Hybrid fluid cooler with extended intermediate basin nozzles
10132569 ยท 2018-11-20
Assignee
Inventors
Cpc classification
F28D5/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F25/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28C1/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F25/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02B30/70
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
International classification
F25C1/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F25/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28C1/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D5/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A hybrid fluid cooler or tower that provides enhanced cooler performance by improving air and water distribution to the indirect heat exchange section by utilizing extended flow nozzles.
Claims
1. A hybrid fluid cooler that extends along a longitudinal axis, comprising; a direct heat exchange section; an indirect heat exchange section; a first liquid distribution assembly located at a first position along the longitudinal axis adjacently above the direct heat exchange section wherein said first liquid distribution assembly comprises: a liquid distributor; a first dry plenum that extends a first plenum distance from the liquid distributor; a first wet plenum that extends from the first dry plenum to the direct heat exchange section; and a first nozzle, wherein said first nozzle is connected to said first liquid distribution assembly and extends therefrom through the first dry plenum and the second wet plenum; a second liquid distribution assembly located at a second position along the longitudinal axis adjacently below the direct heat exchange section and oriented adjacently above the indirect heat exchange section wherein said second liquid distribution assembly comprises: a liquid distribution basin; a second dry plenum that extends a second plenum distance from the liquid distribution basin, wherein said second plenum distance is greater than said first plenum distance; and a second wet plenum that extends from the second dry plenum to the indirect heat exchange section; and a second nozzle, wherein said second nozzle is connected to said second liquid distribution assembly and extends therefrom through the second dry plenum and the second wet plenum a lower collection basin.
2. The hybrid fluid cooler according to claim 1, wherein said direct heat exchange section is evaporative fill media.
3. The hybrid fluid cooler according to claim 2, wherein said indirect heat exchange section comprises heat exchange conduits.
4. The hybrid fluid cooler according to claim 1, wherein said liquid distribution basin collects liquid from the direct heat exchange section and redistributes the liquid onto said indirect heat exchange section.
5. The hybrid fluid cooler according to claim 1, wherein first nozzle comprises: a first barrel section; a first shaft extending from said first barrel section; and a first target connected to said first shaft.
6. The hybrid fluid cooler according to claim 5, wherein said second nozzle comprises: a second barrel section; a second shaft extending from said second barrel section; and a second target connected to said first shaft.
7. The hybrid fluid cooler according to claim 6, wherein said second barrel section is vented.
8. The hybrid fluid cooler according to claim 1, wherein the liquid distributor comprises a basin.
9. The hybrid fluid cooler according to claim 6 wherein each of said first and second barrel sections comprises a liquid flow insert.
10. The hybrid fluid cooler according to claim 1, wherein said second plenum distance is approximately ten (10) inches.
11. A hybrid fluid cooler that extends along a longitudinal axis, comprising; a direct heat exchange section; an indirect heat exchange section; a first liquid distribution assembly located at a first position along the longitudinal axis wherein said first liquid distribution assembly comprises: a liquid distributor; a first dry plenum that extends a first plenum distance from the liquid distributor; a first wet plenum that extends from the first dry plenum to the direct heat exchange section; and a first nozzle, wherein said first nozzle is connected to said first liquid distribution assembly and extends therefrom through the first dry plenum and the first wet plenum; a second liquid distribution assembly located at a second position along the longitudinal axis, wherein said second position is vertically above said first position and wherein said second liquid distribution assembly comprises: a second liquid distribution basin; a second dry plenum that extends a second plenum distance from the second liquid distribution basin; and a second wet plenum that extends from the second dry plenum; and a second nozzle, wherein said second nozzle is connected to said second liquid distribution assembly and extends therefrom through the second dry plenum and the second wet plenum; and a lower collection basin, wherein said second plenum distance is greater than said first plenum distance.
12. The hybrid fluid cooler according to claim 11, wherein said direct heat exchange section is evaporative fill media.
13. The hybrid fluid cooler according to claim 12, wherein said indirect heat exchange section comprises heat exchange conduits.
14. The hybrid fluid cooler according to claim 11, wherein said first liquid distribution assembly collects liquid from the indirect heat exchange section and redistributes the liquid onto said direct heat exchange section.
15. The hybrid fluid cooler according to claim 11, wherein first nozzle comprises: a first barrel section; a first shaft extending from said first barrel section; and a first target connected to said first shaft.
16. The hybrid fluid cooler according to claim 15, wherein said second nozzle comprises: a second barrel section; a second shaft extending from said second barrel section; and a second target connected to said first shaft.
17. The hybrid fluid cooler according to claim 16, wherein said second barrel section is vented.
18. The hybrid fluid cooler according to claim 17, wherein the liquid distributor comprises a basin.
19. The hybrid fluid cooler according to claim 11, wherein said second plenum distance is approximately ten (10) inches.
20. The hybrid fluid cooler according to claim 16, wherein each of said first and second barrel sections comprises a liquid flow insert.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
(6) In various embodiments, a hybrid fluid cooler is provided that provides improved air and water distribution to the heat exchange coil allowing for improved thermal performance of the hybrid fluid cooler.
(7) Some preferred embodiments of the invention will now be described with reference to the drawing figures, in which like reference numerals refer to like elements throughout. Turning to
(8) As illustrated in
(9) The hybrid fluid cooler 10 also includes an air current generator 20, for example, a fan assembly that is positioned adjacent or next to the upper distribution assembly or liquid distributor 16. The distribution assembly 16 may comprise a pressurized spray system having conduits and nozzles or alternatively, it may include a distribution basin and nozzles. The fan assembly 20 is also located above the hybrid fluid cooler plenum 22 which extends within the frame or cabinet 12 of the hybrid fluid cooler 10.
(10) As illustrated in
(11) The lower heat exchange section 24 includes a pump 28 that pumps circulating cooling water through a vertical supply tube (not pictured) and into the upper distribution basin 16. As previously described, the upper distribution basin 16 has distribution nozzles 18 which spray cool water onto and through the upper fill material of the direct heat exchange section 14. The cooling water, which is relatively warm at this point, has its temperature reduced by passing through the fill material of the direct heat exchange section 14, due to a number of effects including contact with air and evaporation. This water, which is now relatively cooler, drops from the bottom of the upper direct heat exchange section 14 into a basin 29 of an intermediate water distribution assembly 30. As illustrated in
(12) The intermediate water distribution assembly 30 may accomplish one or more of several functions, including for example: collecting the cooling water; evenly redistributing the cooling water onto the lower heat exchanger 24; and/or providing an air baffle to separate the air flow passing through the upper fill material 14 from the air flow passing through the lower heat exchanger 24.
(13) The cooling water which is distributed by the intermediate water distribution assembly 30 next passes over the lower heat exchanger 24 and over the tube coils 26, thereby cooling the fluid being cooled by the lower heat exchanger 24. The cooling water, after it passes through the lower heat exchanger 24, then falls into a lower collection basin 27, from which it is recirculated by the pump 28 back up through the supply tube (not pictured) and into the upper distribution basin 16.
(14) As previously mentioned, the hybrid fluid cooler 10 employs a fan assembly 20 for generating airflow through the hybrid fluid cooler 10. While a single fan assembly is depicted, such hybrid fluid coolers may typically have one, two or three fans to move air. In the illustrated embodiment, the fan assembly 20 is oriented at the top of the hybrid fluid cooler 10 to provide a cross-flow air draw over both the upper direct heat exchange section 14 and generally co-current air flow through the lower indirect heat exchange section 24 as will be described in more detail below. A drift eliminator 32 and sidewall barrier 34 are provided on the interior adjacent the side of the lower indirect heat exchange section 24 and will be described in further detail below.
(15) Turning now to
(16) Turning to the lower, spray section 38, it extends from the lower end of the flow portion 36. The lower, spray section 38 includes a shaft or arm 42 that attaches to the lower end of the flow portion 36, and extends downward away from said end to a dispersing or spray target 44. The spray component 44 functions to spray or disperse the cooling fluid evenly over the indirect heat exchange section 24. The spray component 44 may have varying sizes, shapes and geometries.
(17) The upper flow section 36 and lower spray section 38 combine to provide an extended nozzle 31. While the nozzle 31 may vary in length depending upon hybrid fluid cooler 10 size, in one preferred embodiment of the present invention the nozzle has a length of approximately 10 inches (10).
(18) Turning now to
(19) The hybrid fluid cooler 10 has a space or spacing between the bottom of the intermediate basin 30 and the top of the indirect heat exchange section 24. This spacing can range in magnitude and in one embodiment, can range from ten inches (10) to twenty-four inches (24) or more, and preferably can be seventeen inches (17). The use of the nozzles 31 assist to create a dry plenum zone to permit air entry to the indirect heat exchanger 24, minimizing the pressure drop of the spray droplets and reducing the amount of water pull back from the inlet face. More specifically, the nozzles 31 improve air and water distribution to the indirect heat exchange section 24 for better thermal performance. This is achieved by at least a portion of the air entering the coils 26 of the indirect section 24 avoiding the spray of the outermost nozzles 31. This helps reduce the likelihood of pull back which improves the water distribution at the outermost portion of the coils 24. It also helps to avoid the pressure drop associated with the air traveling though the portion of the spray.
(20) Turning now to the operation of the fluid cooler 10, the fan assembly 20 provides a pressure differential drawing air upward and out of the cooling tower. Thus, in the upper portion of the hybrid fluid cooler 10, air is drawn into an air inlet 48 and passes across the upper fill media 14, before exiting the fill media 14 and being drawn upward and outward from the hybrid fluid cooler 10. The relatively warm cooling water which is pumped into the upper water distribution system 16, exits through nozzles 18 and falls over the upper evaporative fill pack 14, is cooled as it travels there through, and is collected in the intermediate water distribution assembly 30.
(21) As noted above, the intermediate water distribution assembly 30 has the extending nozzles 31 evenly arranged thereon and therefore is able to provide even water volume distribution over the lower indirect exchanger 24. As previously described, the use of the nozzles 31 assists to create a dry plenum zone to permit air entry to the indirect heat exchanger 24, minimizing the pressure drop of the spray droplets and reducing the amount of water pull back from the inlet face. More specifically, the nozzles 31 improve air and water distribution to the indirect heat exchange section 24 for better thermal performance.
(22) The relatively cool cooling water after it is distributed by the intermediate water distribution assembly 30 passes over the lower heat exchange section 24, picking up heat and evaporatively exchanging heat to air while doing so, and falls into the lower collection basin 27, from which it is recirculated by the pump.
(23) The intermediate water distribution assembly 30 performs a further function of separating the two major air flows of the hybrid fluid cooler 10. That is, the intermediate distribution assembly 30 separates the upper air flow, which is passing across the upper fill material 14 from the lower air flow which is passing over the lower heat exchanger 24.
(24) The lower heat exchanger 24 has at its air outlet side a side wall barrier or baffle 34, and a drift eliminator 32 disposed in the angled orientation generally shown in
(25) Turning now to
(26) As illustrated, the nozzle 200 extends through a dry plenum area or zone 218 and ceases at a wet plenum area or zone 220 at the target 214. In one embodiment of the present invention, the dry plenum 218 is approximately the length of the nozzle 200. The wet plenum extends from the target 214 to the heat exchange section 222.
(27) The many features and advantages of the invention are apparent from the detailed specification, and thus, it is intended by the appended claims to cover all such features and advantages of the invention which fall within the true spirit and scope of the invention. Further, since numerous modifications and variations will readily occur to those skilled in the art, it is not desired to limit the invention to the exact construction and operation illustrated and described, and accordingly, all suitable modifications and equivalents may be resorted to, falling within the scope of the invention.