INDUCED DRAFT HEAT REJECTION EQUIPMENT WITH TOP MOUNTED BACKWARD-CURVED CENTRIFUGAL FANS
20230047198 · 2023-02-16
Inventors
- Scott Nevins (Taneytown, MD, US)
- Robert Vandenboer (Taneytown, MD, US)
- Jeffrey Luke Herwig (Taneytown, MD, US)
Cpc classification
F28C2001/006
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28B1/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28C1/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28C2001/145
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
Abstract
Heat rejection devices, including cooling towers, condensers and closed circuit coolers, having side-mounted backward-curved centrifugal fans mounted on top of the device, above a fan plenum instead of a top-mounted axial fan. Heat rejection capability can be easily modified by adding or subtracting fans without impacting unit footprint. Also, the ability to handle higher static pressures allows for the use of a more densely packed heat exchanger in the same footprint unit, which will increase the unit performance.
Claims
1. A heat rejection device comprising: a housing having four vertically oriented sides arranged in a rectangle, a bottom portion comprising a water basin, and a top portion comprising a fan section, said housing further defining an air intake plenum immediately above said water basin, a fan plenum immediately below said fan section; said heat rejection device further comprising a water distribution system below said fan plenum and a heat exchange section below said water distribution system, said water distribution system configured to spray water into said heat exchange section; wherein said fan section comprises at least one backward-curved centrifugal fan mounted on its side with an air intake side facing downward.
2. The heat rejection device of claim 1, comprising a cooling tower wherein said heat exchange section is a direct heat exchanger in which hot water distributed from said water distribution system is cooled by direct contact with air drawn through said heat rejection device by said at least one backward-curved centrifugal fan.
3. The heat rejection device of claim 1, comprising a closed circuit condenser or cooler wherein said heat exchange section comprises an indirect heat exchange coil configured to receive a hot process fluid.
4. The heat rejection device of claim 3, further comprising a dry indirect heat exchange section arranged in said housing below said fan plenum and above said water distribution system.
5. The heat rejection device according to claim 1, wherein said at least one backward-curved centrifugal fans comprises at least two backward-curved centrifugal fans.
6. The heat rejection device according to claim 5, wherein said at least two backward-curved centrifugal fans are arranged in-line on one side of said heat rejection device.
7. The heat rejection device according to claim 5, wherein said at least two backward-curved centrifugal fans are arranged on opposite sides of said heat rejection device.
8. The heat rejection device according to claim 1, wherein said at least one backward-curved centrifugal fans comprises at least three backward-curved centrifugal fans.
9. The heat rejection device according to claim 8, wherein said at least three backward-curved centrifugal fans are arranged in-line.
10. The heat rejection device according to claim 8, wherein said at least three backward-curved centrifugal fans are set in a staggered arrangement.
11. A dry heat rejection device comprising two heat exchange tube bundles arranged in a V-shaped frame, said coil bundles each comprising a plurality of heat exchange tubes arranged horizontally; said heat exchange tubes connected at one end to a hot fluid inlet header and at another end to a cool fluid outlet header; said dry heat rejection device further comprising a plurality of backward-curved centrifugal fans mounted atop said heat rejection device with air intake side facing downward and configured to draw air through said heat exchange tube bundles into a space between said heat exchange tube bundles, through said air intake side of said backward-curved centrifugal fans and out of said dry heat rejection device.
12. A cross-flow heat rejection device comprising: a housing having four vertically oriented sides arranged in a rectangle, a bottom portion comprising a water basin, and a top portion comprising a fan section, said housing further defining a central plenum flanked by two heat exchange sections each comprising liquid dispersion media; said heat rejection device further comprising a water distribution system below said fan section and above both said two heat exchange sections, said water distribution system configured to spray water into said liquid dispersion media in said two heat exchange sections; wherein said fan section comprises at least one backward-curved centrifugal fan mounted on its side with an air intake side facing downward toward said central plenum.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0011] The foregoing summary, as well as the following detailed description of the preferred invention, will be better understood when read in conjunction with the appended drawings. For the purpose of illustrating the invention, there are shown in the drawings embodiments which are presently preferred. It should be understood, however, that the invention is not limited to the precise arrangements and instrumentalities shown. In the drawings:
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[0027] Features in the attached drawings are numbered with the following reference numerals:
TABLE-US-00001 100 cooling tower 102 cooling tower housing 104 hot water intake 106 water distribution system 108 fill 110 air intake plenum 112 water basin 114 cool water outlet 116 fan plenum 120 backward-curved centrifugal fans 122 air intake openings 200 condenser or closed circuit cooler 202 condenser/cooler housing 206 water distribution system 208 coil 210 an air intake plenum 212 water basin 213 water pump 214 return pipe 216 fan plenum 220 backward-curved centrifugal fans 222 air intake openings 300 dry cooler/condenser 302 frame 304 coil bundles 306 finned tubes 308 inlet header 309 inlet header connection 310 outlet header 312 return bend 314 backward-curved centrifugal fans 400 cross flow cooling tower 402 cross flow cooling tower housing 404 hot water intake 406 water distribution system 408 liquid dispersion media 410 central plenum 412 water basin 414 cool water outlet 420 backward-curved centrifugal fans 422 air intake openings
DETAILED DESCRIPTION OF THE INVENTION
[0028] According to a first embodiment, represented generally in
[0029] According to a second embodiment, represented generally in
[0030] In a hybrid embodiment, the condenser/cooler may have a separate dry heat exchange section including a second process fluid coil located below the fan plenum and above the water distribution system. According to this embodiment, process fluid flows through the dry heat exchange section before passing to coil 208 beneath the water distribution system.
[0031] As discussed above, one advantage of the invention is the ability to easily adjust heat rejection capability adding/subtracting fans without impacting unit footprint. In this regard, several fan arrangements are presented. According to some embodiments, two, three, four or more fans may be arranged in-line or in a staggered arrangement. In the case of a single air inlet face, the row of in-line fans may be arranged above a single air inlet face as shown in
[0032] An example of a dry cooler/condenser 300 is shown in
[0033] Hot process fluid, shown in red, enters the inlet header 308 via the inlet header connection 309. From the inlet header 308, the hot process fluid travels transversely across the heat exchanger, generally parallel to the horizontal. Heat from the process fluid dissipates through the coil tubes surface and out to the fins (not shown). Ambient air is drawn over the coil surface by the fans located at the top of the unit. Heat from the process fluid transfers to the air and discharged to the atmosphere. Cool process fluid, shown in blue, exits the unit through the outlet headers.
[0034] In a cross-flow cooling tower embodiment, represented in
[0035] In operation, hot water enters the water distribution system 406 via the hot water intakes 404 and is sprayed over the fill 408. Air enters the device through openings 422 in the housing on the sides of the fill sections opposite the central plenum 410. The air is drawn through the fill 408, into and up through the central plenum 410 and out through the backward-curved centrifugal fans 420. Contact between the falling hot water and the rising air cools the water which falls into the basin for recirculation back to the source.
[0036] The significant and unexpected advantages of replacing the axial fan in induced draft cooling towers, closed circuit coolers and condensers is explained above in the Summary of the Invention and need not be repeated here.
[0037] It will be appreciated by those skilled in the art that changes could be made to the preferred embodiments described above without departing from the inventive concept thereof. It is understood, therefore, that this invention is not limited to the particular embodiments disclosed, but it is intended to cover modifications within the spirit and scope of the present invention as outlined in the present disclosure and defined according to the broadest reasonable reading of the claims that follow, read in light of the present specification.