ADVANCED DIRECT CONTACT CONDENSER APPARATUS AND METHOD
20170341007 · 2017-11-30
Inventors
Cpc classification
Y02P70/10
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
B01D53/265
PERFORMING OPERATIONS; TRANSPORTING
F28B9/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28B3/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01K9/003
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28B7/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02E10/10
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
B01D5/0027
PERFORMING OPERATIONS; TRANSPORTING
Y02C20/20
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
B01D53/00
PERFORMING OPERATIONS; TRANSPORTING
F28B3/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01K9/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A direct contact condenser for a steam turbine having an exhaust steam flow hood and a condenser connected to the hood. The condenser includes a downward flow condensing cell having a first liquid distribution assembly a first heat exchange media disposed below the first liquid distribution assembly. The condenser also includes an upward steam flow cooling cell and a second liquid distribution assembly along with a second heat exchange media disposed below the second liquid distribution assembly.
Claims
1. A direct contact condenser for a steam turbine that extends horizontally along an axis, the direct contact condenser comprising: an exhaust steam flow hood having an inlet end and an outlet end; a condenser connected to said hood, wherein said condenser comprises: a downward flow condensing cell comprising: a first liquid distribution assembly; and a first heat exchange media disposed below said first liquid distribution assembly; an upward steam flow cooling cell comprising: a second liquid distribution assembly; and a second heat exchange media disposed below said second liquid distribution assembly; and a water collection basin disposed below said condensing/cooling chambers.
2. The direct contact condenser according to claim 1, wherein the downward flow condensing cell further comprises: a third liquid distribution assembly; and a third heat exchange media disposed below said third liquid distribution assembly.
3. The direct contact condenser according to claim 2, wherein said first liquid distribution assembly and first heat exchange media are positioned a first vertical location along the axis and wherein said second liquid distribution assembly and second heat exchange media are positioned at a second vertical position along the axis above said first position.
4. The direct contact condenser according to claim 3, wherein third liquid distribution assembly and third heat exchange media is positioned at a third vertical position along the axis wherein said third position is located vertically above said first position and vertically equal to or different from said second position.
5. The direct contact condenser according to claim 1, wherein said steam exhaust hood comprises at least one exhaust steam flow vane.
6. The direct contact condenser according to claim 5, wherein said at least one exhaust steam flow vane is a plurality of exhaust steam flow vanes.
7. The direct contact condenser according to claim 2, wherein each of said first, second and third heat exchange media is structured vapor-liquid contact media.
8. The direct contact condenser according to claim 7, wherein each of said first, second and third structured vapor-liquid contact media has a nominal inclination angle of sixty degrees (60°).
9. The direct contact condenser according to claim 1, wherein said first liquid distribution assembly comprises a series of spray conduits for dispersing cooling liquid on said media and said second liquid distribution assembly comprises a serious of distribution conduits for dispersing cooling on said media.
10. The direct contact condenser according to claim 1, wherein said inlet end has a circular geometry that transitions to a rectangular geometry.
11. The direct contact condenser according to claim 10, wherein said rectangular geometry inscribes said circular or rectangular geometry of upstream duct.
12. The direct contact condenser according to claim 11, wherein said exhaust steam flow hood further comprises wings, wherein said wings extend generally outwardly and downwardly from said inlet end toward said outlet end.
13. A direct contact condenser for a steam turbine that extends horizontally along an axis, the direct contact condenser comprising: a condensing chamber connected to said hood, wherein said condensing chamber comprises: a downward flow condensing cell comprising: a first liquid distribution assembly; and a first heat exchange media disposed below said first liquid distribution assembly; an upward steam flow cooling cell comprising: a second liquid distribution assembly; and a second heat exchange media disposed below said first liquid distribution assembly; and a water collection basin disposed below said cooling chamber, wherein said first liquid distribution assembly and first heat exchange media are positioned a first vertical location along the axis and wherein said second liquid distribution assembly and second heat exchange media are positioned at a second vertical position along the axis above said first position.
14. The direct contact condenser according to claim 13, wherein the downward flow condensing cell further comprises: a third liquid distribution assembly; and a third heat exchange media disposed below said third liquid distribution assembly.
15. The direct contact condenser according to claim 14, wherein third liquid distribution assembly and third heat exchange media is positioned at a third vertical position along the axis wherein said third position is located vertically above said first position and vertically equal to or different from said second position.
16. The direct contact condenser according to claim 15, further comprising an exhaust steam flow hood having an inlet end and an outlet end.
17. The direct contact condenser according to claim 16, wherein said exhaust steam flow hood comprises at least one exhaust steam flow vane.
18. The direct contact condenser according to claim 17, wherein said at least one exhaust steam flow vane is a plurality of exhaust steam flow vanes.
19. The direct contact condenser according to claim 14, wherein each of said first, second and third heat exchange media is structured vapor-liquid contact media.
20. The direct contact condenser according to claim 19, wherein each of said first, second and third structured vapor-liquid contact media has a nominal inclination angle of sixty degrees (60°).
21. The direct contact condenser according to claim 13, wherein said first liquid distribution assembly comprises a series of spray conduits for dispersing cooling liquid on said media and said second liquid distribution assembly comprises a series of spray conduits for dispersing cooling liquid on said media.
22. The direct contact condenser according to claim 16, wherein said inlet engages a turbine or duct and receives turbine effluent.
23. A method for condensing turbine effluent using a direct contact condenser, comprising: flowing the turbine effluent through an inlet end of an exhaust steam flow hood having wherein the effluent exits an outlet end to a condenser; flowing the turbine effluent into and through the condenser connected to the exhaust steam flow hood, wherein said condenser comprises: a downward flow condensing cell comprising: a first liquid distribution assembly; and a first heat exchange media disposed below said first liquid distribution assembly; an upward steam flow condensing cell comprising: a second liquid distribution assembly; and a second heat exchange media disposed below said second liquid distribution assembly; and flowing the turbine effluent through the first heat exchange media and the second heat exchange media; and distributing cooling liquid on the first and second heat exchange media as the effluent traverses there through.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0019]
[0020]
[0021]
[0022]
[0023] The drawings presented are intended solely for the purpose of illustration and therefore, are neither desired nor intended to limit the subject matter of the disclosure to any or all of the exact details of construction shown, except insofar as they may be deemed essential to the claims.
DETAILED DESCRIPTION
[0024] Various aspects of the present invention provide for an improved direct contact condenser apparatus for use in a geothermal power plant, and a method of condensing geothermal vapor utilizing same. Preferred aspects of the invention will now be further described with reference to the drawing figures, in which like reference numerals refer to like parts throughout.
[0025] Turning now to the drawings,
[0026] As illustrated in
[0027] Although the cooling liquid distribution arrangements 20, 22, 24 depicted in
[0028] Although the embodiment depicted in the figures includes a single downward flow condensing chamber 16 and a single upward flow cooling chamber 18 within the condenser housing of the condenser section 14, it should be understood that the upward flow chamber 18 may be located outside the housing 14, and that the condenser 10 may include a plurality of upward flow chambers 18, within or outside the housing of the condenser section 14.
[0029] Finally, it should be understood that a plurality of direct contact condensers may be arranged, as appropriate, to provide sequential treatment for further condensing or cooling the non-condensable gas-steam mixture. Such additional condensers may include both flow chambers 16 and 18, a down flow or a co-current flow chamber 16 and an upward flow chamber 18, or a single upward flow chamber 18. Direct contact condensers may also employ a single or plurality of independent flow chambers 16 and 18.
[0030] Turning now to specifically to
[0031] The condenser apparatus 10 contains a series of access doors 42, 44 and 46. Said access doors provide entrance to each chamber for inspection and maintenance. Said access doors are also of sufficient size to allow the passage of the individual packs of heat exchange media to pass through for installation and maintenance.
[0032] Referring to
[0033] The vapor-liquid contact medium 36, 38, 40 or fill pack depicted in
[0034] As previously mentioned, the vapor-liquid contact medium can encompass varying designs and structures having a wide variety of the sizes and geometries. One example of such medium comprises vertically oriented sheets with the corrugations at an angle to the vertical axis. In such arrangements, the sheets are arranged such that the corrugation direction of adjacent sheets is reversed. The packing may be installed in layers which are generally between 6 and 12 inches in height. The packing may have a square or brick geometry oftentimes formed by fixing individual sheets together using adhesives, rods that pierce all of the sheets, or frames which contain and support sheets. Such packing oftentimes has corrugations that are characterized by the crimp height and the base length.
[0035] While all corrugated sheet structured packings share the above-described features, there are a large number of variations available commercially. Variations include the use and size of perforations in the packing sheets and the type of surface texture applied to the sheets. The packing or media is made in several sizes as characterized by the specific surface area (area of surface per unit volume). Different sizes are achieved by variation of the crimp height and the base length. For example, reducing the crimp height increases the surface area per unit volume. The use of higher specific surface area packing reduces the height of packing required for a given separation but allowable fluid velocities are decreased. Thus a larger cross-sectional area for flow is required.
[0036] Finally, turning specifically to
[0037] As illustrated in
[0038] While aforementioned tapering geometry is depicted in a preferred embodiment, the exhaust steam flow hood 12 may have varying geometries and shapes depending upon need. Also as illustrated, the exhaust steam flow hood 12 of the advanced direct contact condenser 10 has an entrance centerline elevation which is in line with the turbine centerline, allowing for clearance with the heat exchange packing and structure sitting below the bottom of the inlet duct as the duct enters directly above the condenser internals. With this preferred embodiment, the two centerlines will be at the same elevation, reducing the need for a pit for the condenser and reducing some of the associated costs with installation. Moreover, the diffuser type design of the exhaust steam flow hood 12 functions to lower the associated entrance losses and decrease the overall pressure drop while allowing the condenser to be designed with a smaller required area and overall footprint, which will again reduce the costs to the end user and improved turbine performance.
[0039] During operation, when the steam turbine (not pictured) and the direct contact condenser 10 are in the operating state, the turbine exhaust effluent in the horizontal direction and the steam and non-condensable gases are introduced to the direct contact condenser 10. In the direct contact condenser 10, the turbine exhaust gases are introduced through the exhaust gas inlet part 13 of the exhaust steam flow hood 12, while maintaining the initial flow direction in the horizontal direction the gases are then turned or directed via the flow vanes 17 to the condensing chamber 16. The turbine exhaust gases are supplied to the condensing chambers 16 in a downward flow configuration. The cooling water is then distributed from the first cooling water spraying mechanism 20 onto the packing, causing part of the steam in the turbine exhaust gases to be cooled and to become condensed water and combining with the cooling spray water is collected in the water basin 39. The cooling water sprayed from the second cooling water spraying mechanism 22 onto the packing also causes part of the steam in the turbine exhaust gases to be cooled and to become condensed water and combining with the cooling spray water is also collected in the water basin 39.
[0040] Most of the steam is eliminated as condensed water in the downward condensing section 16 however any remaining non-condensable gases and steam in the turbine exhaust gases then proceeds to the secondary, counter current condensing cell 18 through the opening at the bottom of the partition or wall 19. Accordingly, more steam is condensed and the non-condensable gases are cooled, and then exhausted to the exterior through exhaust port 48 with a vacuum system (not shown).
[0041] 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.