Claims
- 1. Heat exchanger apparatus comprising:
- wall means defining a fluid flow channel and having a first surface portion over which a first fluid is adapted to flow in a downstream direction for transferring heat energy between the fluid and said wall means; and
- heat transfer means disposed upstream of said first surface portion for enhancing the exchange of heat energy between the fluid and said wall means, said heat transfer means comprising a thin vortex generating wall having oppositely facing sides, the fluid adapted to flow over both of said sides in a downstream direction, said vortex generating wall being a thin plate having an exposed downstream edge such that fluid flowing over both of said sides can mix together at said downstream edge, said plate comprising a plurality of adjoining, alternating lobes and troughs, each lobe and trough extending in the downstream direction to said downstream edge, said troughs increasing in depth in the downstream direction from a minimum at said troughs' upstream ends, said first surface portion being disposed downstream of said downstream edge, each lobe on one side of said wall having a corresponding trough opposite thereto on the other side of said wall such that said wall and said downstream edge are wave shaped, the contour and dimensions of said troughs and lobes being selected to insure that each trough flows full throughout its length, said vortex generating wall being located and said lobes and troughs being configured to generate a plurality of adjacent vortices downstream of said downstream edge adjacent said first surface portion, adjacent vortices rotating in opposite directions about respective axes extending in a first direction which is the direction of bulk fluid flow adjacent said lobes and troughs.
- 2. The heat exchanger apparatus according to claim 1 wherein the upstream ends of said troughs and lobes have substantially zero depth and height, respectively.
- 3. The heat exchanger apparatus according to claim 1 wherein the said first surface is substantially parallel to said first direction.
- 4. The heat exchanger apparatus according to claim 3 wherein said first surface portion is substantially flat, and said wall means has a second surface portion facing, spaced from and substantially parallel to said first surface portion defining said flow channel therebetween, wherein said vortex generating wall is oriented and said lobes and troughs are configured to generate said vortices within said channel.
- 5. The heat exchanger apparatus according to claim 1, wherein said first surface is cylindrical about an axis, extending in said first direction.
- 6. The heat exchanger apparatus according to claim 5 wherein said first wall means is a tube, and said first surface is the internal surface of said tube, and said vortex generating wall is disposed within said tube.
- 7. The heat exchanger apparatus according to claim 5 wherein said first wall means is a tube having an axis, and said first surface is the external surface of said tube, and said vortex generating wall surrounds said tube, said troughs and lobes being circumferentially spaced apart about the axis of said tube.
- 8. The heat exchanger apparatus to claim 6 wherein said heat transfer means includes a plurality of said vortex generating walls, spaced apart from each other in the first direction for regenerating said vortices along a length of said tube.
- 9. The heat exchanger apparatus according to claim 4 including at least one tube for carrying a second fluid into heat exchange relation to the first fluid, said tube passing through said wall means, extending across said channel, intersecting said first and second surface portions, and contacting said wall means around said tube circumference where said tube intersects said first and second surface portions, said tube located downstream of said downstream edge of said vortex generating wall.
- 10. The heat exchanger apparatus according to claim 4 wherein the wave shape at said downstream edge has an amplitude A between 50 and 100 percent of the distance between said first and second surface portions.
- 11. The heat exchanger apparatus according to claim 10 wherein the wave shape at the downstream edge has wavelength P between about 0.5 and 4.0 times the wave amplitude A.
- 12. The heat exchanger apparatus according to claim 2 wherein said lobes and troughs form smoothly undulating wave-like surfaces in oppositely facing sides of said vortex generating wall.
- 13. The heat exchanger apparatus according to claim 12 wherein said downstream edge wavelength is P and wave amplitude is A, and P divided by A is between 0.5 and 4.0.
- 14. The heat exchanger apparatus according to claim 1 wherein said downstream edge extends in a lateral direction, said wall means comprises at least one tube for carrying a second fluid in heat exchange relation to said first fluid, said tube has an axis substantially parallel to said lateral direction, and said first surface is the external surface of said tube.
- 15. The heat exchanger apparatus according to claim 14 including a plurality of said tubes parallel to and spaced apart from each other, said vortex generating wall being oriented and said lobes and troughs being configured to generate said vortices between an adjacent pair of said tubes and adjacent the external surfaces of said tubes.
- 16. The heat exchanger apparatus according to claim 9, wherein said device is a tube and plate type heat exchanger, said vortex generating wall is a thin first plate, and said heat transfer means comprises a plurality of said thin first plates, closely spaced apart, wherein said wall means includes a plurality of spaced apart thin second plates parallel to said first plates and downstream thereof each pair of adjacent second plates defining a flow channel therebetween, each one of said flow channels being aligned in the downstream direction with the downstream edge of a respective one of said first plates, said at least one tube extending across a plurality of said channels.
- 17. A tube and plate type heat exchanger including a plurality of spaced apart, parallel, thin first plates defining a plurality of first fluid flow channels therebetween adapted to have a first fluid flow therein, said plates each having a downstream end portion and an upstream edge, said end portion having an exposed downstream edge such that a fluid flowing over both of said sides can mix together at said downstream edge, said downstream end portion comprising a plurality of adjoining, alternating lobes and troughs, each lobe and trough initiating downstream from said upstream edge and extending in the downstream direction to said downstream edge, each lobe on each side of said wall having a corresponding trough opposite thereto on the other side of said wall such that said wall and said downstream edge are wave shaped, said troughs increasing in depth in the downstream direction from a minimum depth at their upstream ends, the contour and dimensions of said troughs and lobes being selected to insure that each trough flows full throughout its length and generates a pair of adjacent vortices downstream of said downstream edge and which rotate in opposite directions about respective axes extending in the downstream direction, said heat exchanger also including a plurality of thin, parallel, spaced apart second pates disposed immediately downstream of said first plates and defining a second fluid flow channel between each pair of adjacent second plates, each of said second channels having an upstream, inlet end aligned with the downstream edge of a respective one of said first plates such that the counterrotating vortices generated by each of said first plates is directed into said second channel aligned therewith.
- 18. The heat exchanger according to claim 17, including at least one tube for carrying a second fluid into heat exchange relation to said first fluid, said tube intersecting said first plates and extending across said channels formed therebetween and contacting each of said second plates around said tube circumference where said tube intersects said plates, said tube located downstream of said downstream edges of said first plates and sufficiently close thereto wherein the vortices generated from said downstream edge increase the rate of heat transfer between said first and second fluids.
- 19. The heat exchanger according to claim 18, wherein the wave shape at said downstream edge of each of said first plates has an amplitude of between 50 and 100 percent of the height of the channel immediately downstream thereof and with which it is aligned.
- 20. The heat exchanger according to claim 19 wherein the wave shape of each of said downstream edges of said first plates has a wave length P between about 0.5 and 4.0 times the save amplitude A.
Parent Case Info
This application is a continuation-in-part of Ser. No. 06/947,349 filed Dec. 29, 1986 now abandoned.
US Referenced Citations (11)
Foreign Referenced Citations (5)
Number |
Date |
Country |
839508 |
May 1952 |
DEX |
391043 |
Oct 1908 |
FRX |
472122 |
Nov 1914 |
FRX |
946793 |
Jun 1949 |
FRX |
33495 |
Feb 1985 |
JPX |
Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
947349 |
Dec 1986 |
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