METHOD AND DEVICE FOR PREDICTING ASH ADHESION IN COAL-FIRED BOILER, METHOD AND DEVICE FOR PREVENTING ASH ADHESION IN COAL-FIRED BOILER, AND METHOD AND DEVICE FOR OPERATING COAL-FIRED BOILER
20210156561 · 2021-05-27
Assignee
Inventors
Cpc classification
F23N2225/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
G01N5/00
PHYSICS
F23N2221/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F23N2241/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F23N2225/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F23J9/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F23N5/003
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F23N1/002
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F22B37/38
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
Conducted are coal-ash generating step for generating coal ash, sintered-ash generating step for heating the coal ash at temperatures within combustion temperature range of coal-fired boiler to generate sintered ash at each heating temperature, sticking-degree calculating step for rotatively separating each sintered ash by ratra tester to calculate sticking degree from weight ratio of each sintered ash after and before the rotary separation of the sintered ash, correlation determining step for burning each coal having corresponding sticking degree calculated to measure exhaust gas temperature and obtain correlation between sticking degrees and exhaust gas temperatures, exhaust-gas-temperature predicting step for predicting exhaust gas temperature from sticking degree of coal to be employed as fuel based on the correlation between the sticking degrees and the exhaust gas temperatures and adhesion predicting step for predicting ash adhesion in the coal-fired boiler based on the exhaust gas temperature predicted.
Claims
1. A method for predicting ash adhesion on a coal-fired boiler comprising a coal-ash generating step for ashing coal into coal ash, a sintered-ash generating step for heating the coal ash generated in said coal-ash generating step at a plurality of temperatures within a combustion temperature range of the coal-fired boiler to generate sintered ash at each of the heating temperatures, a sticking-degree calculating step for rotatively separating each sintered ash generated in said sintered-ash generating step by a ratra tester to calculate a sticking degree from a weight ratio of the sintered ash after and before the rotary separation thereof, a correlation determining step for burning each coal having a corresponding sticking degree calculated in said sticking-degree calculating step in the coal-fired boiler to measure exhaust gas temperatures to thereby determine correlation between sticking degrees and exhaust gas temperatures, an exhaust-gas-temperature predicting step for predicting an exhaust gas temperature from a sticking degree of coal to be employed as fuel on the basis of the correlation between the sticking degrees and the exhaust gas temperatures obtained in said correlation determining step and, an adhesion predicting step for predicting ash adhesion in the coal-fired boiler on the basis of the exhaust gas temperature predicted in said exhaust-gas-temperature predicting step.
2. The method for predicting ash adhesion on the coal-fired boiler as claimed in claim 1, wherein said coal is a mixture of a plurality kinds of coal.
3. An device for predicting ash adhesion in a coal-fired boiler comprising a coal-ash generator for asking coal into coal ash, a sintered-ash generator for heating the coal ash generated in said coal-ash generator at a plurality of temperatures within a combustion temperature range in the coal-fired boiler to generate sintered ash at each of the heating temperatures, a ratra tester for rotatively separating each sintered ash generated in said sintered-ash generator, a sticking-degree calculator for calculating a sticking degree from a weight ratio of each sintered ash after and before the rotary separation thereof by said ratra tester, a correlation determiner for burning each coal having a corresponding sticking degree calculated in said sticking-degree calculator in the coal-fired boiler to measure the exhaust gas temperature to thereby determine a correlation between sticking degrees and exhaust gas temperatures, an exhaust-gas-temperature predictor for predicting an exhaust gas temperature from a sticking degree of coal to be employed as fuel on the basis of the correlation between the sticking degrees and the exhaust gas temperatures obtained in said correlation determiner and an adhesion predictor for predicting ash adhesion in the coal-fired boiler on the basis of the exhaust gas temperature predicted in said exhaust-gas-temperature predictor.
4. The device for predicting ash adhesion in the coal-fired boiler as claimed in claim 3, wherein said coal is a mixture of a plurality of kinds of coal.
5. A method for predicting ash adhesion in a coal-fired boiler comprising a coal-ash generating step for ashing coal into coal ash, a sintered-ash generating step for heating the coal ash generated in said coal-ash generating step at a plurality of temperatures within a combustion temperature range of the coal-fired boiler to generate sintered ash at each of the heating temperatures, a sticking-degree calculating step for rotatively separating each sintered ash generated in said sintered-ash generating step by a ratra tester to calculate a sticking degree from a weight ratio of the sintered ash after and before the rotary separation thereof, a correlation determining step for burning each coal having a corresponding sticking degree calculated in said sticking-degree calculating step in the coal-fired boiler to measure an exhaust gas temperature to thereby determine a correlation between sticking degrees and exhaust gas temperatures and a coal selecting step for selecting coal having a sticking degree as fuel so as to provide an exhaust gas temperature not higher than a set value on the basis of the correlation between the sticking degrees and the exhaust gas temperatures obtained in said correlation determining step.
6. The method for preventing ash adhesion in the coal-fired boiler as claimed in claim 5, wherein said coal is a mixture of a plurality kinds of coal.
7. A device for preventing ash adhesion in a coal-fired boiler comprising a coal-ash generator for ashing coal into coal ash, a sintered-ash generator for heating the coal ash generated in said coal-ash generator at a plurality of temperatures within a combustion temperature range of the coal-fired boiler to generate sintered ash at each of the heating temperatures, a ratra tester for rotatively separating each sintered ash generated in said sintered-ash generator, a sticking-degree calculator for calculating a sticking degree from weight ratio of each sintered ash after and before the rotary separation thereof by said ratra tester, a correlation determiner for burning each coal having a corresponding sticking degree calculated in said sticking-degree calculator in the coal-fired boiler to measure an exhaust gas temperature to thereby determine a correlation between sticking degrees and exhaust gas temperatures and a coal selector for selecting coal as fuel with a sticking degree as fuel so as to provide an exhaust gas temperature not higher than a set value on the basis of the correlation between the sticking degrees and the exhaust gas temperatures obtained in said correlation determiner.
8. The device for preventing ash adhesion in the coal-fired boiler as claimed in claim 7, wherein said coal is a mixture of a plurality of kinds of coal.
9. A method for operating a coal-fired boiler comprising a coal-ash generating step for ashing coal into coal ash, a sintered-ash generating step for heating the coal ash generated in said coal-ash generating step at a plurality of temperatures within a combustion temperature range of the coal-fired boiler to generate sintered ash at each of the heating temperatures, a sticking-degree calculating step for rotatively separating each sintered ash generated in said sintered-ash generating step by a ratra tester to calculate a sticking degree from a weight ration of the sintered ash after and before the rotary separation thereof, a correlation determining step for burning each coal having a corresponding sticking degree calculated in said sticking-degree calculating step in the coal-fired boiler to measure an exhaust gas temperature to thereby determine a correlation between sticking degrees and exhaust gas temperatures, an exhaust-gas-temperature predicting step for predicting an exhaust gas temperature from a sticking degree of coal to be employed as fuel on the basis of the correlation between the sticking degrees and the exhaust gas temperatures obtained in said correlation determining step and a combustion-time adjusting step for adjusting a combustion time of said coal on the basis of the exhaust gas temperature predicted in said exhaust-gas-temperature predicting step.
10. The method for operating the coal-fired boiler as claimed in claim 9, wherein said coal is a mixture of a plurality of kinds of coal.
11. A device for operating a coal-fired boiler comprising a coal-ash generator for ashing coal into coal ash, a sintered-ash generator for heating the coal ash generated in said coal-ash generator at a plurality of temperatures within a combustion temperature range of the coal-fired boiler to generate sintered ash at each of the heating temperatures, a ratra tester for rotatively separating each sintered coal generated in said sintered-ash generator, a sticking-degree calculator for calculating sticking degree from weight ratio of each sintered ash after and before the rotary separation thereof by said ratra tester, a correlation determiner for burning each coal having a corresponding sticking degree calculated in said sticking degree calculator in the coal-fired boiler to measure an exhaust gas temperature to thereby determine a correlation between sticking degrees and exhaust gas temperatures, an exhaust-gas-temperature predictor for predicting an exhaust gas temperature from a sticking degree of coal to be employed as fuel on the basis of the correlation between the sticking degrees and the exhaust gas temperatures obtained in said correlation determiner and a combustion-time adjuster for adjusting a combustion time of said coal on the basis of the exhaust gas temperature predicted in said exhaust-gas-temperature predictor.
12. The device for operating the coal-fired boiler as claimed in claim 11, wherein said coal is a mixture of a plurality of kinds of coal.
Description
BRIEF DESCRIPTION OF DRAWINGS
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DESCRIPTION OF EMBODIMENTS
[0072] Embodiments of the disclosure will be described in conjunction with attached drawings.
[0073]
[0074] First of all, an example of a coal-fired boiler to which methods and devices according to the disclosure are applied will be schematically described in conjunction with
[0075] The embodiment of the method for predicting ash adhesion in the coal-fired boiler comprises, as shown in
[0076] The coal-ash generating step is a step for asking various kinds of coal such as high- and low-grade coal to be employed as fuel in the coal-fired boiler 100 (see
[0077] The sintered-ash generating step is a step for heating the coal ash generated in the coal-ash generating step at a plurality of temperatures within a combustion temperature range of the coal-fired boiler 100 to generate sintered ash at each of the heating temperatures (see step S20 in
[0078] The sticking-degree calculating step is a step for rotatively separating each sintered ash generated in said sintered-ash generating step in a ratra tester 30 (see
[0079] The correlation determining step is a step for burning each coal having a corresponding sticking degree calculated in the sticking-degree calculating step in the coal-fired boiler 100 to measure an exhaust gas temperature to thereby determine a correlation between sticking degrees and exhaust gas temperatures (see step S40 in
[0080] The exhaust-gas-temperature predicting step is a step for predicting an exhaust gas temperature from a sticking degree of coal to be employed as fuel on the basis of the correlation between the sticking degrees and the exhaust gas temperatures obtained in the correlation determining step (see step S50 in
[0081] The adhesion predicting step is a step for predicting ash adhesion on the heat transmission tubes in the coal-fired boiler 100 on the basis of the exhaust gas temperature predicted in the exhaust-gas-temperature predicting step (see step S60 in
[0082] The sticking-degree calculator 40, the correlation determiner 50, the exhaust-gas-temperature predictor 60 and the adhesion predictor 70 shown in
[0083] Next, mode of operation of the embodiments of the above-mentioned method and device for predicting ash adhesion in the coal-fired boiler.
[0084] First of all, each of a various kinds of coal such as high- and low-grade coal to be employed as fuel in the coal-fired boiler 100 (see
[0085] Each coal ash generated in the coal-ash generating step is entered into the magnetic boat 21 as sintered-ash generator as shown in
[0086] Each sintered ash generated in the sintered-ash generating step is entered into the cylindrical metal mesh 31 in the ratra tester 30 (see
a sticking degree=a weight of sintered ash after the testing/a weight of the sintered ash before the testing
The sticking degree is calculated in the sticking degree calculator 40 (see
[0087] Each coal with a corresponding sticking degree calculated in the sticking-degree calculating step is burned in the coal-fired boiler 100 to measure an exhaust gas temperature by the temperature sensor 160 (see
[0088] On the basis of the correlation between the sticking degrees and the exhaust gas temperatures obtained in the correlation determining step, an exhaust gas temperature is predicted in the exhaust-gas-temperature predictor 60 (see
[0089] On the basis of the exhaust gas temperature predicted in the exhaust-gas-temperature predicting step, ash adhesion on the heat transmission tubes in the coal-fired boiler 100 is predicted in the adhesion predictor 70 (see
[0090] Higher exhaust gas temperature being provided means that ash adheres on the heat transmission tubes to invade heat exchange with the exhaust gas in the heat transmission tubes. That is, when coal providing higher exhaust gas temperature is used as fuel in the coal-fired boiler 100, clogging troubles due to ash adhesion may be caused. The inventors found out that by calculating sticking degrees as coal property parameters to determine the correlation between the sticking degrees and the exhaust gas temperatures in the form of the graph as shown in
[0091] That is to say, if the correlation between the sticking degrees and the exhaust gas temperatures is determined as graph shown in
[0092] In the embodiment, there is no need of actually calculating an actual slag viscosity in an extremely high ambient temperature as high as, for example, 1300° C. as disclosed in Patent Literature 1, which is effective in actually operating the actual coal-fired boiler 100 in safety.
[0093] In this manner, the correlation between the sticking degrees and the exhaust gas temperatures can be grasped to suppress lowering of operation availability due to ash damages and economically advantageous low-grade coal can be effectively utilized.
[0094]
[0095] The method for preventing ash adhesion in the coal-fired boiler according to the embodiment comprises, as shown in
[0096] Explanation on the coal-ash generating step, the sintered-ash generating step, the sticking-degree calculating step and the correlation determining step in the method for preventing ash adhesion in the coal-fired boiler shown in
[0097] The coal selecting step is a step for selecting the coal having a sticking degree as fuel so as to provide an exhaust gas temperature not higher than a set value on the basis of the correlation between the sticking degrees and the exhaust gas temperatures obtained in the correlation determining step (see step S70 in
[0098] The sticking degree calculator 40, the correlation determiner 50 and the coal selector 80 shown in
[0099] Next, mode of operation of the above-mentioned method and device for preventing ash adhesion in the coal-fired boiler will be described.
[0100] In the method and the device for preventing ash adhesion in the coal-fired boiler shown in
[0101] Then, on the basis of the correlation between the sticking degrees and the exhaust gas temperatures obtained in the correlation determining step, coal with a sticking degree to be used as fuel is selected by the coal selector (see
[0102] When coal selected by the coal selector 80 is used as fuel, the exhaust gas temperature can be suppressed to be not higher than the set value so that ash hardly adheres on the heat transmission tubes and heat exchange with the exhaust gas on the heat transmission tubes is hardly blocked.
[0103] Thus, the operation of the actual coal-fired boiler 100 can be stably continued. Incidentally, if forced shutdown due to ash damages can be averted once in an electric generation plant having a generation capacity of the order of 600 MW, loss of 100 million yen or more can be suppressed.
[0104] Thus, also in the method and the device for preventing ash adhesion in the coal-fired boiler shown in
[0105]
fundamental structure thereof is similar to those shown in the method and the device for predicting ash adhesion in the coal-fired boiler shown in
[0106] The method for operating the coal-fired boiler in the embodiment comprises, as shown in
[0107] Explanation on the coal-ash generating step, the sintered-ash generating step, the sticking-degree calculating step, the correlation determining step and the exhaust-gas-temperature predicting step in the method for operating the coal-fired boiler shown in
[0108] The combustion-time adjusting step is a step for adjusting a combustion time of coal on the basis of an exhaust gas temperature predicted in the exhaust-gas-temperature predicting step (see step S80 in
[0109] The sticking degree calculator 40, the correlation determiner 50, the exhaust-gas-temperature predictor 60 and the combustion-time adjuster 90 shown in
[0110] Next, mode of operation of the embodiments of the method and device for operating the coal-fired boiler will be described.
[0111] In the method and device for operating the coal-fired boiler shown in
[0112] Then, the combustion time of the coal is adjusted by combustion-time adjuster 90 (see
[0113] For example, use of coal G or coal H or a mixture thereof in the graph shown in
[0114] Thus, ash adhesion on the heat transmission tubes can be suppressed to effectively utilize low-grade coal, thereby stably continuing the operation of the actual coal-fired boiler 100 with higher economic advantages. Incidentally, if fuel cost can be reduced by 1% in an electric generation plant with a capacity of the order of 600 MW, total cost can be reduced by about 200 million yen per year.
[0115] Thus, also in the method and the device for operating the coal-fired boiler shown in
[0116] In each of the method and the device for predicting ash adhesion in the coal-fired boiler shown in
[0117] It is to be understood that a method and an device for predicting ash adhesion in a coal-fired boiler, a method and an device for preventing ash adhesion in a coal-fired boiler and a method and an device for operating a coal-fired boiler according to the disclosure are not limited to the above embodiments and that various changes and modifications may be made without departing from the scope of the disclosure.
REFERENCE SIGNS LIST
[0118] 10 coal-ash generator [0119] 20 sintered-ash generator [0120] 21 magnetic boat [0121] 30 ratra tester [0122] 31 cylindrical metal mesh [0123] 32 rotary shaft [0124] 33 setup section [0125] 34 passing object pan [0126] 35 cover [0127] 40 sticking-degree calculator [0128] 50 correlation determiner [0129] 60 exhaust-gas-temperature predictor [0130] 70 adhesion predictor [0131] 80 coal selector [0132] 90 combustion-time adjuster [0133] 100 coal-fired boiler [0134] 110 furnace [0135] 111 secondary superheater [0136] 112 tertiary superheater [0137] 113 final superheater [0138] 114 secondary reheater [0139] 115 upper heat transfer unit [0140] 120 rear heat transfer unit [0141] 121 primary superheater [0142] 122 primary reheater [0143] 123 coal economizer [0144] 130 boiler body [0145] 140 burner [0146] 150 boiler outlet exhaust gas duct