes disposed within each of the holes can be consistent across the entire plurality of tubes.
[0095] Further, in one or more embodiments, each of the first plurality of sealing strips may be disposed between a first baffle of the first plurality of baffles 940 and a corresponding adjacent baffle of the second plurality of baffles 940 that is aligned with the first baffle of the first plurality of baffles 940. In other words, each of the first plurality of sealing strips may be coupled between one of the first side and the second side of one of the first plurality of baffles 940 and a corresponding first side or second side of one of the second plurality of baffles 980. Additionally, each of the first plurality of sealing strips may be disposed within the shell 920 of the heat exchanger 900 as described above with respect to other embodiments, and each of the first plurality of sealing strips may have a structure substantially similar to the first plurality of sealing strips as described above with respect to other embodiments. Additionally, each of the second plurality of seal strips may be disposed between one of the first plurality of baffles 940 and a consecutive baffle of the first plurality of baffles 940, and between one of the second plurality of baffles 980 and a consecutive baffle of the second plurality of baffles 980, in gaps formed between a first side of one of the baffles 940, 980 and a second side of the consecutive baffle 940, 980 in regions where a first radial edge of one of the baffles 940, 980 overlaps with a second radial edge of the consecutive baffle 940, 980. Additionally, each of the second plurality of seal strips may be disposed within the shell 920 of the heat exchanger 900 as described above with respect to other embodiments, and each of the second plurality of seal strips may have a structure substantially similar to the second plurality of seal strips as described above with respect to other embodiments.
[0096] Embodiments disclosed herein are also directed to a method of assembling a heat exchanger. The method may include providing a central rod having a longitudinal axis and mounting a plurality of elliptical sector-shaped baffles to the central rod at an angle relative to the longitudinal axis of the central rod such that a helical pattern is formed by the plurality of baffles. Each of the plurality of baffles may include an outer circumferential edge spaced longitudinally from the outer circumferential edge positions of the remaining plurality of baffles, a proximal radial edge spaced from the distal radial edge, a proximal side opposite the distal side, and a plurality of spaced apart holes. A plurality of axially extending tubes may be disposed within the plurality of spaced apart holes of each of the plurality of baffles, the plurality of axially extending tubes being configured to carry a second fluid.
[0097] The method may further include coupling a first plurality of seal strips having first and second ends radially between the shell and the plurality of axially extending tubes. Coupling the first plurality of seal strips may include coupling a first end of each of the first plurality of seal strips to a distal side of one of the plurality of baffles and a second end of each of the first plurality of seal strips to a proximal side of another of the plurality of baffles. Each of the first plurality of seal strips is positioned either perpendicular to both the distal side of one of the plurality of baffles and the proximal side of another of the plurality of baffles, or at an angle from perpendicular to the proximal side of one of the plurality of baffles and the distal side of another of the plurality of baffles, the angle being greater than 0° and up to 80°. The assembled center rod, the plurality of baffles, the plurality of axially extending tubes, and the first plurality of seal strips may then be disposed within a shell configured to receive a first fluid.
[0098] The joined first plurality of seal strips have an inner diameter and an outer diameter, and joining the first plurality of seal strips may include angling the joined first plurality of seal strips from the outer diameter to the inner diameter at an angle from normal to the shell in a direction defined from a proximal radial edge to a distal radial edge of one of the plurality of baffles.
[0099] The step of coupling the first plurality of sealing strips may further include spacing an inner diameter of each of the first plurality of sealing strips from an outer diameter of a nearest one of the plurality of axially extending tubes by a distance equal to the distance between the outer diameters of two adjacent tubes of the plurality of axially extending tubes. The step of coupling the first plurality of sealing strips may also include rotatingly offsetting each of the first plurality of sealing strips coupled to a distal side of each of the plurality of baffles from each of the plurality of sealing strips coupled to a proximal side of each of the plurality of baffles.
[0100] The method of assembly may also, in some embodiments, include coupling a second plurality of sealing strips having first and second ends radially between the shell and the plurality of axially extending tubes, wherein the coupling the second plurality of sealing strips may include coupling a first end of each of the second plurality of sealing strips to a distal radial edge of a distal one of the plurality of baffles and a second end of each of the second plurality of sealing strips to a proximal radial edge of a proximal another of the plurality of baffles, each of the second plurality of sealing strips extending parallel to the longitudinal axis of the shell.
[0101] Heat exchangers according to one or more embodiments of the present disclosure, which have sealing strips arranged perpendicular to each of the baffles so that the sealing strips are perpendicular to the direction of flow of the first fluid, offer numerous benefits over conventional heat exchangers and other spirally baffled heat exchangers. For example, sealing strips arranged perpendicular to each of the baffles may enable a lower pressure drop across the entire length of the heat exchanger than heat exchangers including sealing strips arranged parallel to the longitudinal axis of the heat exchanger. Furthermore, as an example, a sealing strip arranged perpendicular to the direction of first fluid flow and at an angle such that the first fluid flow is directed back toward the tubes carrying the second fluid may allow less of the first fluid to bypass the tubes than a sealing strip arranged parallel to the longitudinal axis of the heat exchanger. Furthermore, as an example, in one or more embodiments, radially offsetting the sealing strips along the length of the heat exchanger may enable a greater number of the tubes to receive localized heat transfer enhancements. Additionally, by way of example, a second plurality of sealing strips disposed adjacent the first and second radial edges of the baffle may allow less of the first fluid to exit the spiral flow path by leaking around the overlapping baffles. Thus, a heat exchanger according to one or more embodiments may enable improved efficiency of heat transfer, as well as lower manufacturing and maintenance costs, compared to that of conventional heat exchangers and other spirally baffled heat exchangers.
[0102] Several surprising results are noted with respect to embodiments of the present disclosure. First, experiments have shown that conventional sealing strips, not arranged as disclosed herein, have little direct effect on heat transfer. As such, they do not significantly improve the efficiency of the heat exchanger to which they are added. In fact, these experiments have shown that conventional sealing strips can cause a significant pressure drop within a heat exchanger when compared to an identical heat exchanger without the sealing strip. The pressure drop can reduce the efficiency of heat transfer within the heat exchanger. This result is unexpected because the prior art teaches that any sealing strip improves the performance of a heat exchanger by preventing fluid from bypassing the tube bundle. However, the current findings indicate that sealing strips arranged according to embodiments of the present disclosure can improve the performance of a heat exchanger.
[0103] Referring now to FIG. 10 , the heat exchanger performance of three heat exchangers is compared: (1) a heat exchanger without sealing strips (triangles); (2) a heat exchanger including four longitudinal sealing strips extending the length of the exchanger, disposed through individual through-holes in each baffle (squares); and (3) a heat exchanger including angled sealing strips, in which the sealing strips direct the flow in a manner that encourages helical flow of the fluid through the heat exchanger (circles). Experimental data is shown, including the Reynolds number on the bottom axis, the pressure drop conversion ratio on the left axis, and the Peclet number on the right axis. As shown, for a given Reynolds number of fluid flow, the pressure drop conversion ratio and Peclet number improve for sealing strips arranged according to embodiments herein, indicating a higher efficiency of converting pressure drop to heat transfer.
[0104] Second, experiments have shown that sealing strips connected to occupy the fluid flow, i.e., opposite to those taught herein, can significantly reduce heat transfer. In some experiments, these sealing strips reduced heat transfer by as much as 60% relative to a heat exchanger without sealing strips. This is surprising because any type of seal would be expected to prevent bypass and thereby improve heat transfer. However, these results demonstrate that to improve heat transfer in a heat exchanger, not only must bypass be prevented, but significant pressure drops must also be avoided. Therefore, the specific arrangement and orientation of the sealing strips taught herein is important in achieving improved heat transfer.
[0105] Third, experiments have shown that seal strips connected as disclosed herein can increase heat transfer without causing a significant pressure drop. These seal strips are connected in a manner that encourages spiral flow of fluid through the heat exchanger. This is unexpected, as the prior art teaches that any seal causes a pressure drop penalty of approximately 30% to 50%. Thus, the results of the present disclosure are significantly more positive than would be expected based on the prior art, since they provide improved heat transfer without a corresponding increase in pressure drop.
[0106] While the present invention has been described with respect to a limited number of embodiments, those skilled in the art, having the benefit of this disclosure, will appreciate that other embodiments may be devised without departing from the scope of the invention as disclosed herein. Accordingly, the scope of the present invention should be limited only by the appended claims.
Claims
1. A heat exchanger, the heat exchanger comprising: a shell having a longitudinal axis, the shell configured to receive a first fluid; a plurality of baffles, each of the plurality of baffles having a helix angle H to direct a first fluid flow through the shell in a helical pattern; B and each of the plurality of baffles is mounted in the shell at an outer circumferential edge longitudinally spaced from the outer circumferential edge locations of the remainder of the plurality of baffles; a proximal radial edge spaced from a distal radial edge; From the distal side to the opposite proximal side, a plurality of spaced apart holes configured to be traversed by a plurality of axially extending tubes configured to carry a second fluid; a plurality of baffles, a first plurality of seal strips, each of the first plurality of seal strips having a first end and a second end radially disposed between the shell and the axially extending plurality of tubes, each of the first plurality of seal strips being positioned between any two adjacent baffles; Equipped with Each of the first plurality of seal strips has a baffle helix angle H greater than 5° and B Helix angle H is less than s with the first end of each sealing strip adjacent a distal side of an individual baffle and the second end of each sealing strip adjacent a proximal side of an individual baffle, The helix angle H B and the helix angle H s is defined as the angle of the individual baffle or seal strip relative to the longitudinal axis of the shell; each of the first plurality of sealing strips has an angle greater than 0° and up to 80° formed between each of the first plurality of sealing strips and a line perpendicular to the proximal side of the individual baffle and the distal side of the individual baffle; a heat exchanger, wherein each of the first plurality of sealing strips is an individual sealing strip coupled between any two adjacent baffles;
2. 2. The heat exchanger of claim 1, wherein the first plurality of sealing strips are configured to partially direct fluid flow in a spiral toward an outlet and partially direct fluid flow away from the shell and toward the plurality of axially extending tubes.
3. the first plurality of sealing strips are disposed from a distal side of a first baffle of the plurality of baffles to a proximal side of a second baffle of the plurality of baffles, the distal side of the first baffle being adjacent to a proximal radial edge of the first baffle and the proximal side of the second baffle being adjacent to a distal radial edge of the second baffle, the first baffle and the second baffle being disposed within the same sector or quadrant; or 2. The heat exchanger of claim 1, wherein the first plurality of sealing strips are disposed from a distal side of a first baffle of the plurality of baffles to a proximal side of a second baffle of the plurality of baffles, the distal side of the first baffle being from midway between a proximal and a distal radial edge of the first baffle, the proximal side of the second baffle being midway between a proximal and a distal radial edge of the second baffle, and the second baffle being disposed in a different sector or quadrant than the first baffle.
4. 2. The heat exchanger of claim 1, wherein the first end of each of the first plurality of sealing strips is coupled to a distal side of a first baffle of the plurality of baffles and the second end of each of the first plurality of sealing strips is coupled to a proximal side of a second baffle of the plurality of baffles.
5. The heat exchanger according to claim 1 , wherein the plurality of baffles are elliptical sector-shaped baffles.
6. 2. The heat exchanger of claim 1, wherein the first plurality of sealing strips have an inner surface and an outer surface, the first plurality of sealing strips being angled from the outer surface to the inner surface by an angle from normal to the shell in a direction defined from a proximal radial edge to a distal radial edge of one of the plurality of baffles.
7. The heat exchanger of claim 6 , wherein each of the first plurality of sealing strips is angled from 15° up to 45° from perpendicular to the shell.
8. The heat exchanger of claim 1 , wherein an outer surface of each of the first plurality of sealing strips is disposed adjacent to an inner surface of the shell.
9. 2. The heat exchanger of claim 1, wherein an inner surface of each of the first plurality of sealing strips is spaced from an outer surface of a nearest tube of the axially extending plurality of tubes by a distance equal to a distance between outer diameters of two adjacent tubes of the axially extending plurality of tubes.
10. 2. The heat exchanger of claim 1, wherein each of the plurality of baffles includes at least one of the first plurality of sealing strips coupled to the proximal side and at least one of the first plurality of sealing strips coupled to the distal side.
11. 2. The heat exchanger of claim 1, wherein each of the first plurality of sealing strips coupled to a distal side of each of the plurality of baffles is rotationally offset about the longitudinal axis from each of the plurality of sealing strips coupled to a proximal side of each of the plurality of baffles.
12. 2. The heat exchanger of claim 1, wherein each of the first plurality of sealing strips has a curved outer diameter with a curvature that is elliptical, and each of the first plurality of sealing strips has a curved inner diameter with a curvature that is elliptical.
13. 2. The heat exchanger of claim 1, wherein each of the first plurality of sealing strips has a width, calculated as an outer diameter minus an inner diameter, that varies along a length from a first end to a second end of the sealing strip, and each of the first plurality of sealing strips has a depth, calculated as a proximal to distal side, that varies along a width or length of the sealing strip.
14. The heat exchanger of claim 1 , wherein an equal number of seal strips are coupled to each baffle of the plurality of baffles.
15. 2. The heat exchanger of claim 1, wherein the number of seal strips per revolution about the longitudinal axis of the shell is a multiple of the number of baffles per revolution about the longitudinal axis of the shell.
16. The heat exchanger of claim 1 , wherein the first plurality of sealing strips are formed from steel.
17. the heat exchanger further comprising a second plurality of sealing strips; each of the second plurality of sealing strips has a first end and a second end radially disposed between the shell and the axially extending plurality of tubes, and each of the second plurality of sealing strips is positioned between any two baffles; Each of the second plurality of sealing strips has a helix angle H greater than 5° s and the baffle helix angle H B Helix angle H is less than 2s wherein the plurality of baffles are arranged from a proximal end to a distal end of the plurality of baffles; The helix angle H B , the helix angle H s , the helix angle H 2s 10. The heat exchanger of claim 1, wherein .lambda. is defined as the angle of the individual baffle or seal strip relative to the longitudinal axis of the shell.
18. the heat exchanger further comprising a second plurality of sealing strips; each of the second plurality of sealing strips having a first end and a second end radially disposed between the shell and the axially extending plurality of tubes, and each of the second plurality of sealing strips is positioned between any two adjacent baffles; The heat exchanger of claim 1 , wherein each of the second plurality of sealing strips is disposed from a proximal radial edge of a baffle to a distal radial edge of an adjacent baffle.
19. 20. The heat exchanger of claim 18, wherein an inner surface of each of the second plurality of sealing strips is spaced from an outer surface of a nearest tube of the axially extending plurality of tubes by a distance equal to a distance between outer diameters of two adjacent tubes of the axially extending plurality of tubes.
20. 1. A method of assembling a heat exchanger, the method comprising: providing a central rod having a longitudinal axis; mounting a plurality of elliptical sector-shaped baffles on the central rod at an angle relative to a longitudinal axis of the central rod such that a spiral pattern is formed by the plurality of baffles, each of the plurality of baffles comprising: an outer circumferential edge longitudinally spaced from the outer circumferential edge locations of the remainder of the plurality of baffles; a proximal radial edge spaced from a distal radial edge; From the distal side to the opposite proximal side, a plurality of spaced apart holes; and disposing a plurality of axially extending tubes within the plurality of spaced apart holes of each of the plurality of baffles, the plurality of axially extending tubes configured to carry a second fluid; and and coupling a first plurality of sealing strips radially between a shell and the axially extending plurality of pipes, each of the first plurality of sealing strips being an individual, separate unit having a first end and a second end, and coupling the first plurality of sealing strips includes: coupling a first end of each of the first plurality of sealing strips to a proximal side of one of the plurality of baffles; and coupling a second end of each of the first plurality of sealing strips to a distal side of a baffle adjacent the one of the plurality of baffles, wherein each of the first plurality of sealing strips is greater than 5° and has a baffle helix angle H B Helix angle H is less than s and the helix angle H B and the helix angle H s is defined as the angle of the individual baffle or seal strip relative to the longitudinal axis of the shell; angling each of the first plurality of sealing strips to form an angle greater than 0° up to 80° between each of the first plurality of sealing strips and a line perpendicular to the proximal side of the individual baffle and the distal side of the individual baffle; and disposing the assembled center rod, the plurality of baffles, the plurality of axially extending tubes, and the first plurality of seal strips within the shell configured to receive a first fluid; A method comprising:
21. the first plurality of joined seal strips having an inner surface and an outer surface; Coupling the first plurality of sealing strips includes: angling the coupled first plurality of sealing strips from the outer surface to the inner surface at an angle from perpendicular to the shell in a direction defined from a proximal radial edge to a distal radial edge of the one of the plurality of baffles.
21. The method of claim 20, further comprising:
22. Coupling the first plurality of sealing strips includes: spacing an inner surface of each of the first plurality of sealing strips from an outer surface of a nearest tube of the axially extending plurality of tubes by a distance equal to a distance between outer diameters of two adjacent tubes of the axially extending plurality of tubes; 21. The method of claim 20, further comprising:
23. Coupling the first plurality of sealing strips includes: Rotatingly offsetting each of the first plurality of sealing strips coupled to a distal side of each of the plurality of baffles from each of the first plurality of sealing strips coupled to a proximal side of each of the plurality of baffles.
21. The method of claim 20, further comprising:
24. The method further includes coupling a second plurality of sealing strips radially between the shell and the axially extending plurality of tubes, the second plurality of sealing strips having first and second ends; Coupling the second plurality of sealing strips includes: coupling a first end of each of the second plurality of sealing strips to a distal proximal radial edge of one of the plurality of baffles; coupling a second end of each of the second plurality of sealing strips to a proximal, distal radial edge of another of the plurality of baffles; Including, 21. The method of claim 20, wherein each of the second plurality of sealing strips extends parallel to a longitudinal axis of the shell.
25. 1. A heat exchanger comprising: a shell having a longitudinal axis, the shell configured to receive a first fluid; a plurality of baffles mounted within the shell at an angle relative to the longitudinal axis, the plurality of baffles being spaced apart from one another along the longitudinal axis, the plurality of baffles being configured to direct flow of the first fluid along a spiral pattern through the shell, each of the plurality of baffles comprising: an outer circumferential edge; a proximal radial edge spaced from a distal radial edge; From the distal side to the opposite proximal side, a plurality of spaced apart holes formed through each baffle from the proximal side to the distal side, the plurality of holes configured to be traversed by a plurality of axially extending tubes, the plurality of tubes configured to carry a second fluid; and a plurality of baffles, a plurality of separate seal members, each of the plurality of seal members having a first end and a second end, the plurality of seal members being radially disposed between the shell and the plurality of axially extending tubes, the first end of each seal member being coupled to a distal side of only one individual baffle, and the second end of each seal member being coupled to a proximal side of only one individual baffle; Equipped with a heat exchanger, wherein each seal member is positioned at an angle from perpendicular to a proximal side of the individual baffle, the angle being greater than 0° and up to 80° in a direction defined from the proximal radial edge to the distal radial edge of the individual baffle.
26. 26. The heat exchanger of claim 25, wherein the plurality of sealing members comprise sealing strips or sealing rods.
27. 1. A heat exchanger comprising: a shell having a longitudinal axis, the shell configured to receive a first fluid; a plurality of baffles, each of the plurality of baffles having a helix angle H to direct a first fluid flow through the shell in a helical pattern; B and each of the plurality of baffles is mounted in the shell at an outer circumferential edge longitudinally spaced from the outer circumferential edge locations of the remainder of the plurality of baffles; a proximal radial edge spaced from a distal radial edge; From the distal side to the opposite proximal side, a plurality of spaced apart holes configured to be traversed by a plurality of axially extending tubes configured to carry a second fluid; and a plurality of baffles, a first plurality of circumferentially offset seal strips, the first plurality of circumferentially offset seal strips being individual seal strips, each of the first plurality of circumferentially offset seal strips having first and second ends radially disposed between the shell and the axially extending tubes, each of the first plurality of circumferentially offset seal strips being respectively positioned between only two adjacent baffles; Equipped with a heat exchanger, wherein each of the first plurality of circumferentially offset seal strips has an angle greater than 0° and up to 80° formed between each of the first plurality of circumferentially offset seal strips and a line perpendicular to the two adjacent baffles.
28. 28. The heat exchanger of claim 27, wherein each of the plurality of baffles is connected to at least two of the first plurality of sealing strips, including a distal sealing strip connected to a distal side of the baffle and a proximal sealing strip connected to a proximal side of the same baffle, the proximal sealing strip being circumferentially offset from the distal sealing strip.
29. 28. The heat exchanger of claim 27, wherein each of the first plurality of sealing strips is parallel to a longitudinal axis of the heat exchanger.
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