Device for preventing steam from being produced in flue gas cooler for oxyfuel combustion boiler
09903583 ยท 2018-02-27
Assignee
Inventors
Cpc classification
F23L7/007
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F23B5/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F23J15/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02E20/30
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
F01K5/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F22D1/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F23C9/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01K13/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F22D11/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F22B1/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02E20/34
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
F22D1/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F23J15/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01K13/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F23B30/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F22D11/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F22D1/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F23C9/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01K5/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F23L7/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A feed-water discharge side of a condenser is connected to a feed-water entry side of an flue gas cooler through a bypass line provided with a steam production preventive pump and with an inlet cutoff valve. A feed-water discharge side of the flue gas cooler is connected to the feed-water entry side of the condenser through a steam production preventive water circulation line provided with an outlet cutoff valve. When a boiler feed-water pump is stopped in boiler fuel cutoff, the inlet and outlet cutoff valves are opened and the steam production preventive pump is activated to cause water to flow through the bypass line into the flue gas cooler, is returned through the steam production preventive water circulation line to the condenser and is circulated.
Claims
1. A device for preventing steam from being produced in a flue gas cooler for an oxyfuel combustion boiler with a boiler low-pressure feed-water system comprising a condenser, a condensate pump, a low-pressure feed-water heater and a boiler feed-water pump in the order named and wherein, in oxyfuel combustion, part of the low-pressure feed-water boosted in pressure by the condensate pump in the boiler low-pressure feed-water system is sent under pressure by a booster pump to the flue gas cooler where the low-pressure feed-water heat exchanged with flue gas is guided again to the boiler low-pressure feed-water system, comprising a bypass line for connecting a feed-water discharge side of the condenser with a feed-water entry side of the flue gas cooler by bypassing the condensate and booster pumps, a steam production preventive pump in the bypass line, an inlet cutoff valve in the bypass line, a steam production preventive water circulation line for connecting a feed-water discharge side of the flue gas cooler with a feed-water entry side of the condenser and an outlet cutoff valve in the steam production preventive water circulation line, when the boiler feed-water pump stops in boiler fuel cutoff, the inlet and outlet cutoff valves being opened and the steam production preventive pump being activated to cause water to flow through the bypass line to the flue gas cooler and return and circulate through the steam production preventive water circulation line to the condenser.
2. The device for preventing steam from being produced in the flue gas cooler for the oxyfuel combustion boiler as claimed in claim 1, further comprising a gas temperature gauge for measuring an inlet gas temperature of the flue gas cooler, a feed-water pressure gauge for measuring an outlet feed-water pressure of the flue gas cooler and a controller for outputting opening signals to the inlet and outlet cutoff valves, respectively, and a start signal to the steam production preventive pump when the inlet gas temperature measured by the gas temperature gauge exceeds an outlet feed-water saturation temperature based on the outlet feed-water pressure measured by the feed-water pressure gauge and a boiler fuel cutoff signal is inputted.
3. The device for preventing steam from being produced in the flue gas cooler for the oxyfuel combustion boiler as claimed in claim 2, further comprising a feed-water temperature gauge for measuring an outlet feed-water temperature of the flue gas cooler, the controller being adapted to output the opening signals to the inlet and outlet cutoff valves, respectively, and the start signal to the steam production preventive pump when the outlet feed-water temperature measured by the feed-water temperature gauge exceeds the outlet feed-water saturation temperature based on the outlet feed-water pressure measured by the feed-water pressure gauge.
Description
BRIEF DESCRIPTION OF DRAWINGS
(1)
(2)
(3)
DESCRIPTION OF EMBODIMENT
(4) Next, an embodiment of the disclosure will be described in conjunction with the attached drawings.
(5)
(6) The pulverized coal pulverized in the mill 2 is burned in the boiler body 1 and combustion flue gas from the boiler body 1 is heat exchanged in the air preheater 3 with primary and secondary airs (recirculation gas and a mixture of the recirculation gas with oxygen in the case of oxyfuel combustion) fed under pressure by primary and forced draft fans 4 and 5, respectively.
(7) The combustion flue gas heat exchanged in the air preheater 3 is heat exchanged with low-pressure feed-water in an flue gas cooler 6, is made free from dust in a bag filter 7, is passed through an induced draft fan 8 and is introduced into a desulfurizing and dewatering device 9 while part thereof is sent as recirculation gas to an entry side of the forced draft fan 5 so as to be mixed with the oxygen.
(8) The combustion flue gas introduced into the desulfurizing and dewatering device 9 is desulfurized and dewatered in the desulfurizing and dewatering device 9, is passed through a desulfurizing draft fan 10 and is discharged to CO.sub.2 processing facility which is not shown in the figure while part thereof is sent as recirculation gas to an entry side of the primary draft fan 4.
(9) Steam produced in the boiler body 1 is introduced into and drives a turbine (not shown) to generate electricity. The steam after driving the turbine is introduced into a condenser 12 and is returned to the boiler feed-water. The boiler feed-water is sent under pressure by a condensate pump 13, is heated by a plurality of (two in
(10) The low-pressure feed-water is passed through a low-pressure feed-water branch line 22 branched from a discharge side of the first low-pressure feed-water heater 15 and is boosted in pressure by a booster pump 23 into the flue gas cooler 6. The low-pressure feed-water heat-exchanged in the flue gas cooler 6 with the flue gas is joined to a discharge side of the second low-pressure feed-water heater 16.
(11) In the embodiment, a feed-water discharge side of the condenser 12 is connected to a feed-water entry side of the flue gas cooler 6 by a bypass line 24 in a manner of bypassing the condensate and booster pumps 13 and 23. The bypass line 24 is provided with a steam production preventive pump 25 and an inlet cutoff valve 26. A feed-water discharge side of the flue gas cooler 6 is connected to a feed-water entry side of the condenser 12 through a steam production preventive water circulation line 27 having an outlet cutoff valve 28.
(12) Arranged on an flue gas entry side of the flue gas cooler 6 is a gas temperature gauge 29 for measurement of an inlet gas temperature 29a of the flue gas cooler 6. Arranged on a feed-water discharge side of the flue gas cooler 6 are feed-water pressure and temperature gauges 30 and 31 for measurement of outlet feed-water pressure and temperature 30a and 31a of the flue gas cooler 6, respectively.
(13) In
(14) The controller 32 also outputs the opening signals 26a and 28a to the inlet and outlet cutoff valves 26 and 28, respectively, and the start signal 25a to the steam production preventive pump 25 when the outlet feed-water temperature 31a measured by the feed-water temperature gauge 31 exceeds the outlet feed-water saturation temperature 33a based on the outlet feed-water pressure 30a measured by the feed-water pressure gauge 30. More specifically, as shown in
(15) When the signal outputted from the OR circuit 39 is 0, i.e., both of the signals outputted from the AND circuits 38 and 43 are 0, outputted through a NOT circuit 45 are closing signals 26b and 28b to the inlet and outlet cutoff valves 26 and 28, respectively, and a stop signal 25b to the steam production preventive pump 25.
(16) Next, mode of operation of the above embodiment will be described.
(17) Upon oxyfuel combustion in the boiler body 1, the low-pressure feed-water is guided to the flue gas cooler 6, by an operation of the booster pump 23, through the low-pressure feed-water branch line 22 in a manner branched from the discharge side of the first low-pressure feed-water heater 15; the low-pressure feed-water heat exchanged with the flue gas in the flue gas cooler 6 is joined to the discharge side of the second low-pressure feed-water heater 16. In this case, the inlet gas temperature 29a, the outlet feed-water pressure 30a and the outlet feed-water temperature 31a are measured by the gas temperature gauge 29, the feed-water pressure gauge 30 and the feed-water temperature gauge 31, respectively, and are inputted to the controller 32.
(18) In the controller 32, as shown in
(19) In this case, even if the boiler feed-water pump 18 stops a little later after the boiler fuel cutoff, the inlet and outlet cutoff valves 26 and 28 has been opened and the steam production preventive pump 25 has been activated. Thus, the low-pressure feed-water is fed from the bypass line 24 through the branch line 22 into the flue gas cooler 6, is returned through the steam production preventive water circulation line 27 to the feed-water entry side of the condenser 12, is cooled in the condenser 12 and is circulated so that it is prevented from dwelling in the flue gas cooler 6. As a result, the low-pressure feed-water is prevented from being heated in the flue gas cooler 6 to produce any steam by heat exchange with the high-temperature flue gas not instantly stopped after the boiler fuel cutoff, which brings about no water hammering and there is no adverse effect on piping, valves and the like.
(20) The provision of the controller 32, which outputs the opening signals 26a and 28a to the inlet and outlet cutoff valves 26 and 28, respectively, and the start signal 25a to the steam production preventive pump 25 when the inlet gas temperature 29a measured by the gas temperature gauge 29 exceeds the outlet feed-water saturation temperature 33a based on the outlet feed-water pressure 30a measured by the feed-water pressure gauge 30 and the boiler fuel cutoff signal 34 is inputted, is effective for reliable prevention of steam production in comparison with detecting steam production from the low-pressure feed-water merely on the basis of presence or absence of the boiler fuel cutoff signal 34.
(21) In the controller 32, as shown in
(22) Specifically, even in the situation that the operation of the boiler body 1 is not to be urgently stopped, when the outlet feed-water temperature 31a exceeds the outlet feed-water saturation temperature 33a, the inlet and outlet cutoff valves 26 and 28 are opened and the steam production preventive pump 25 is actuated. In this connection, the low-pressure feed-water is guided, by the operation of the booster pump 23, to the flue gas cooler 6 in the manner branched from the discharge side of the first low-pressure feed-water heater 15 and the low-pressure feed-water heat exchanged in the flue gas cooler 6 with the flue gas is joined to the discharge side of the second low-pressure feed-water heater 16. In addition, the low-pressure feed-water is fed from the bypass line 24 through the low-pressure feed-water branch line 22 into the flue gas cooler 6, is returned through the steam production preventive water circulation line 27 to the feed-water entry side of the condenser 12, is cooled by the condenser 12 and is circulated so that an amount of the low-pressure feed-water into the flue gas cooler 6 is increased. As a result, even in a normal operation of the boiler body 1, the low-pressure feed-water is prevented from being heated in the flue gas cooler 6 above the outlet feed-water saturation temperature 33a into steam production so that no water hammering occurs and there is no adverse effect on piping, valves and the like.
(23) In the controller 32, the fact that the opening signals 26a and 28a are outputted to the inlet and outlet cutoff valves 26 and 28, respectively, and the start signal 25a is outputted to the steam production preventive pump 25 when the outlet feed-water temperature 31a measured by the feed-water temperature gauge 31 exceeds the outlet feed-water saturation temperature 33a based on the outlet feed-water pressure 30a measured by the feed-water pressure gauge 30, is effective for reliable prevention of steam production due to the low-pressure feed-water even in the situation that the operation of the boiler body 1 is not to be urgently stopped.
(24) When both of the inlet gas and feed-water temperatures 29a and 31a are not more than the outlet feed-water saturation temperature 33a and both of the signals from the AND circuits 38 and 43 are 0, the signal outputted from the OR circuit 39 is 0. In this case, the signal outputted through the NOT circuit 45 is 1 so that the closing signals 26b and 28b are outputted to the inlet and outlet cutoff valves 26 and 28, respectively, and the stop signal 25b is outputted to the steam production preventive pump 25.
(25) Thus, preliminarily prevented is steam production in the flue gas cooler 6 due to heat exchange with the high-temperature flue gas.
(26) It is to be understood that a device for preventing steam from being produced in an flue gas cooler for an oxyfuel combustion boiler according to the disclosure is not limited to the above embodiment and that various changes and modifications may be made without departing from the scope of the disclosure.
REFERENCE SIGNS LIST
(27) 1 boiler body 6 flue gas cooler 12 condenser 13 condensate pump 14 boiler low-pressure feed-water system 15 low-pressure feed-water heater 16 low-pressure feed-water heater 18 boiler feed-water pump 22 low-pressure feed-water branch line 23 booster pump 24 bypass line 25 steam production preventive pump 25a start signal 25b stop signal 26 inlet cutoff valve 26a opening signal 26b closing signal 27 steam production preventive water circulation line 28 outlet cutoff valve 28a opening signal 28b closing signal 29 gas temperature gauge 29a inlet gas temperature 30 feed-water pressure gauge 30a outlet feed-water pressure 31 feed-water temperature gauge 31a outlet feed-water temperature 32 controller 33a outlet feed-water saturation temperature 34 boiler fuel cutoff signal 35 subtractor 36 high-low monitor switch 36a signal 37 on-delay timer 37a signal 38 AND circuit 39 OR circuit