Modular air cooled condenser apparatus and method
11112180 · 2021-09-07
Assignee
Inventors
Cpc classification
F28B1/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28B7/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y10T29/4935
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
F28B9/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
B01D5/00
PERFORMING OPERATIONS; TRANSPORTING
F28B7/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28B9/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
Modular air cooled condenser apparatus and related methods are disclosed. An example mechanical draft modular air cooled condenser includes a succession of a first condenser bundle panel, a second condenser bundle panel, a third condenser bundle panel, and a fourth condenser bundle panel. The example condenser also includes a first, second, third, and fourth condensate headers connected to respective ones of the first, second, third, and fourth condenser bundle panels. The example condenser also includes a fan positioned to create a draft to flow over the first, second, third, and fourth condenser bundle panels.
Claims
1. A mechanical draft modular air cooled condenser comprising: a succession of a first condenser bundle panel, a second condenser bundle panel, a third condenser bundle panel, and a fourth condenser bundle panel; a first condenser pair including: the first condenser bundle panel having a first top end and a first bottom end; a first condensate header connected to the first bottom end, the first condenser bundle panel including a first set of parallel tubes connected perpendicularly to the first condensate header; the second condenser bundle panel consecutive to the first condenser bundle panel, the second condenser bundle panel having a second top end and a second bottom end; and a second condensate header connected to the second bottom end, the second condenser bundle panel including a second set of parallel tubes connected perpendicularly to the second condensate header, the first bottom end of the first condenser bundle panel and the second bottom end of the second condenser bundle panel converging toward each other, the first condensate header and the second condensate header separated by a first distance, the first condensate header parallel to the second condensate header; a second condenser pair including: the third condenser bundle panel consecutive to the second condenser bundle panel, the third condenser bundle panel having a third top end and a third bottom end; a third condensate header connected to the third bottom end, the third condenser bundle panel including a third set of parallel tubes connected perpendicularly to the third condensate header, the third condensate header and the first condensate header separated by a second distance, the second distance greater than the first distance, the third condensate header parallel to second condensate header; the fourth condenser bundle panel consecutive to the third condenser bundle panel, the fourth condenser bundle panel having a fourth top end and a fourth bottom end; and a fourth condensate header connected to the fourth bottom end, the fourth condenser bundle panel including a fourth set of parallel tubes connected perpendicularly to the fourth condensate header, the third bottom end of the third condenser bundle panel and the fourth bottom end of the fourth condenser bundle panel converging toward each other, the fourth condensate header and the third condensate header separated by the first distance, the fourth condensate header and the second condensate header separated by the second distance, the fourth condensate header parallel to third condensate header; a fan positioned to create a draft to flow over the first condenser bundle panel, over the second condenser bundle panel, over the third condenser bundle panel, and over the fourth condenser bundle panel; and a support frame that supports the first, second, third, and fourth condenser bundle panels.
2. The modular air cooled condenser according to claim 1, wherein the second top end of the second condenser bundle panel and the third top end of the third condenser bundle panel converge toward each other.
3. The modular air cooled condenser according to claim 1, further including a shroud surrounding the fan.
4. The modular air cooled condenser according to claim 1, wherein individual tubes of the first, the second, the third, and the fourth sets of parallel tubes have a length equal to approximately two meters.
5. The modular air cooled condenser according to claim 1, wherein the first, the second, the third, and the fourth condenser bundle panels each have a length greater than ten meters.
6. The modular air cooled condenser according to claim 1, wherein the second condensate header and the third condensate header are disposed between the first condensate header and the fourth condensate header.
7. The modular air cooled condenser according to claim 1, wherein the first condenser bundle panel and the second condenser bundle panel form a V-shape.
8. The modular air cooled condenser according to claim 1, wherein the second condenser bundle panel and the third condenser bundle panel form an inverted V-shape.
9. A frame comprising: a first condenser bundle panel including a first set of parallel tubes connected perpendicularly to a first condensate header, the first condenser bundle panel removable from the frame; a second condenser bundle panel including a second set of parallel tubes connected perpendicularly to a second condensate header, the second condenser bundle panel removable from the frame; a third condenser bundle panel including a third set of parallel tubes connected perpendicularly to a third condensate header, the third condenser bundle panel removable from the frame; and a fourth condenser bundle panel including a fourth set of parallel tubes connected perpendicularly to a fourth condensate header, the fourth condenser bundle panel removable from the frame.
10. The frame of claim 9, wherein the first condenser bundle panel is at least ten meters in length and respective tubes of the first set of parallel tubes have a length of approximately two meters.
11. The frame of claim 9, wherein the first condenser bundle panel, the second condenser bundle panel, the third condenser bundle panel, and the fourth condenser bundle panel are arranged substantially parallel to each other, and the frame is dimensioned for removable placement in a shipping container for transportation.
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
(8) 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.
(9) Turning now to
(10) Turning now to
(11) Turning now to
(12) Each of the bundle assemblies 28 are assembled prior to shipping wherein each comprises a riser to header transition piece 26, steam manifold 24, finned tubes 25, and steam condensate headers 27. As can be seen in
(13) Typically, turbine back pressure of an air cooled condenser or the like is limited by the maximum steam velocity in the tubes (to limit erosion) wherein the steam velocity is increasing with a decrease of back pressure (due to density of steam). Thus, due to the addition of tubes in accordance with the present invention, the steam is still maintained at the maximum allowable steam velocity but at a lower back pressure. The other limitation the current delta design addresses is that the pressure at the exit of the secondary bundles cannot be less than the vacuum group capability. This pressure typically results from turbine back pressure minus the pressure drop in ducting minus the pressure drop in the tubes. Accordingly, due to the reduced pressure drop in the tubes, the allowable turbine back pressure is lower with the delta 18 design.
(14) Furthermore, the above-described bundle design also reduces the pressure drop within the individual delta 18. For example, the heat exchange that takes place via the deltas 18, is dependent upon the heat exchange coefficient, i.e., the mean temperature difference between air and steam and the exchange surface. Due to the reduced pressure drop as previously described, the mean pressure (average between inlet pressure and exit pressure) in the exchanger is higher with the design of the current condenser configuration 10. In other words, because steam is saturated, the mean steam temperature is also higher for the same heat exchange surface resulting in increased heat exchange.
(15) Turning now to
(16) Alternatively, the above described embodiments of the present employ tube bundles manufactured and assembled, prior to shipping, having steam manifold 24 and steam condensate headers 27, alternative embodiment bundles may not include a manifold prior to shipping. More specifically, in such embodiments, the tube bundles may be ship without steam manifolds 24 attached thereto. In said embodiments, the tube bundles 28 may be assembled in field to form the A-type configuration, as discussed above. However, instead of employing two steam manifolds, this alternative embodiment may employ a single steam manifold wherein the single steam manifold extends along the “apex” of the A configuration.
(17) Referring now to
(18) Next, the delta, generally indicated as 18, is assembled in the field as identified by numerals 44 and 46. As previously described, while the bundles may be positioned at any desired angle, they preferably are positioned at an angle (y) approximately twenty degrees(20°) to approximately thirty degrees(30°) from vertical and an angle (x) approximately sixty degrees(60°) to approximately seventy degrees(70°) from horizontal. More specifically, the bundles are positioned at twenty-six degrees)(26°) from vertical and sixty-four degrees(64°) from horizontal. As designated by numeral 46, a single A-type delta is illustrated 18 formed by two bundle assemblies 28 to form the “A” configuration. The bundle assemblies 28 self support one another in this configuration.
(19) Turning now to the air cooled condenser module 10 as referenced by the numeral 48, it is depicted employing five deltas 18. As discussed above, the air cooled condenser is an improvement over current air cooled condenser types and it has a high “pre-fabrication” level which equates to reduced installation cost and reduced installation time. Moreover, the above-described design reduces the pressure drop, thereby providing a more efficient heat exchange apparatus.
(20) 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 a forced draft air cooled condenser has been illustrated but an induced 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.