Advanced large scale field-erected air cooled industrial steam condenser
11499782 ยท 2022-11-15
Assignee
Inventors
- Thomas W. Bugler (Frederick, MD, US)
- Jean-Pierre Libert (Frederick, MD, US)
- Mark Huber (Sykesville, MD, US)
Cpc classification
F28F9/002
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28B1/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D1/05366
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28B9/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28B9/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A large scale field erected air cooled industrial steam condenser. A bottom bonnet runs along the bottom length of the heat exchanger bundle for delivering steam to the bottom end of the condenser tubes and for receiving condensate formed in those same tubes. The tops of the tubes are connected to a top bonnet. Uncondensed steam and non-condensables flow into the top bonnet from the condenser tubes. Each cell of the ACC is fed by steam distribution manifold suspended from and directly below the bundle support framework.
Claims
1. A large scale field erected air cooled industrial steam condenser connected to an industrial steam producing facility, comprising: a single or plurality of condenser section streets, each condenser section street comprising a row of condenser section cells, each cell comprising a single fan drawing air through a plurality of heat exchanger bundles, and each heat exchanger bundle having a longitudinal axis and a transverse axis perpendicular to its longitudinal axis, each heat exchanger bundle comprising a secondary condenser, a primary condenser section and a top bonnet connected to and in fluid communication with a top end of each tube in said secondary condenser section and said primary condenser sections, a primary bottom bonnet connected to and in fluid communication with a bottom end of each tube in said primary condenser sections, an internal secondary chamber inside the bottom bonnet connected to and in fluid communication with a bottom end of each tube in said secondary condenser section, said secondary bottom bonnet connected to a top side of said primary bottom bonnet, each said primary bottom bonnet having a single stem inlet; each condenser section cell comprising an upper steam distribution manifold suspended from and directly adjacent a bottom side of said heat exchanger bundles arranged along an axis that is perpendicular to a longitudinal axis of said heat exchanger bundles at a midpoint of said heat exchanger bundles, said upper steam distribution manifold comprising a cylinder closed at both ends having at its top surface a plurality of connections adapted to connect to said primary bottom bonnet inlets, and having at a bottom surface a single connection to a steam riser.
2. The large scale field erected air cooled industrial steam condenser according to claim 1, wherein each heat exchanger bundle comprises a single condenser section in which all tubes in the heat exchanger bundle receive steam from a bottom end of said tubes.
3. The large scale field erected air cooled industrial steam condenser according to claim 2, wherein each heat exchanger bundle comprises two primary condenser sections flanking said secondary section.
4. The large scale field erected air cooled industrial steam condenser according to claim 1, wherein each said heat exchanger bundle is suspended from the condenser section frame by a plurality of flexible hanging supports.
5. The large scale field erected air cooled industrial steam condenser according to claim 4, wherein said flexible hanging supports each comprise a central rod connected at each end to a connection sleeve, and wherein one connection sleeve of each flexible hanging support is connected to said condenser section frame and a second connection sleeve of each flexible hanging support is connected to a tube sheet of said heat exchanger bundle.
6. The large scale field erected air cooled industrial steam condenser according to claim 1, wherein said plurality of finned tubes in said primary condensers have a length of 2.0 m to 2.8 m, a cross-sectional height of 120 mm and a cross-sectional width of 4-10 mm.
7. The large scale field erected air cooled industrial steam condenser according to claim 6, wherein said tubes have a cross-sectional width of 5.2-7 mm.
8. The large scale field erected air cooled industrial steam condenser according to claim 7, wherein said tubes have a cross-sectional width of 6.0 mm.
9. The large scale field erected air cooled industrial steam condenser according to claim 1, wherein said plurality of finned tubes in said primary condensers have fins attached to flat sides of said tubes, said fins having a height of 9 to 10 mm, and spaced at 5 to 12 fins per inch.
10. The large scale field erected air cooled industrial steam condenser according to claim 1, wherein said plurality of finned tubes in said primary condensers have fins attached to flat sides of said tubes, said fins having a height of 18 mm to 20 mm spanning a space between adjacent tubes and contacting adjacent tubes, said fins spaced at 5 to 12 fins per inch.
11. The large scale field erected air cooled industrial steam condenser according to claim 1, wherein the secondary condenser section is centrally located along said heat exchange bundle and flanked at each end by primary condenser sections.
12. A method of assembling a large scale field erected air cooled condenser according to claim 1, comprising assembling a condenser section at ground level, including a condenser section frame and said heat exchanger bundles; supporting said condenser section at a height from ground sufficient only to suspend an upper steam distribution manifold directly beneath and adjacent said heat exchanger bundles, assembling a plenum section with fan deck and fan assembly at ground level; raising said assembled condenser section and upper steam distribution manifold and placing it atop a corresponding understructure; raising said assembled plenum section and placing it atop said condenser section.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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(31) Features in the attached drawings are numbered with the following reference numerals:
(32) TABLE-US-00001 2 heat exchanger panel 4 primary condenser section 6 secondary condenser section 7 tubes 8 condenser bundles 10 top tube sheet 12 top bonnet 14 bottom tube sheet 15 lifting/support angle 16 bottom bonnet 18 stem inlet/condensate outlet 20 shield plate 21 perforations 22 scalloped edge 24 secondary bottom bonnet 26 nozzle (for secondary bottom bonnet) 27 ACC cell/module 28 upper steam manifold 29 Y-shaped nozzle 30 riser (LSM to USM) 31 turbine exhaust duct 32 lower steam distribution manifold 34 street/row of ACC cells 36 frame (of tube bundle section) 37 condenser section module 40 deflector shield 42 condensate piping 50 hangers 54 hanger rod 56 hanger sleeve 58 hanger fixed discs or knobs 60 hanger recesses 62 understructure module 64 plenum section module
DETAILED DESCRIPTION
(33) Referring
(34) An internal secondary chamber, or secondary bottom bonnet 24, is fitted inside the bottom bonnet 16 in direct fluid connection with only the tubes 7 of the secondary section 6 and extends the length of the secondary section 6, but preferably not beyond. This secondary bottom bonnet 24 is fitted with a nozzle 26 to withdraw non-condensables and condensate.
(35) The steam inlet/condensate outlet 18 for the heat exchanger panel 2 and the steam inlet/condensate outlets 18 for all of the heat exchanger panels in the same ACC cell/module 27 are connected to a large cylinder or upper steam distribution manifold 28 suspended beneath the heat exchanger panels 2 and which runs perpendicular to the longitudinal axis of the heat exchanger panels 2 at their midpoint. See, e.g.,
(36) According to this construction, each cell 27 of the ACC receives steam from a single riser 30. The single riser 30 feeds steam to a single upper steam distribution manifold 28 suspended directly beneath the center point of each heat exchanger panel 2, and the upper steam distribution manifold 28 feeds steam to each of the heat exchanger panels 2 in a cell 27 via a single steam inlet/condensate outlet 18.
(37) Therefore, the steam from an industrial process travels along the turbine exhaust duct 31 at or near ground level, or at any elevation(s) suited to the site layout. When the steam duct 31 approaches the ACC of the invention, it splits into a plurality of sub-ducts (lower steam distribution manifolds 32), one for each street (row of cells) 34 of the ACC. Each lower steam distribution manifold 32 travels beneath its respective street of cells 34, and it extends a single riser 30 upwards at the center point of each cell 27. See, e.g.,
(38) The uncondensed steam and non-condensables are collected in the top bonnet 12 and are drawn to the center of the heat exchanger panel 2 where they travel down the tubes 7 of the secondary section 6 co-current with the condensate formed therein. Non-condensables are drawn into the secondary bottom bonnet 24 located inside the bottom bonnet 16 and out through an outlet nozzle 26. Additional condensed water formed in the secondary section 6 collects in the secondary bottom bonnet 24 and travels through the outlet nozzle 26 as well and then travels through condensate piping 42 to the upper steam distribution manifold 28 to join the water collected from the primary condenser sections 4.
(39) According to another feature of the invention, the heat exchanger panels 2 are suspended from framework 36 of the condenser section module 37 by a plurality of flexible hangers 50 which allow for expansion and contraction of the heat exchanger panels 2 based on heat load and weather.
(40) According to preferred embodiments of the invention, the ACCs of the invention are constructed in a modular fashion. According to various embodiments, understructure 62, condenser section modules 37 and plenum sections 64 may be assembled separately and simultaneously on the ground. According to one embodiment, the condenser section frame may be lifted on a stick built understructure just high enough to suspend the upper steam distribution manifold 28 from the underside of the condenser section framework. The heat exchanger panels 2 are then lowered into and attached to the frame 36 of the condenser section module 37 and to the upper steam distribution manifold 28, preferably at or just above ground level, see
(41) The description of fin type and dimension herein is not intended to limit the invention. The tubes of the invention described herein may be used with fins of any type without departing from the scope of the invention.