Heat Exchanger with Tanks, Tubes and Retainer
20170219297 · 2017-08-03
Inventors
- Robert Janezich (Hibbing, MN, US)
- Aaron Patrick Morgan (Britt, MN, US)
- Charles Eugene Cedar, JR. (Chisholm, MN, US)
- Todd Gregory Dosen (Side Lake, MN, US)
- Paul R. Shuey (Pine City, MN, US)
Cpc classification
F28F9/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F2230/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F9/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D1/05366
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D7/0066
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F28F9/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F9/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A heat exchanger assembly includes first and second tanks having tube side walls, reservoirs formed therein, and apertures extending through the tube side walls. A flow tube having a plurality of fins on an exterior surface thereof, a first end, and a second end, the first end being received in an aperture of the first tank. A first seal is positioned between the flow tube and the first aperture. A retainer is positioned between the flow tube and the first aperture and between the first seal and the fins on the tube. A mounting block is positioned between the first tank and the fins on the tube, and is secured to the first tank. A second seal is positioned between the flow tube and the second aperture.
Claims
1. A heat exchanger assembly comprising: a first tank having a tube side wall, a first reservoir formed therein, and a first aperture extending through the tube side wall of the first tank; a flow tube having a plurality of fins on an exterior surface thereof, a first end, and a second end, the first end being received in the first aperture of the first tank; a first seal positioned between the flow tube and an interior surface of the first aperture; a retainer positioned between the flow tube and the interior surface of the first aperture and between the first seal and the fins on the flow tube; and a mounting blocked positioned between the first tank and the fins on the flow tube, and being secured to the first tank; a second tank having a tube side wall, a second reservoir formed therein, and a second aperture extending through the tube side wall of the second tank, the second end of the flow tube being received in the second aperture of the second tank; a second seal positioned between the flow tube and an interior surface of the second aperture.
2. The heat exchanger assembly of claim 1, further comprising a first shoulder extending inwardly from the interior surface of the first aperture.
3. The heat exchanger assembly of claim 2, wherein the first seal is positioned between the retainer and the first shoulder.
4. The heat exchanger assembly of claim 1, wherein a tube side of the first aperture is beveled.
5. The heat exchanger assembly of claim 4, wherein the tube side of the first aperture is beveled at an angle of approximately 45°.
6. The heat exchanger assembly of claim 1, wherein the mounting block is T-shaped.
7. The heat exchanger assembly of claim 1, wherein the mounting block is L-shaped.
8. The heat exchanger assembly of claim 1, further comprising: a recess formed in the interior surface of the second aperture, the second seal being seated within the recess.
9. The heat exchanger assembly of claim 1, further comprising a second shoulder extending inwardly from the interior surface of the second aperture at a position between the recess and a tank side of the second aperture.
10. The heat exchanger assembly of claim 1, wherein a tube side of the second aperture is beveled.
11. The heat exchanger assembly of claim 10, wherein the tube side of the second aperture is beveled at an angle of approximately 45°.
12. The heat exchanger assembly of claim 1, wherein the first and second seals are O-rings.
13. The heat exchanger assembly of claim 12, wherein the O-rings are formed of an elastomer.
14. The heat exchanger assembly of claim 1, wherein the retainer includes an axially extending gap.
15. A heat exchanger assembly comprising: a first tank having a tube side wall, a first reservoir formed therein, and a plurality of first apertures extending through the tube side wall of the first tank; a plurality of flow tubes, each tube having having a plurality of fins on an exterior surface thereof, a first end, and a second end, the first end being received in a corresponding first aperture of the first tank; a plurality of first seals, each first seal being positioned between one of the flow tubes and an interior surface of the corresponding first aperture; a plurality of retainers, each retainer being positioned between one of the flow tubes and the interior surface of the corresponding first aperture and between the first seal and the fins on the one of the flow tubes; and a plurality of mounting blocks, each mounting block being positioned between the first tank and the fins on the one of the flow tubes, and being secured to the first tank; a second tank having a tube side wall, a second reservoir formed therein, and a plurality of second apertures extending through the tube side wall of the second tank, the second end of each of the flow tubes being received in a corresponding second aperture of the second tank; and a plurality of second seals, each second seal being positioned between one of the flow tubes and an interior surface of a corresponding second aperture.
16. The heat exchanger assembly of claim 15, wherein at least one of the mounting blocks is T-shaped.
17. The heat exchanger assembly of claim 15, wherein at least one of the mounting blocks is L-shaped.
18. The heat exchanger assembly of claim 15, further comprising: a recess formed in the interior surface of each second aperture, a corresponding second seal being seated within each recess.
19. The heat exchanger assembly of claim 15, wherein the first and second seals are O-rings.
20. The heat exchanger assembly of claim 15, wherein tube sides of each first and second aperture are beveled.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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[0025] The figures referred to above are not drawn necessarily to scale and should be understood to provide a representation of the invention, illustrative of the principles involved. Some features of the heat exchanger depicted in the drawings have been enlarged or distorted relative to others to facilitate explanation and understanding. The same reference numbers are used in the drawings for similar or identical components and features shown in various alternative embodiments. Heat exchangers as disclosed herein would have configurations and components determined, in part, by the intended application and environment in which they are used.
DETAILED DESCRIPTION OF CERTAIN PREFERRED EMBODIMENTS
[0026] The present invention may be embodied in various forms. An embodiment of a heat exchanger 10 is shown in
[0027] It is to be understood, however, that the heat exchanger is not limited to use in cooling hot fluid in industrial machinery, and may easily be used with fluids or gases in other fields. For example, embodiments of the present invention find application in heat exchangers such as radiators used to cool an engine where coolant, such as water or antifreeze, flows through flow tubes and fluid such as air or a suitable liquid can be used to flow around the exterior of flow tubes. For convenience, the terms “upper” and “lower” and “top” and “bottom” are used herein to differentiate between the upper and lower ends of the heat exchanger and particular elements. It is to be appreciated that “upper” and “lower” and “top” and “bottom” are used only for ease of description and understanding and that they are not intended to limit the possible spatial orientations of the heat exchanger or its components during assembly or use.
[0028] Heat exchanger 10 includes a first tank 12 having a first reservoir 14 formed therein. In the illustrated embodiment, first tank 12 is a lower or bottom tank of heat exchanger 10. A second tank 16 having a second reservoir 18 formed therein is positioned opposite and spaced from first tank 12, and is referred to in the illustrated embodiment as an upper or top tank of heat exchanger 10.
[0029] Each of a plurality of tube-and-fin assemblies 19 includes a flow tube 20, and a plurality of fin elements or fins 22 secured to an exterior surface of each flow tube 20. Flow tubes 20 extend between first tank 12 and second tank 16. Fins 22 may be welded or otherwise secured to the exterior of flow tubes 20. It is to be appreciated that heat exchanger 10 can have any desired number of tube-and-fin assemblies 19.
[0030] A first or lower end 24 of each tube 20 is received in a first aperture 25 (seen in
[0031] First end 24 of tube 20 is secured within first tank 12 with a mounting block 28. Mounting block 28 is secured to first tank 12. In the illustrated embodiment, mounting blocks 28 are secured to first tank 12 by way of fasteners, such as bolts 30 that are received in threaded recesses 32, seen in
[0032] Adjacent mounting blocks 28 are configured and mounted to first tank 12 such that they abut one another along sides thereof, which helps to keep them in position when they are subject to the large pressures often produced within such heat exchangers 10. Positioning mounting blocks 28 in abutting relationship provides a structural advantage for heat exchanger 10, since the mounting blocks include apertures extending therethrough, as described below, and providing multiple mounting blocks abutting one another provides strength to one another to help withstand the high operating pressures of the heat exchanger.
[0033] As shown in
[0034] As seen in
[0035] As seen in
[0036] As used herein, the term “approximately” is intended to mean “close to” or “about” a particular value, within the constraints of sensible, commercial engineering objectives; costs; manufacturing tolerances; and capabilities in the field of heat exchanger manufacture and use.
[0037] Tube 20 is then tilted till it is oriented vertically as seen in
[0038] As seen in
[0039] As seen in
[0040] Once tube 20 has been tilted to the vertical position, second end 26 is then moved upwardly into second aperture 27 of second tank 16, as illustrated in
[0041] As seen in
[0042] In certain embodiments, as seen in
[0043] In certain embodiments, retainer 56 is formed of a plastic, such as a nylon plastic, for example. It is to be appreciated that retainer 56 could be formed of a metal, such as aluminum, for example. Other suitable materials for retainer 56 will become readily apparent to those skilled in the art, given the benefit of this disclosure.
[0044] After retainer 56 is fully engaged about first end 24 of tube 20, first end 24 is then pressed downwardly into first aperture 25. As retainer 56 moves downwardly into first aperture 25, it pushes first seal 34 into first aperture 25 of first tank 12, as seen in
[0045] A mounting block 62 is then slid into position adjacent tube 20 between the lower most fins 22 and first tank 12, as seen in
[0046] In certain embodiments, as illustrated in
[0047] The mounting blocks 62 are secured to first tank with bolts 30 that extend through apertures 72 formed in mounting blocks 62 and are threadingly received in recesses 32 in first tank 16, as seen in
[0048] In use, first seal 34 and second seal 52 are compressed a predetermined amount to provide a proper seal between the tube 20, first tank 12, and second tank 16. It is to be appreciated that seals 34, 52 can have differing sizes and shapes. For example, the seals could have a circular cross-section, such as those seals commonly known as “O-rings.” Other useful seals include those having a square or rectangular cross-section or a cross-section resembling that of an “X.” Other suitable seal shapes will become readily apparent to those skilled in the art, given the benefit of this disclosure, and the configuration of the elements within which the seal is seated.
[0049] In certain embodiments, seals 34, 52 are fashioned from an elastomeric material. In certain embodiments, seals 34, 52 may be formed of fluorocarbon, silicone, nitrile, ethylene propylene, or fluorsilicone, for example. In certain applications, seals 34, 52 are formed of a material that is suitable for long term exposure to elevated temperatures, which may degrade elastomeric materials. A flexible graphite type material, for example, may provide a long life span when exposed to elevated temperatures. Useful seals are capable of withstanding operating pressures and temperatures of a given heat exchanger, and are also resistant to degradation by fluids used in a given heat exchanger. The seals may be installed by hand or by suitable instrument so as to seat the seal into a given location. Other suitable materials used to form seals 34, 52 will become readily apparent to those skilled in the art, given the benefit of this disclosure.
[0050] Thus, while there have been shown, described, and pointed out fundamental novel features of various embodiments, it will be understood that various omissions, substitutions, and changes in the form and details of the devices illustrated, and in their operation, may be made by those skilled in the art without departing from the spirit and scope of the invention. For example, it is expressly intended that all combinations of those elements and/or steps which perform substantially the same function, in substantially the same way, to achieve the same results are within the scope of the invention. Substitutions of elements from one described embodiment to another are also fully intended and contemplated. It is the intention, therefore, to be limited only as indicated by the scope of the claims appended hereto.