This application claims priority to European Patent Application No. 15290140.1 filed May 26, 2015, the contents of which are hereby incorporated in its entirety.
The present disclosure relates to integrate lignite drying processes to improve both efficiency and cost-of-power generation of a dry-lignite coal power plant applicable with or without CO2 capture. The disclosure further relates to arrangements for using direct steam extraction from water/steam power cycle as an energy source for lignite coal drying.
General principle of Lignite Drying in a lignite fired plant is well known, using either hot flue gas extraction or steam extraction from Water & Steam cycle or both to supply the lignite drying system that includes beater mills, rotary drum dryers and/or fluidized bed dryer.
Lignite drying techniques have been developed and tested in order to use medium or low enthalpy heat to achieve partial or high level of lignite pre-drying before pulverization, and gain typically up to 3% point efficiency gains without heat recovery of evaporation vapour of lignite moisture or 5% point efficiency gains with heat recovery of evaporation vapour of lignite moisture. The heat is either originating from low pressure steam extraction, or from exhaust flue gas. These techniques sometime additionally use mechanical or chemical dewatering processes.
U.S. Pat. No. 8,661,821 B2 in which superheated steam, which has done partial work in a steam turbine, is extracted from a water/stem power cycle and used as a drying medium to evaporate moisture from coal powder. Condensate from the drying is then fed into a deaerator of the steam turbine via a condensate pump for recirculation. As discussed, the drying steam can be extracted from any number of steam extraction points contained in the water/steam power cycle.
A power plant is disclosed that is intended to provide an alternative means of thermally integrating a lignite dryer into a water/steam cycle of the power plant using steam extraction.
It attempts to address this problem by means of the subject matters of the independent claims. Advantageous embodiments are given in the dependent claim.
An aspect includes power plant with a water/steam power cycle, lignite dryer. The water/steam cycle comprises a pressure series of steam turbines including a high pressure steam turbine, an intermediate pressure steam turbine, and a low pressure steam turbine. The cycle further includes a re-heater that is fluidly located between the high pressure steam turbine and the intermediate pressure steam turbine.
The lignite dryer includes a heater connected to a steam portion of the steam/water power cycle so as to enable utilisation of steam energy in the lignite dryer (10).
The connection to the steam portion of the steam water power cycle comprises a first extraction line that is fluidly connected to the water/steam power cycle between the re-heater and the intermediate pressure steam turbine, or alternatively between the high pressure turbine and the re-heater and to the heater. The first extraction line further includes an ejector. The connection further includes a second extraction line that is fluidly connected to the water/steam power cycle between the intermediate pressure steam turbine (34) and the low pressure steam turbine (35).
The configuration and location of the ejector and the connection of the second extraction line to the ejector enables a lower pressure steam in the second extraction line to be fed into the heater together with a higher pressure steam in the first extraction line.
In an aspect the second extraction line includes a bypass that fluidly connects the first extraction line to the second extraction line so as to bypass the ejector.
In further aspect the power plant includes a de-superheater in the first extraction line upstream of the ejector.
In further aspect the power plant includes a throttle valve fluidly located between the connection of the second extraction line to the water/steam power cycle and the low pressure steam turbine.
Another aspect includes a method of controlling a power plant with lignite dryer. The method includes the steps of providing a water/steam power cycle having a pressure series of steam turbines including a high pressure steam turbine, an intermediate pressure steam turbine, and a low pressure steam turbine. The water/steam power cycle further includes a re-heater fluidly between the high pressure steam turbine and the intermediate pressure steam turbine and a throttle valve fluidly between the intermediate pressure steam turbine and the low pressure steam turbine.
The method further includes providing a lignite dryer having a heater fluidly connected to a steam portion of the steam/water power cycle so as to utilise steam energy in the lignite dryer, wherein the connection to the steam portion of the steam water power cycle comprises a first extraction line, connected to the water/steam power cycle between the re-heater and the intermediate pressure steam turbine or alternatively between the high pressure turbine and the re-heater, to the heater, including an ejector and further comprises a second extraction line that is fluidly connected to the water/steam power cycle between the intermediate pressure steam turbine and the throttle valve, the second extraction line including a bypass, with a bypass valve.
The method includes the further step of controlling a flow-rate to the heater by adjusting a pressure in the second extraction line in conjunction with the bypass valve.
In a further aspect the method includes providing a first control valve in the first extraction line upstream of the ejector and a second control valve in the second extraction line upstream of the ejector and then controlling the flow-rate to the heater in further conjunction with the first control valve and the second control valve.
Other aspects and advantages of the present disclosure will become apparent from the following description, taken in connection with the accompanying drawings which by way of example illustrate exemplary embodiments.
By way of example, an embodiment of the present disclosure is described more fully hereinafter with reference to the accompanying drawings, in which:
Exemplary embodiments of the present disclosure are now described with references to the drawings, wherein like reference numerals are used to refer to like elements throughout. In the following description, for purposes of explanation, numerous specific details are set forth to provide a thorough understanding of the disclosure. However, the present disclosure may be practiced without these specific details, and is not limited to the exemplary embodiment disclosed herein.
The drying includes an inlet line 11 for directing lignite in the lignite dryer 10, a vapour outlet line 16 for exhausting moisture laden gas from the lignite dryer and a solids outlet line 12 for discharging dried lignite for use in a combustor. The lignite dryer 10 can be a Steam Fluidized Bed Dryer or a Steam Heated Rotary Tube Dryer.
In an exemplary embodiment shown in
In an exemplary embodiment shown in
In an exemplary embodiment, shown in
The ejector 106 is a device that operates using the venturi principle. The device utilises higher pressure steam from the first extraction line 104 to generate a high-velocity jet at the throat of a convergent-divergent nozzle thus creating a low pressure at that point. The low pressure point, which is the point at which additional extraction line 101 connects to the first extraction line 104, draws extraction steam from the lower pressure additional extraction line. In this way lower pressure steam in the second extraction line can be fed into the heater together with higher pressure steam of the first extraction line 104.
In an exemplary embodiment shown in
In an exemplary embodiment shown in
In further exemplary embodiments shown in
In an exemplary embodiment where temperature limitations of the low pressure steam turbine 35 are reached, the bypass valve 101a is closed while steam in the additional extraction line 101 is mixed with hot reheat extraction steam from the first extraction 104 using the ejector 106. This arrangement may be used for middle and low water/steam power cycle loads down, for example, 35% or even lower, depending on the design limits of the water/steam power cycle components. The control of the exemplary embodiment may be further enhance by providing a first control valve 104a in the first extraction line 104 upstream of the ejector 106 and a second control valve 101b in the second extraction line 101 upstream of the ejector 106. In this arrangement the flow-rate to the heater is further controlled in further conjunction with the first control valve 104a and the second control valve 101b.
Although the disclosure has been herein shown and described in what is conceived to be the most practical exemplary embodiment, the present disclosure can be embodied in other specific forms. The presently disclosed embodiments are therefore considered in all respects to be illustrative and not restricted. The scope of the disclosure is indicated by the appended claims rather that the foregoing description and all changes that come within the meaning and range and equivalences thereof are intended to be embraced therein.
Number | Date | Country | Kind |
---|---|---|---|
15290140 | May 2015 | EP | regional |
Number | Name | Date | Kind |
---|---|---|---|
2653447 | Heller | Sep 1953 | A |
4291539 | Potter | Sep 1981 | A |
4601113 | Draper et al. | Jul 1986 | A |
4601115 | Draper et al. | Jul 1986 | A |
5353517 | Weiss | Oct 1994 | A |
6148599 | McIntosh et al. | Nov 2000 | A |
8091361 | Lang | Jan 2012 | B1 |
8661821 | Zhao | Mar 2014 | B2 |
20100212320 | Block et al. | Aug 2010 | A1 |
20100282082 | Butler | Nov 2010 | A1 |
20110094228 | Fan | Apr 2011 | A1 |
20110214427 | Zhao et al. | Sep 2011 | A1 |
20120055158 | Berger et al. | Mar 2012 | A1 |
Number | Date | Country |
---|---|---|
1404783 | Aug 1983 | AU |
101881191 | Nov 2010 | CN |
201697441 | Jan 2011 | CN |
102353237 | Feb 2012 | CN |
103453752 | Dec 2013 | CN |
102759259 | Jun 2014 | CN |
102758657 | Dec 2014 | CN |
204041130 | Dec 2014 | CN |
41 15 781 | Sep 1994 | DE |
19612186 | Oct 1997 | DE |
195 18 644 | Apr 1998 | DE |
195 12 015 | Jul 1998 | DE |
196 01 931 | Sep 2000 | DE |
103 19 477 | Nov 2004 | DE |
10 2007 023 336 | Nov 2008 | DE |
10 2009 019 334 | Nov 2010 | DE |
102009035062 | Feb 2011 | DE |
0 576 053 | Jan 1996 | EP |
2 423 465 | Feb 2012 | EP |
2412943 | Feb 2012 | EP |
2 436 978 | Apr 2012 | EP |
2 873 934 | May 2015 | EP |
485639 | Jan 1918 | FR |
2984400 | Jun 2013 | FR |
H06-146812 | May 1994 | JP |
2011033559 | Mar 2011 | WO |
2012005164 | Jan 2012 | WO |
Entry |
---|
Edel et al., U.S. Appl. No. 15/162,904, filed May 24, 2016. |
Edel et al., U.S. Appl. No. 15/163,159, filed May 24, 2016. |
Edel et al., U.S. Appl. No. 15/162,987, filed May 24, 2016. |
Rupprecht, T., and Fielenbach, C., “Efficiency and Flexibility—Techno-Economical Challenges for Pre-Dried Lignite Fired Power Plants,” Power-Gen Europe, Milan, Italy, pp. 1-19 (Jun. 7-9, 2011). |
Extended European Search Report and Opinion issued in connection with related EP Application No. 15290138.5 dated Aug. 13, 2015. |
Extended European Search Report and Opinion issued in connection with related EP Application No. 15290139.3 dated Nov. 18, 2015. |
Extended European Search Report and Opinion issued in connection with related EP Application No. 15290141.9 dated Dec. 2, 2015. |
Extended European Search Report and Opinion issued in connection with related EP Application No. 16169541.6 dated Jun. 21, 2016. |
Extended European Search Report and Opinion issued in connection with related EP Application No. 16169295.9 dated Nov. 21, 2016. |
Number | Date | Country | |
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20160348540 A1 | Dec 2016 | US |