Cooling tower with UV treatment of drift
11774195 · 2023-10-03
Assignee
Inventors
Cpc classification
F28F25/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
C02F2201/3228
CHEMISTRY; METALLURGY
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
F28C1/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F2025/005
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F2265/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
The present disclosure relates to a cooling tower having a fill media, water distribution system, plenum, and an ultraviolet (UV) light emitter. The water distribution system distributes water to the fill media. A flow of air passes through the fill media and past a flow of the water and out of the cooling tower via an outlet. The plenum is defined by a volume between the fill media and the outlet. The UV light emitter is disposed in the plenum and configured to inactivate or kill organisms in a drift.
Claims
1. A cooling tower, comprising: a fill media; a water distribution system to distribute water to the fill media, wherein a flow of air passes through the fill media and past a flow of the water; a plenum defined by a volume between the fill media and an outlet; an ultraviolet (UV) light emitter disposed perpendicularly to the flow of air in the plenum and configured to inactivate organisms in a drift; and a shield disposed between the UV light emitter and the fill media and configured to reduce UV irradiation of the fill media and to reflect UV light.
2. The cooling tower according to claim 1, further comprising a plurality of the UV light emitters.
3. The cooling tower according to claim 2, further comprising a relatively higher percentage of the plurality of UV light emitters being disposed proximal to the outlet in comparison to a remainder of the plenum.
4. The cooling tower according to claim 1, further comprising a drift eliminator disposed between the fill media and the plenum.
5. The cooling tower according to claim 1, wherein the cooling tower is a crossflow cooling tower.
6. The cooling tower according to claim 1, wherein the cooling tower is a counter-flow cooling tower.
7. The cooling tower according to claim 1, further comprising a fan to generate the flow of air.
8. The cooling tower according to claim 1, further comprising a hyperbolic shell to generate the flow of air via warm air rising in the hyperbolic shell.
9. A method of treating a drift from a cooling tower, the method comprising the steps of: providing a fill media; providing a water distribution system; generating a flow of water through the fill media with the water distribution system; generating a flow of air through the fill media and out of the cooling tower through an outlet; disposing an ultraviolet (UV) light emitter perpendicularly to the flow of air in a plenum of the cooling tower and configuring the UV light emitter to expose the drift in the plenum to a sufficient luminous flux of UV light to inactivate organisms in the drift, wherein the plenum is defined by a volume between the fill media and the outlet; and shielding the fill media from UV light exposure with a shield that reflects UV light disposed between the fill media and the UV light emitter.
10. The method according to claim 9, further comprising the step of disposing a plurality of the UV light emitters in the plenum.
11. The method according to claim 10, further comprising the step of disposing a higher percentage of the plurality of UV light emitters proximal to the outlet in comparison to the percentage of UV light emitters distal from the outlet.
12. The method according to claim 9, further comprising the step of disposing a drift eliminator between the fill media and the plenum.
13. The method according to claim 9, further comprising the step of generating the flow of air with a fan.
14. The method according to claim 9, further comprising the step of generating the flow of air via warm air rising through the cooling tower.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The above-mentioned and other features and advantages of this disclosure, and the manner of attaining them, will become more apparent and the disclosure itself will be better understood by reference to the following description of various embodiments of the disclosure taken in conjunction with the accompanying figures.
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DETAILED DESCRIPTION OF THE INVENTION
(11) In the following detailed description, reference is made to the accompanying drawings, which form a part hereof and show by way of illustration specific embodiments in which the invention may be practiced. These embodiments are described in sufficient detail to enable those skilled in the art to practice them, and it is to be understood that other embodiments may be utilized, and that structural, logical, processing, and electrical changes may be made. It should be appreciated that any list of materials or arrangements of elements is for example purposes only and is by no means intended to be exhaustive. The progression of processing steps described is an example; however, the sequence of steps is not limited to that set forth herein and may be changed as is known in the art, with the exception of steps necessarily occurring in a certain order.
(12) Cooling towers regulate the temperature of a fluid by passing the fluid through a tower apparatus that brings it into contact with ambient air. These towers typically include a hot liquid distribution system. Examples of these distribution systems may have a series of water distribution nozzles or an apertured distribution basin or the like, and a cold water collection basin positioned at the base or bottom of the cooling tower. Commonly, a water dispersing fill media structure is disposed in the space between the hot water distribution system and the underlying cold water collection basin. The aforementioned fill media structure oftentimes includes either a plurality of elongated, horizontally arranged and staggered splash bars supported at spaced intervals by an upright grid structure or frame assembly, or a series of fill media packs or fill media packing composed of a number of film fill media sheets. During assembly of the evaporative cooling towers, typically, an outer shell or support structure is built first and then the fill media is installed. In the case of splash type fill media, a rack or grid support is affixed to the support shell. Splash bars are then threaded into the rack. The splash bars generally provide a surface for consistent, predictable dispersal and breakup of the water droplets over a range of water loadings typically encountered during operation of the evaporative cooling tower. Typically, these splash bars are long and thin and the fill media structure includes a great number of them. In the case of film fill media, fill media packs may be employed and installed into the support structure of the cooling tower. Fill media packs may consist of individual sheets glued or attached by some other means to one another to make blocks. Alternatively, fill media packs may consist of sheets hung from support members. Successive sheets are pushed on support members from one end and push down the support member until the support member is populated with the desired number of sheets. The fill media packs are then placed in the support structure. In yet another example, fill media may include coils of tubing that may include fins and/or supporting panels. These coils may be included with other types of fill media.
(13) In a cross-flow tower, hot liquid is distributed over the fill media section such that it comes into contact with cooler ambient air, which cools the hot liquid as the air travels horizontally or laterally through the fill media section. These towers typically include an air inlet region that is disposed adjacent to the fill media section, which allows air from outside of the tower to travel into the fill media section. Generally, the dimensions of the air inlet region may correspond to the height of the fill media section, allowing even distribution of air travel through the fill media section. The tower also includes a plenum area or plenum chamber for receiving the air after it has travelled through the fill media section, and a fan or other air current generator for directing the air into the atmosphere once again.
(14) Hot liquid may be distributed in a cooling tower using a pipe distribution system. A pump may feed water into the pipes, which carry the water to nozzles that eject the water onto the fill media section. The ejected water then travels through the fill media section and is collected at the bottom in a cold liquid basin, which may have an outlet (e.g., a pipe opening) for passing the cold liquid out of the cooling tower. As an alternative to a pipe distribution system, hot liquid may also be distributed in a cooling tower using water distribution basins having apertures for the water to flow through onto the fill media section. Such as system is known as a gravity-driven distribution system. Once the liquid flows through the fill media section and is cooled, it is similarly collected by a cold water basin, which may eject the cooled liquid to the outside.
(15) Air flowing past the falling water can entrain water droplets in the air flow. To remove this drift, fill media sections typically include drift eliminators. In this manner, water is conserved and icing is reduced. However, some drift does pass through the drift eliminators and is drawn out of the cooling tower via the current generator.
(16) Systems and methods disclosed herein provide an ultraviolet (UV) treatment of the drift in both crossflow and counterflow cooling towers. The treatment of the drift is more efficient because of the greater penetration of the UV light through air and small droplets as opposed to treating water in the cold water basins or other areas. In addition, in the plenum area of the cooling tower reduces water exposure to the UV light emitters leading to a longer service life. Furthermore, because the UV exposure only occurs just prior to ejection from the cooling tower, organisms in the drift do not have sufficient time to develop UV resistance. This may increase the lethality to waterborne organisms.
(17) Referring now to
(18) The first water basin 102 may be disposed in the first collection basin module 110, and the second water basin 104 may be disposed in the second collection basin module 114. More specifically, the first water basin 102 may be disposed at a bottom portion of the first collection basin module 110, and the second water basin 104 may be disposed at a bottom portion of the second collection basin module 114. The first collection basin module 110 and the second collection basin module 114 may be laterally spaced apart from one another, and thus the first water basin 102 and the second water basin 104 may be laterally spaced apart from one another.
(19) As depicted in
(20) As depicted in
(21) In a separate layer—specifically, a top layer—the first heat exchange module 120, the fan module 122, and the second heat exchange module 124 may be disposed. The first heat exchange module 120 may be disposed above the first collection basin module 110 or, in other words, the first heat exchange module 120 may be disposed vertically adjacent to the first collection basin module 110. And the second heat exchange module 124 may be disposed above the second collection basin module 114 or, in other words, the second heat exchange module 124 may be disposed vertically adjacent to the second collection basin module 114. The heat exchange modules 120, 124 may be disposed vertically adjacent to the collection basin modules 110, 114 in a longitudinal direction. The collection basin modules 110, 114 and the heat exchange modules 120, 124 may have openings along their exterior sides for allowing air from outside of the cooling tower 100 to travel into the cooling tower 100 or, specifically, to travel into the collection basin modules 110, 114 and the heat exchange modules 120, 124.
(22) The fan module 122 may be disposed vertically adjacent to the plenum module 112. Both the plenum module 112 and the fan module 122 may comprise hollow chambers for receiving air travelling through the collection basin modules 110, 114 and the heat exchange modules 120, 124 from outside of the cooling tower 100. The fan module 122 may also include a supporting attachment for holding a fan cylinder and a fan 106. The fan 106 may be an example of an air current generator, such as a fan, chimney, or impeller where the discharging air exits. The fan 106 may pull the air that travels through the collection basin modules 110, 114 and the heat exchange modules 120, 124 from the outside atmosphere into the plenum module 112 and the fan module 122 and back out into the atmosphere.
(23) Additionally, the cooling tower 100 may comprise a first hot water basin 138 and a second hot water basin 140 (see, e.g.,
(24) Referring now to
(25) Referring now to
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(27) Optionally, as shown in detail B of
(28) While eight (8) UV light emitters 118 are shown in
(29) The UV light emitters 118 are shown evenly distributed within the plenum 116. However, in other examples, the UV light emitters 118 may be disposed unevenly within the plenum 116. For example, as the air moves up through the plenum 116 and approaches the fan 106, the speed of the air flow increases and, because of the “V” shaped plenum 116, the volume proximal to the fan 106 is greater. To generate a sufficient luminous flux of UV light to destroy organisms in the drift, a greater number or more powerful versions of the UV light emitters 118 may be disposed in close proximity to the fan 106 as shown in
(30) To continue with the general description of the cooling tower 100, each of the collection basin modules 110, 114 and the heat exchange modules 120, 124 include a fill media portion. Specifically, the first collection basin module 110 includes a first fill media portion 130. The second collection basin module 114 includes a second fill media portion 132. The first heat exchange module 120 includes a third fill media portion 134. And the second heat exchange module 124 includes a fourth fill media portion 136. The fill media portions 130, 134 may form a first heat exchange section, and the fill media portions 132, 136 may form a second heat exchange section.
(31) While the heat exchange modules 120, 124 are described as containing fill media, one of ordinary skill in the art would appreciate that the heat exchange modules 120, 124 may comprise other heat exchange means, such as, for example, closed circuit coils or tube bundles.
(32) During operation, hot water placed in the hot water basins 138, 140 may travel through the cooling tower 100 in the longitudinal direction towards the cold water basins 102, 104. Specifically, hot water that is placed in the first hot water basin 138 may travel through the openings 108 in the first hot water basin 138 and into the third fill media portion 134 and then into the first fill media portion 130. In other words, the first fill media portion 130 and the third fill media portion 134 form a continuous path for the hot water which is placed in the first hot water basin 138 to travel along and into the first cold water basin 102. As the hot water travels along the length of the first fill media portion 130 and the third fill media portion 134 or, the first fill media section, it is cooled by cooler ambient air that travels horizontally (or substantially horizontally) into the first collection basin module 110 and the first heat exchange module 120 or, specifically, the first fill media portion 130 and the third fill media portion 134 disposed in the first collection basin module 110 and the first heat exchange module 120, respectively, from outside of the cooling tower 100. Thus, when the hot water reaches the first cold water basin 102, it has been cooled and is therefore received as cold water in the first cold water basin 102. The ambient air, which has been used to cool the hot water, is drawn into the plenum module 112 and the fan module 122 by the fan 106 and upwards and out of the cooling tower 100.
(33) Similarly, hot water placed in the second hot water basin 140 may travel through the openings 108 in the second hot water basin 140 and into the fourth fill media portion 136 and the second fill media portion 132. The hot water that is placed in the second hot water basin 140 is separate from the hot water that is placed in the first hot water basin 138. Like the first fill media portion 130 and the third fill media portion 134, the second fill media portion 132 and the fourth fill media portion 136 form a continuous path for the hot water which is placed in the second hot water basin 140 to travel along and into the second cold water basin 104. Much in the same way that the hot water placed in the first water basin 138 is cooled, the water placed in the second hot water basin 140 is cooled using cooler ambient air which enters the second fill media portion 132 and the fourth fill media portion 136 from the sides of the second collection basin module 114 and the second heat exchange module 124.
(34) The operation of cooling the hot water that is placed in the hot water basins 138, 140 that is described in that of a cross-flow cooling tower. Thus, the fill media portions 130, 132, 134, 136 may comprise cross-flow fill media.
(35) To assemble the cooling tower 100 depicted in
(36) The cooling tower 100 depicted in
(37) Each of the six (6) modules of the cooling tower 100 may be assembled in a factory and transported to a job site for final assembly in the cooling tower 100. In particular, the first collection basin module 110 may be assembled in a factory including the first water basin 102, and the second collection basin module 114 may be assembled in a factory including the second water basin 104. Because both the first water basin 102 and the second water basin 104 are assembled into modules at the factory, no water sealing would need to be done at the job site where the cooling tower 100 is assembled. The fan 106 and the fan cylinder (not labeled) may be assembled at the job site.
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(39) Although the cooling tower 100 shown in
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(44) 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, for example an induced draft heat exchanger has been illustrated but a forced draft design can be adapted to gain the same benefits and, accordingly, all suitable modifications and equivalents may be resorted to that fall within the scope of the invention. As noted above, another example is replacing one or more of the modules containing fill media with modules that may include closed circuit coils or tube bundles for cooling and/or condensing fluids. In yet another example one or more modules may include fill media and closed circuit coils, tube bundles, or splash bars.
(45) Another construction in the spirit of the scope of this invention is to add more modules in the plan view. For example a tower of approximately twice the cooling capacity could be comprised of twice as many collection basin modules, twice as many heat exchange modules and four times as many plenum and fan modules. More than twice as many plenum and fan modules may desirable to place a larger diameter fan. Furthermore, an odd number of plenum and fan modules may desirable to have a central module that contains the fan mechanical equipment, particularly the motor, gearbox, and fan hub.
(46) Yet another construction is spirit of the scope of this invention is to add more modules vertically. For example additional modules with heat exchangers could be placed between the collection modules and the heat exchange modules as previously described. Additional modules between the plenum modules and the fan modules can be placed to compliment taller overall heat exchanger assemblies.
(47) Also, in the spirit of the scope of the invention is a construction using fewer modules. For example the plenum module or portions of the plenum module can be incorporated in one or both collection basin modules. Likewise, the fan module or portions of the fan module can be incorporated in one or both of the heat exchange modules.
(48) Another construction in the spirit of the scope of the invention using fewer modules may be a one module high tower with two collection basin modules. The plenum and fan may also reside in those same collection basin modules but may also reside in a separate single module. In this case, the first heat exchange section and the second heat exchange sections are fully contained in the respective collection basin modules.