Apparatus, power plant, apparatus control method, program, power plant system, and power plant system control method

The apparatus and control method address the challenge of varying coal properties by setting threshold values based on fuel supply, gas flow, temperature, and fineness to accurately detect mill abnormalities, improving power plant operation.

JP7749382B2Active Publication Date: 2025-10-06MITSUBISHI HEAVY IND LTD
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Patent Information

Application Number
JP2021139915
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-08-31
Filing Date
2021-08-30
Publication Date
2025-10-06
Estimated Expiration
2041-08-30

AI Technical Summary

Technical Problem

Conventional coal-fired power plants face challenges in accurately determining mill abnormalities due to variations in coal properties, such as grindability, calorific value, and moisture content, which affect mill furnace pressure differences, making existing monitoring methods inadequate.

Method used

An apparatus and control method that set threshold values for determining mill abnormalities based on the amount of solid fuel supplied, carrier gas flow rate, temperature, moisture content, and fineness of the fuel, allowing for more precise detection of mill issues.

Benefits of technology

Accurately determines mill abnormalities, enhancing operational reliability and efficiency by considering the specific properties of different coal types used in the power plant.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

To provide a device, a power generation plant, a method for controlling the device, a program, a power generation plant system and a method for controlling the power generation plant system which can more accurately determine whether an abnormality occurs in a grinding machine.SOLUTION: This device comprises: a determination unit 51 which, when a differential pressure between a grinding machine that grinds a supplied solid fuel, and a furnace of a boiler which burns the ground solid fuel exceeds a first threshold, determines that an abnormality occurs in the grinding machine, the differential pressure being detected by a differential pressure detection unit 102; and a first threshold setting unit 52 which sets the first threshold to be used by the determination unit 51, where the first threshold setting unit 52 sets the first threshold on the basis of the amount of the solid fuel supplied to the grinding machine and / or a primary air flow rate supplied to the grinding machine, and at least one among the temperature of primary air discharged from the grinding machine, moisture content of the solid fuel supplied to a mill, and the fineness of the solid fuel discharged from the grinding machine.SELECTED DRAWING: Figure 2
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Description

[Technical Field]

[0001] The present disclosure relates to an apparatus, a power plant, a control method for an apparatus, a program, a power plant system, and a control method for a power plant system. [Background technology]

[0002] Conventionally, solid fuels (carbon-containing solid fuels) such as coal and biomass fuels are pulverized into fine powder within a predetermined particle size range in a pulverizer (mill) and then supplied to a combustion device. In the mill, solid fuels such as coal and biomass fuels are fed onto a pulverizing table and pulverized between the pulverizing table and a pulverizing roller. A carrier gas (primary air) is supplied from the periphery of the pulverizing table. The pulverized fuel within a predetermined particle size range is separated by a classifier and transported to a boiler via a pulverized coal pipe for combustion in a combustion device. In a thermal power plant, pulverized fuels are combusted in a boiler to generate steam through heat exchange with combustion gases. The steam drives a steam turbine, which in turn drives a generator connected to the steam turbine, thereby generating electricity.

[0003] In such a mill, the mill furnace differential pressure, which is the pressure difference between the mill outlet and the boiler furnace (i.e., the pressure loss in the pulverized coal pipe), fluctuates when an abnormality such as rapid combustion occurs inside the mill. For this reason, in such a mill, the mill furnace differential pressure is sometimes monitored during operation to check for any abnormalities (for example, Patent Document 1).

[0004] In Patent Document 1, since the mill furnace differential pressure fluctuates depending on the mill operating state, a threshold value is set by adding a predetermined value calculated based on past performance to the differential pressure in relation to the coal feed rate and the actual measured value of the mill furnace differential pressure, and monitoring is carried out so that an alarm is issued if the differential pressure during mill operation exceeds the threshold value. [Prior art documents] [Patent documents]

[0005] [Patent Document 1] Japanese Patent Application Laid-Open No. 2016-102621 Summary of the Invention [Problem to be solved by the invention]

[0006] In conventional coal-fired power plants, there are certain restrictions on the type of coal that can be used, and coals with significant differences in properties cannot be used in the same coal-fired power plant. For this reason, the primary air flow rate setting relative to the amount of coal fed to the mill (hereinafter referred to as the "air flow curve") was uniform regardless of the type of coal. Therefore, even when a monitoring method such as that described in Patent Document 1 was used, problems with mill operation did not become apparent. Meanwhile, in recent years, there has been a need to expand the range of coal properties used in the same coal-fired power plant in order to diversify the fuels used. For example, there are cases where bituminous coal and subbituminous coal are used separately in the same mill. When the range of coal properties of the coal types fed into the mill is expanded, differences in the mill's operating conditions arise depending on the coal's properties, such as grindability, calorific value, and moisture content. Furthermore, different settings for the mill's airflow curve may be required depending on the coal properties. As a result, the mill furnace pressure difference is significantly affected by the properties of the coal used, which means that the monitoring method described in Patent Document 1 may not be able to accurately determine whether the mill is malfunctioning.

[0007] The present disclosure has been made in consideration of the above circumstances, and aims to provide an apparatus, a power generation plant, an apparatus control method, a program, a power generation plant system, and a power generation plant system control method that can more accurately determine whether or not an abnormality has occurred in a pulverizer. [Means for solving the problem]

[0008] In order to solve the above problems, the device and the device control method of the present disclosure employ the following means. An apparatus according to one aspect of the present disclosure includes a determination unit that determines that an abnormality has occurred in the pulverizer when a differential pressure between a pulverizer that pulverizes supplied solid fuel and a furnace of a boiler that burns the pulverized solid fuel, detected by a differential pressure detection unit, exceeds a first threshold value, and a first threshold value setting unit that sets the first threshold value used by the determination unit for determination, wherein the first threshold value setting unit sets the first threshold value based on at least one of an amount of the solid fuel supplied to the pulverizer and / or a flow rate of a carrier gas that is supplied to the pulverizer and transports the pulverized solid fuel to the furnace, a temperature of the carrier gas discharged from the pulverizer, a moisture content of the solid fuel supplied to the pulverizer, and a fineness of the solid fuel discharged from the pulverizer. The first threshold value setting unit sets the first threshold value based only on the flow rate of the carrier gas when the pulverizer pulverizes a first solid fuel and a second solid fuel having properties different from those of the first solid fuel. .

[0009] In a control method for an apparatus for pulverizing solid fuel according to one aspect of the present disclosure, the apparatus executes a determination step of determining that an abnormality has occurred in the pulverizer when a differential pressure between a pulverizer that pulverizes supplied solid fuel and a furnace of a boiler that burns the pulverized solid fuel, detected by a differential pressure detection unit, exceeds a threshold value, and a threshold setting step of setting the threshold value to be used in the determination step, wherein the threshold setting step sets the threshold value based on at least one of an amount of the solid fuel supplied to the pulverizer and / or a flow rate of a carrier gas that is supplied to the pulverizer and transports the pulverized solid fuel to the furnace, a temperature of the carrier gas discharged from the pulverizer, a moisture content of the solid fuel supplied to the pulverizer, and a fineness of the solid fuel discharged from the pulverizer. The threshold value setting step sets the threshold value based only on the flow rate of the carrier gas when the pulverizer pulverizes a first solid fuel and a second solid fuel having properties different from those of the first solid fuel. . [Effects of the Invention]

[0010] According to the present disclosure, it is possible to more accurately determine whether or not an abnormality has occurred in the crusher. [Brief explanation of the drawings]

[0011] [Figure 1] 1 is a configuration diagram showing a power plant according to a first embodiment of the present disclosure. [Figure 2]2 is a block diagram showing a control unit provided in the solid fuel pulverizer of FIG. 1. FIG. [Figure 3] 2 is a graph showing the relationship between the coal feed rate and pressure loss (mill furnace differential pressure) in the solid fuel pulverizer of FIG. 1, where (a) shows the pressure loss contribution due to the primary air flow rate, (b) shows the pressure loss contribution due to the moisture content, (c) shows the pressure loss contribution due to the fineness of the powder, and (d) shows the pressure loss contribution due to the mill outlet temperature. [Figure 4] 2 is a graph showing the relationship between the amount of coal fed and the primary air flow rate in the solid fuel pulverizer of FIG. 1. [Figure 5] 10 is a graph showing the relationship between the primary air flow rate and the mill furnace differential pressure in a solid fuel pulverizer according to a second embodiment of the present disclosure. [Figure 6] 1 is a graph showing the moisture content and fuel ratio of bituminous coal and subbituminous coal. [Figure 7] 10 is a graph showing the relationship between the mill outlet temperature and the fuel ratio in the solid fuel pulverizer according to the second embodiment of the present disclosure. [Figure 8] 8A and 8B are graphs showing the mill furnace differential pressure and primary air flow rate versus coal feed rate when crushing sub-bituminous coal and when crushing bituminous coal in a solid fuel crushing device according to a second embodiment of the present disclosure, where FIG. 8A shows the relationship between the coal feed rate and the mill furnace differential pressure, and FIG. 8B shows the relationship between the coal feed rate and the primary air flow rate (air flow curve). [Figure 9] 8(a) and 8(b) are converted to show the relationship between the primary air flow rate and the mill furnace differential pressure. [Figure 10] FIG. 10 is a configuration diagram showing a power generation plant according to a modified example of the present disclosure. [Figure 11] 11 is a block diagram showing functions provided in the solid fuel pulverizer and the information processing device of FIG. 10. FIG. DETAILED DESCRIPTION OF THE INVENTION

[0012] Hereinafter, embodiments of an apparatus, a power plant, an apparatus control method, a program, a power plant system, and a power plant system control method according to the present disclosure will be described with reference to the drawings.

[0013] [First embodiment] A first embodiment of an apparatus, a power plant, an apparatus control method, a program, a power plant system, and a power plant system control method according to the present disclosure will be described below with reference to the drawings. The power plant 1 according to this embodiment includes a solid fuel pulverizer 100 and a boiler 200. In the following explanation, "upper" refers to the vertically upward direction, and "upper" in terms such as upper part and upper surface refers to the vertically upward part. Similarly, "lower" refers to the vertically downward part, and the vertical direction is not precise and may include errors.

[0014] The solid fuel pulverizer 100 of this embodiment is an apparatus that pulverizes solid fuel (carbon-containing solid fuel) such as coal or biomass fuel, generates pulverized fuel, and supplies it to a burner (combustion device) 220 of a boiler 200. The power plant 1 including the solid fuel pulverizer 100 and the boiler 200 shown in FIG. 1 is equipped with one solid fuel pulverizer 100, but it may also be a system equipped with multiple solid fuel pulverizers 100 corresponding to each of the multiple burners 220 of one boiler 200.

[0015] The solid fuel pulverizer 100 of this embodiment includes a mill (pulverizer) 10, a coal feeder (fuel supplier) 20, a blower (carrier gas supplier) 30, a state detector 40, and a controller (determiner) 50.

[0016] The mill 10, which pulverizes solid fuel such as coal or biomass fuel to be supplied to the boiler 200 into pulverized fuel, which is a finely powdered solid fuel, may be a type that pulverizes only coal, may pulverize only biomass fuel, or may pulverize coal and biomass fuel. Furthermore, the mill 10 may be used with a mixture of coals with different properties, or each of the coals may be used alone. For example, after subbituminous coal is supplied to the mill 10, a bituminous coal with properties different from the subbituminous coal, or a solid fuel that is a mixture of subbituminous coal and bituminous coal, may be supplied. Here, biomass fuel refers to organic resources derived from renewable living organisms, such as thinned wood, waste wood, driftwood, grass, waste, sludge, tires, and recycled fuels (pellets and chips) made from these materials, but is not limited to the ones listed here.Biomass fuels are carbon neutral, meaning they do not emit carbon dioxide, a greenhouse gas, because they absorb carbon dioxide during the biomass growth process, and various uses for them are being considered.

[0017] The mill 10 includes a housing 11, a grinding table 12, grinding rollers 13, a drive unit 14, a mill motor 15 connected to the drive unit 14 and driving the grinding table 12 to rotate, a rotary classifier 16, a fuel supply unit 17, and a classifier motor 18 that drives the rotary classifier 16 to rotate. The housing 11 is formed in a cylindrical shape extending in the vertical direction, and is a case that accommodates the crushing table 12, the crushing rollers 13, the rotary classifier 16, and the fuel supply unit 17. A fuel supply unit 17 is attached to the center of the ceiling 42 of the housing 11. This fuel supply unit 17 supplies solid fuel introduced from the bunker 21 into the housing 11, and is arranged in the vertical direction at the center of the housing 11, with its lower end extending into the interior of the housing 11.

[0018] A drive unit 14 is installed near the bottom surface 41 of the housing 11, and a mill motor 15 connected to the drive unit 14 transmits a driving force to rotate the grinding table 12, which is rotatably arranged. The crushing table 12 is a circular member in a plan view, and is disposed so that the lower end of the fuel supply unit 17 faces it. The upper surface of the crushing table 12 may, for example, have an inclined shape that is low in the center and rises toward the outside, with the outer periphery curved upward. The fuel supply unit 17 supplies solid fuel (in this embodiment, for example, coal or biomass fuel) from above toward the crushing table 12 below, and the crushing table 12 crushes the supplied solid fuel between itself and the crushing rollers 13.

[0019] When solid fuel is fed from the fuel supply unit 17 toward the approximate center region of the grinding table 12, the centrifugal force generated by the rotation of the grinding table 12 guides the solid fuel toward the outer periphery of the grinding table 12, where it is pinched and ground between the grinding table 12 and the grinding roller 13. The ground solid fuel is blown upward by the carrier gas (hereinafter referred to as primary air) guided from the carrier gas flow path (hereinafter referred to as primary air flow path) 100a, and is guided to the rotary classifier 16. An outlet (not shown) is provided on the outer periphery of the grinding table 12, through which primary air flowing in from the primary air flow path 100a flows out into the space above the grinding table 12 within the housing 11. A swirl blade (not shown) is provided at the outlet, which imparts a swirling force to the primary air blown out from the outlet. The primary air given a swirling force by the swirl blade becomes an airflow having a swirling velocity component, and transports the solid fuel pulverized on the grinding table 12 to the rotary classifier 16 located above in the housing 11. Of the pulverized solid fuel, particles larger than a predetermined particle size are classified by the rotary classifier 16, or fall without reaching the rotary classifier 16 and are returned to the grinding table 12, where they are pulverized again between the grinding table 12 and the grinding roller 13.

[0020] The crushing roller 13 is a rotating body that crushes the solid fuel supplied onto the crushing table 12 from the fuel supply unit 17. The crushing roller 13 is pressed against the upper surface of the crushing table 12 and cooperates with the crushing table 12 to crush the solid fuel. 1 shows only one representative crushing roller 13, but multiple crushing rollers 13 are arranged at regular intervals in the circumferential direction so as to press against the upper surface of the crushing table 12. For example, three crushing rollers 13 are arranged at equal intervals in the circumferential direction on the outer periphery, at angular intervals of 120°. In this case, the portions of the three crushing rollers 13 that come into contact with the upper surface of the crushing table 12 (pressing portions) are equidistant from the rotational axis of the crushing table 12.

[0021] The crushing roller 13 can swing up and down by a journal head 45, and is supported so as to be able to move toward and away from the upper surface of the crushing table 12. When the crushing table 12 rotates, the crushing roller 13 receives a rotational force from the crushing table 12 and rotates with it, with the outer circumferential surface of the crushing roller 13 in contact with the solid fuel on the upper surface of the crushing table 12. When solid fuel is supplied from the fuel supply unit 17, the solid fuel is pressed between the crushing roller 13 and the crushing table 12 and crushed.

[0022] A support arm 47 of the journal head 45 is supported on the side of the housing 11 by a support shaft 48 whose middle section is aligned horizontally, allowing the crushing roller 13 to swing up and down around the support shaft 48. A pressing device 49 is provided at the upper end section vertically above the support arm 47. The pressing device 49 is fixed to the housing 11 and applies a load to the crushing roller 13 via the support arm 47 etc. so as to press the crushing roller 13 against the crushing table 12.

[0023] The drive unit 14 is a device that transmits a drive force to the grinding table 12 and rotates the grinding table 12 around its central axis. The drive unit 14 is connected to a mill motor 15 and transmits the drive force of the mill motor 15 to the grinding table 12.

[0024] The rotary classifier 16 is provided at the top of the housing 11 and has a hollow, generally inverted cone-shaped exterior. The rotary classifier 16 is provided with a plurality of blades 16a extending in the vertical direction around its outer periphery. The blades 16a are provided at predetermined intervals (equally spaced) around the central axis of the rotary classifier 16. The rotary classifier 16 is a device that classifies solid fuel pulverized by the pulverizing table 12 and pulverizing rollers 13 (hereinafter, the pulverized solid fuel will be referred to as "pulverized fuel") into particles larger than a predetermined particle size (for example, 70 to 100 μm for coal) (hereinafter, pulverized fuel exceeding the predetermined particle size will be referred to as "coarse pulverized fuel") and particles smaller than the predetermined particle size (hereinafter, pulverized fuel smaller than the predetermined particle size will be referred to as "fine pulverized fuel"). The rotary classifier 16, which classifies by rotation, is also called a rotary separator, and is given a rotational driving force by a classifier motor 18 controlled by a control unit 50, and rotates around a fuel supply unit 17 centered on a cylindrical axis (not shown) extending in the vertical direction of the housing 11. The classifier may be a fixed classifier having a fixed hollow inverted cone-shaped casing and a plurality of fixed swirl vanes on the outer periphery of the casing instead of the blades 16a.

[0025] When the pulverized fuel reaches the rotary classifier 16, due to the relative balance between the centrifugal force generated by the rotation of the blades 16a and the centripetal force of the primary air flow, large diameter coarse pulverized fuel particles are knocked down by the blades 16a and returned to the pulverizing table 12 to be pulverized again, and the pulverized fuel is led to the outlet port 19 in the ceiling 42 of the housing 11. The pulverized fuel classified by the rotary classifier 16 is discharged together with the primary air from the outlet port 19 into the pulverized fuel supply flow path (pulverized fuel pipe) 100b and supplied to the burner 220 of the boiler 200. When the solid fuel is coal, the pulverized fuel supply flow path 100b is also called a pulverized coal pipe.

[0026] The fuel supply unit 17 is attached so that its lower end extends vertically into the interior of the housing 11 so as to penetrate through the ceiling 42 of the housing 11, and supplies solid fuel fed from the top of the fuel supply unit 17 to the approximate central region of the grinding table 12. The fuel supply unit 17 is supplied with solid fuel from the coal feeder 20.

[0027] The coal feeder 20 includes a conveying unit 22 and a coal feeder motor 23. The conveying unit 22 is, for example, a belt conveyor, and by the driving force provided by the coal feeder motor 23, conveys the solid fuel discharged from the lower end of the downspout 24 located directly below the bunker 21 to the top of the fuel supply unit 17 of the mill 10 and inputs it into the fuel supply unit 17. Normally, primary air is supplied to the inside of the mill 10 to transport pulverized fuel to the burner 220, and the pressure therein is higher than that of the coal feeder 20 and the bunker 21. Downspout 24, a pipe extending in the vertical direction directly below bunker 21, holds fuel in a layered state inside, and the layer of solid fuel stacked inside downspout 24 ensures a seal that prevents the primary air and pulverized fuel on the mill 10 side from flowing back toward the bunker 21 side. The amount of solid fuel supplied to the mill 10 is adjusted by, for example, the moving speed of the belt conveyor of the transport unit 22.

[0028] The blower 30 is a device that blows primary air into the housing 11 to dry the pulverized fuel and transport it to the rotary classifier 16 . In this embodiment, the blower section 30 is equipped with a primary air fan (PAF) 31, a hot gas flow path 30a, a cold gas flow path 30b, a hot gas damper 30c, and a cold gas damper 30d in order to appropriately adjust the flow rate and temperature of the primary air blown into the inside of the housing 11.

[0029] In this embodiment, the hot gas flow path 30a supplies a portion of the air (outside air) sent out from the primary air fan 31 as hot gas that has been heated by passing through a heat exchanger 34, such as an air preheater. A hot gas damper 30c is provided downstream of the hot gas flow path 30a. The opening degree of the hot gas damper 30c is controlled by the control unit 50. The flow rate of the hot gas supplied from the hot gas flow path 30a is determined by the opening degree of the hot gas damper 30c.

[0030] Cold gas flow path 30b supplies a portion of the air sent out from primary air ventilator 31 as cold gas at room temperature. Cold gas damper 30d is provided downstream of cold gas flow path 30b. The opening degree of cold gas damper 30d is controlled by control unit 50. The flow rate of cold gas supplied from cold gas flow path 30b is determined by the opening degree of cold gas damper 30d.

[0031] In this embodiment, the primary air flow rate is the sum of the flow rate of the hot gas supplied from the hot gas flow path 30a and the flow rate of the cold gas supplied from the cold gas flow path 30b, and the temperature of the primary air is determined by the mixing ratio of the hot gas supplied from the hot gas flow path 30a and the cold gas supplied from the cold gas flow path 30b, and is controlled by the control unit 50. In addition, the oxygen concentration of the primary air blown into the inside of the housing 11 from the primary air flow path 100a may be adjusted by introducing and mixing a portion of the combustion gas discharged from the boiler 200 via a gas recirculation ventilator (not shown) into the hot gas supplied from the hot gas flow path 30a.

[0032] In this embodiment, the state detection unit 40 of the mill 10 transmits measured or detected data to the control unit 50. The state detection unit 40 of this embodiment is, for example, a differential pressure measurement means, and measures the differential pressure of the mill 10 as the pressure difference between the pressure at the portion where primary air flows from the primary air flow path 100a into the housing 11 and the pressure at the outlet port 19 where the primary air and pulverized fuel are discharged from the housing 11 to the pulverized fuel supply flow path 100b. An increase or decrease in this differential pressure of the mill 10 corresponds to an increase or decrease in the amount of pulverized fuel circulating between the vicinity of the rotary classifier 16 inside the housing 11 and the vicinity of the grinding table 12 due to the classification effect of the rotary classifier 16. In other words, by adjusting the rotation speed of the rotary classifier 16 according to the differential pressure of the mill 10, the amount of pulverized fuel discharged from the outlet port 19 can be adjusted relative to the amount of solid fuel supplied to the mill 10.Therefore, within the range where the particle size of the pulverized fuel does not affect the combustibility of the burner 220, an amount of pulverized fuel corresponding to the amount of solid fuel supplied to the mill 10 can be stably supplied to the burner 220 provided in the boiler 200. The state detection unit 40 of this embodiment is, for example, a temperature measurement means that detects the temperature of the primary air supplied to the inside of the housing 11 (the temperature of the primary air at the mill inlet) and the temperature of the primary air from the space above the grinding table 12 inside the housing 11 to the outlet port 19, and controls the blower unit 30 so that the upper limit temperature does not exceed this. The upper limit temperature is determined taking into consideration the possibility of ignition of the solid fuel, etc. The primary air is cooled inside the housing 11 by transporting the pulverized fuel while drying it, and the temperature of the primary air at the outlet port 19 is, for example, about 60 to 90 degrees.

[0033] The control unit 50 is a device that controls each part of the solid fuel pulverizer 100 . The control unit 50 may, for example, transmit a drive command to the mill motor 15 to control the rotation speed of the grinding table 12. The control unit 50, for example, transmits a drive command to the classifier motor 18 to control the rotational speed of the rotary classifier 16, thereby adjusting the classification performance, and by optimizing the differential pressure of the mill 10, i.e., the amount of pulverized fuel circulating inside the mill 10, within a predetermined range, it is possible to stably supply pulverized fuel to the burner 220. In addition, the control unit 50 can adjust the amount of solid fuel (amount of coal supply) that the conveying unit 22 conveys and supplies to the fuel supply unit 17, for example, by transmitting a drive instruction to the coal supply motor 23 of the coal supply unit 20. Furthermore, the control unit 50 can adjust the flow rate and temperature of the primary air by controlling the opening of the hot gas damper 30c and the cold gas damper 30d by transmitting an opening command to the blower 30. Specifically, the control unit 50 controls the opening of the hot gas damper 30c and the cold gas damper 30d so that the flow rate of the primary air supplied to the inside of the housing 11 and the temperature of the primary air at the outlet port 19 become predetermined values ​​set in accordance with the amount of coal feed for each type of solid fuel.

[0034] The control unit 50 is composed of, for example, a central processing unit (CPU), random access memory (RAM), read-only memory (ROM), and a computer-readable storage medium. A series of processes for implementing various functions is stored in a storage medium, for example, in the form of a program. The CPU reads the program into the RAM and executes information processing and arithmetic operations to implement various functions. The program may be pre-installed in a ROM or other storage medium, provided in a state stored in a computer-readable storage medium, or distributed via wired or wireless communication means. Examples of computer-readable storage media include magnetic disks, magneto-optical disks, CD-ROMs, DVD-ROMs, and semiconductor memories. The HDD may be replaced with a solid-state disk (SSD), for example.

[0035] Next, a description will be given of the boiler 200 that generates steam by burning the pulverized fuel supplied from the solid fuel pulverizer 100. The boiler 200 includes a furnace 210 and a burner 220.

[0036] The burner 220 is a device that burns pulverized fuel to form a flame using primary air containing pulverized fuel supplied from the pulverized fuel supply passage 100b and secondary air supplied by heating air (outside air) sent out from a forced draft fan (FDF) 32 in a heat exchanger 34. The pulverized fuel is burned in the furnace 210, and the high-temperature combustion gas is discharged to the outside of the boiler 200 after passing through heat exchangers (not shown) such as an evaporator, a superheater, and a coal economizer.

[0037] The combustion gas discharged from the boiler 200 undergoes predetermined processing in an environmental device (such as a denitration device or an electrostatic precipitator, not shown), and then undergoes heat exchange in a heat exchanger 34, such as an air preheater, between the air discharged from the primary air fan 31 and the air discharged from the forced draft fan 32, and is then guided to a chimney (not shown) via an induced draft fan (IDF) 33 and released into the outside air. The air discharged from the primary air fan 31, heated by the combustion gas in the heat exchanger 34, is supplied to the above-mentioned hot gas flow path 30a. The water supplied to each heat exchanger of the boiler 200 is heated in a coal economizer (not shown), and then further heated in an evaporator (not shown) and a superheater (not shown) to generate high-temperature, high-pressure steam, which is then sent to the power generation section, a steam turbine (not shown), to rotate and drive the steam turbine, which then rotates and drives a generator (not shown) connected to the steam turbine to generate electricity, thereby constituting the power generation plant 1.

[0038] The solid fuel pulverizer 100 also includes a pressure detection unit (differential pressure detection unit) 102 , a flow rate detection unit 101 , and a temperature detection unit 103 . The pressure detection unit 102 is a sensor that detects the internal pressure of the housing 11 relative to a reference pressure. The pressure detection unit 102 detects the internal pressure of the housing 11 using the internal pressure of the furnace 210 of the boiler 200 as the reference pressure. Therefore, the pressure detection unit 102 shown in FIG. 1 is a sensor that detects the differential pressure between the internal pressure of the furnace 210 of the boiler 200 and the internal pressure of the housing 11. The pressure detection unit 102 outputs the detected differential pressure between the internal pressure of the furnace 210 of the boiler 200 and the internal pressure of the housing 11 (hereinafter referred to as the "mill furnace differential pressure") to the control unit 50. The mill furnace differential pressure may be obtained by detecting the internal pressure of the housing 11 and the pressure of the furnace 210 with separate sensors and calculating the differential pressure from these pressures. In addition, since the mill furnace differential pressure is the same as the pressure loss when a two-phase flow of a mixture of pulverized fuel and primary air flows through the pulverized fuel supply passage 100b connecting the mill 10 and the furnace 210, the mill furnace differential pressure may be referred to as the "pressure loss" below.

[0039] The flow rate detection unit 101 is provided in the primary air flow path 100a. The flow rate detection unit 101 is a sensor that detects the flow rate of primary air that the blower 30 blows into the housing 11 through the primary air flow path 100a. The flow rate detection unit 101 outputs the detected flow rate of the primary air passing through the primary air flow path 100a to the control unit 50.

[0040] The temperature detection unit 103 is provided near the outlet port 19 of the pulverized fuel supply passage 100b. A two-phase flow of a mixture of pulverized fuel and primary air flows through the pulverized fuel supply passage 100b. The temperature detection unit 103 is a sensor that detects the temperature of the two-phase flow that flows near the outlet port 19 in the pulverized fuel supply passage 100b. The temperature detection unit 103 outputs the detected temperature to the control unit 50.

[0041] 2, the control unit 50 includes a determination unit 51 that determines that an abnormality has occurred in the mill 10 based on a first threshold value and a second threshold value, a first threshold value setting unit 52 that sets the first threshold value used by the determination unit 51 for the determination, and a second threshold value setting unit 53 that sets the second threshold value used by the determination unit 51 for the determination. When the determination unit 51 determines that an abnormality has occurred in the mill 10, the control unit 50 controls various devices so that the solid fuel pulverizer 100 is stopped.

[0042] The determination unit 51 determines that an abnormality has occurred in the mill 10 when the mill furnace differential pressure detected by the differential pressure detection unit exceeds a first threshold value. More preferably, the determination unit 51 determines that an abnormality has occurred in the mill 10 when the mill furnace differential pressure exceeds the first threshold value and the flow rate of the carrier gas detected by the flow rate detection unit 101 is lower than a second threshold value. This makes it possible to more accurately determine whether an abnormality has occurred in the mill 10 compared to when the determination is made based only on the mill furnace differential pressure. Note that an abnormality in the mill 10 may be, for example, rapid combustion occurring inside the mill 10.

[0043] When rapid combustion occurs inside the mill 10, the pressure inside the mill 10 (inside the housing 11) increases. This increases the mill furnace differential pressure compared to when the mill 10 is operating normally. Therefore, by monitoring the mill furnace differential pressure, it is possible to determine whether there is an abnormality in the mill 10. Furthermore, when the pressure inside the mill 10 increases, it becomes more difficult for primary air to flow into the mill 10. This reduces the primary air flow rate compared to when the mill 10 is operating normally. Therefore, by monitoring the primary air flow rate, it is possible to determine whether there is an abnormality in the mill 10.

[0044] The first threshold setting unit 52 sets the first threshold based on the amount of solid fuel supplied to the mill 10 (hereinafter referred to as the "feed amount"), the primary air flow rate supplied to the mill 10 detected by the flow rate detection unit 101, the temperature of the two-phase flow discharged from the mill 10 detected by the temperature detection unit 103 (hereinafter referred to as the "mill outlet temperature"), the moisture content of the solid fuel supplied to the mill 10, and the fineness of the solid fuel discharged from the mill 10. Note that the first threshold in this embodiment is not always a constant value, but a value that changes depending on the operating state of the mill 10, etc.

[0045] The first threshold setting unit 52 may use, for example, the coal feed amount detected by the coal feeder 20 as the coal feed amount. Alternatively, the first threshold setting unit 52 may use the coal feed amount input to the control unit 50. Furthermore, the first threshold setting unit 52 may use, as the moisture content of the solid fuel, the moisture content detected by a sensor that detects the moisture content, which is provided on the path of the solid fuel upstream of the mill 10. Alternatively, the first threshold setting unit 52 may use the moisture content input to the control unit 50. The first threshold value setting unit 52 may use, as the fineness, the fineness detected by a sensor provided in the pulverized fuel supply passage 100b for detecting the fineness of the solid fuel discharged from the mill 10. Alternatively, the first threshold value setting unit 52 may use the fineness input to the control unit 50.

[0046] The coal feed rate, primary air flow rate, mill outlet temperature, moisture content and pulverization degree of the solid fuel are factors that affect the mill furnace differential pressure (pressure loss in the pulverized fuel supply passage 100b). As described above, a two-phase flow of a mixture of pulverized coal and primary air flows through the pulverized fuel supply passage 100b. The mill furnace differential pressure can be calculated as the sum of the pressure loss due to the gas phase and the pressure loss due to the solid phase (friction resistance due to the pulverized fuel particles) of the two-phase flow flowing through the pulverized fuel supply passage 100b.

[0047] The pressure loss due to the gas phase is determined by the flow velocity of the two-phase flow flowing through the pulverized fuel supply passage 100b. Therefore, it is affected by the primary air flow rate, the moisture content of the solid fuel, the mill outlet temperature, the coal feed rate, and the degree of fineness. Specifically, as the primary air flow rate increases, the flow velocity of the two-phase flow increases, resulting in greater pressure loss. Furthermore, as the moisture content of the solid fuel increases, the amount of moisture evaporating from the solid fuel increases accordingly. As the amount of moisture evaporating from the solid fuel increases, the flow velocity of the two-phase flow increases by the volume of the evaporated moisture, resulting in greater pressure loss. Furthermore, as the mill outlet temperature increases, the specific volume of the two-phase flow increases accordingly, resulting in greater flow velocity of the two-phase flow and greater pressure loss. Furthermore, as the coal feed rate increases, the flow velocity of the two-phase flow increases by the volume occupied by the pulverized fuel, resulting in greater pressure loss. Furthermore, as the degree of fineness increases (the average particle size of the pulverized fuel increases), the bulk density of the pulverized fuel decreases, which increases the volume of the two-phase flow and the flow velocity of the two-phase flow, resulting in increased pressure loss.

[0048] In addition, the pressure loss due to the solid phase is affected by the amount of coal fed and the degree of fineness. Specifically, as the amount of coal fed increases, the concentration of solid particles in the two-phase flow increases, which increases the friction with the inner surface of the pulverized fuel supply passage 100b, resulting in a larger pressure loss. As the degree of fineness increases, the number of pulverized coal particles that act as resistance in the pulverized fuel supply passage 100b increases, resulting in a larger pressure loss.

[0049] Thus, the coal feed rate, primary air flow rate, mill outlet temperature, moisture content and fineness of the solid fuel are factors that affect the mill furnace differential pressure.

[0050] A method by which the first threshold value setting unit 52 sets the first threshold value using the coal feed rate, primary air flow rate, mill outlet temperature, moisture content of the solid fuel, and fineness will be described with reference to Fig. 3. Fig. 3 is a graph showing the influence of each factor on the relationship between the coal feed rate and pressure loss (mill furnace differential pressure), and shows the cases where subbituminous coal is used as the solid fuel and where bituminous coal is used.

[0051] The first threshold value setting unit 52 calculates the first threshold value P when the coal feed rate is f1 using the following formula (1).

[0052] P=ΔP1+ΔP2+ΔP3+ΔP4+PX (1) where ΔP1 is the contribution to pressure loss due to the primary air flow rate when the coal feed rate is f1. ΔP2: Contribution to pressure loss due to moisture content when coal feed rate is f1 ΔP3: Contribution to pressure drop due to fineness when coal feed rate is f1 ΔP4: Contribution to pressure drop due to mill outlet temperature when coal feed rate is f1 PX: A predetermined value (tolerance) based on past performance data when an abnormality occurred in Mill 10

[0053] Graphs showing the relationship between the coal feed rate and the pressure loss due to each factor (see FIGS. 3(a) to (d)) may be stored in the memory unit 54 provided in the control unit 50. The first threshold setting unit 52 derives the pressure loss due to each factor for each coal feed rate based on each graph stored in the memory unit 54. Note that the pressure loss values ​​used in each graph may be theoretically calculated values ​​or values ​​based on past operating results. Furthermore, values ​​obtained by correcting the theoretical values ​​or values ​​based on past operating results based on values ​​measured during operation may also be used.

[0054] Specifically, a method for setting the first threshold value when sub-bituminous coal is used as the solid fuel will be described. As shown in Figure 3(a), when sub-bituminous coal is used as the solid fuel, the contribution to pressure loss due to the primary air flow rate when the coal feed rate is f1 is ΔP1a. Also, as shown in Figure 3(b), the contribution to pressure loss due to the moisture content when the coal feed rate is f1 is ΔP2a. Also, as shown in Figure 3(c), the contribution to pressure loss due to the fineness of the coal when the coal feed rate is f1 is ΔP3a. Also, as shown in Figure 3(d), the pressure loss due to the mill outlet temperature when the coal feed rate is f1 is ΔP4a. The first threshold value Pa when the coal feed rate is f1 is calculated by substituting the obtained value into the above formula (1). Specifically, it is calculated by the following formula (2).

[0055] Pa=ΔP1a+ΔP2a+ΔP3a+ΔP4a+PX...(2)

[0056] Furthermore, when bituminous coal is used as the solid fuel, the first threshold value Pb when the coal supply amount is f1 is set in the same way as when sub-bituminous coal is used, and is calculated by the following formula (3).

[0057] Pb=ΔP1b+ΔP2b+ΔP3b+ΔP4b+PX...(3)

[0058] The first threshold setting unit 52 may set the first threshold using only specific parameters, rather than using all of the above parameters. For example, parameters that have little effect on changes in the mill furnace differential pressure may be excluded. Specifically, as shown in FIG. 3(c), the pressure loss due to fineness is not significantly different between bituminous coal and subbituminous coal (the difference between ΔP3a and ΔP3b is small), and the values ​​of ΔP3a and ΔP3b themselves are low. As such, fineness is considered to have little effect on changes in the mill furnace differential pressure, so it may be excluded. In other words, the first threshold may be set without adding ΔP3.

[0059] The second threshold setting unit 53 sets the second threshold with a margin based on past performance data when abnormalities occurred in the mill 10, for a graph (hereinafter referred to as an "air volume curve") that sets the primary air flow rate relative to the amount of coal fed. Specifically, as shown by the dashed-dotted line in Fig. 4, for example, the second threshold setting unit 53 may set the second threshold by multiplying the primary air flow rate set by the air volume curve by a predetermined coefficient of 1 or less. The predetermined coefficient is set based on performance data. However, the second threshold value setting unit 53 sets the second threshold value so that it does not become equal to or lower than a predetermined flow rate lower limit. The predetermined flow rate lower limit is set, for example, so that it does not become equal to or lower than the sedimentation flow rate in the pulverized fuel supply passage 100b. In other words, the predetermined flow rate lower limit is set to a value that does not allow the pulverized fuel flowing through the pulverized fuel supply passage 100b to deposit in the pulverized fuel supply passage 100b.

[0060] According to this embodiment, the following advantageous effects are achieved. In this embodiment, the first threshold value is set based on the amount of coal supplied to the mill 10, the flow rate of primary air supplied to the mill 10, the temperature of the primary air discharged from the mill 10 (mill outlet temperature), the moisture content of the solid fuel supplied to the mill 10, and the fineness of the solid fuel discharged from the mill 10. The coal feed rate, primary air flow rate, mill outlet temperature, moisture content of the solid fuel, and fineness of the solid fuel are factors that affect the mill furnace differential pressure. Therefore, the first threshold value used to determine whether an abnormality has occurred in the mill 10 can be set taking into account the factors that affect the mill furnace differential pressure. Therefore, it is possible to more accurately determine whether an abnormality has occurred in the mill 10.

[0061] In particular, when solid fuels with different properties are supplied to the mill 10 individually (for example, when bituminous coal is supplied after subbituminous coal is supplied), the mill furnace differential pressure changes depending on the properties of the solid fuel. In this embodiment, the first threshold value is set taking into consideration factors that affect the mill furnace differential pressure, so even in such a case, it is possible to more accurately determine whether an abnormality has occurred in the mill 10.

[0062] In this embodiment, the first threshold value is set based on multiple factors. This allows the first threshold value to be set more appropriately than when the first threshold value is set based on a single factor. For example, the first threshold value may be set based on at least one of the coal feed rate and / or primary air flow rate, which have a large effect on the mill furnace differential pressure and indicate the operating status of the mill 10, and the mill outlet temperature, the moisture content of the solid fuel, and the fineness of the solid fuel, in order to perform more reliable monitoring and judgment.

[0063] In this embodiment, whether or not an abnormality has occurred in the mill 10 is determined based on both the first threshold value based on the differential pressure and the second threshold value based on the primary air flow rate. This allows for a more accurate determination of whether or not an abnormality has occurred in the mill 10 compared to when the determination is based on a single parameter.

[0064] [Second embodiment] A second embodiment of the solid fuel pulverizer 100, the power plant, and the method for operating the solid fuel pulverizer 100 according to the present disclosure will be described with reference to the drawings. In this embodiment, the processing performed by the first threshold setting unit 52 of the control unit 50 is different from that in the first embodiment. Since the other points are the same as in the first embodiment, the same components as in the first embodiment are denoted by the same reference numerals and detailed description thereof will be omitted.

[0065] Even when coals with different properties are pulverized in the mill 10, if the coals satisfy a relationship that satisfies a predetermined condition, by monitoring the mill furnace differential pressure with the vertical axis representing the mill furnace differential pressure and the horizontal axis representing the primary air flow rate, as shown by the dashed dotted line in Figure 5, it is possible to set the first threshold value based solely on the effect of the primary air flow rate on pressure loss, without changing the monitoring settings depending on the operating status of the mill 10 (the type of coal supplied to the mill 10). The predetermined condition is when factors that affect the mill furnace differential pressure offset each other to cause an increase or decrease in the mill furnace differential pressure.

[0066] In this embodiment, as an example, a case will be described in which subbituminous coal (first solid fuel) and bituminous coal (second solid fuel) are pulverized separately using the same mill 10. As shown in FIG. 6, subbituminous coal has a higher moisture content and a lower fuel ratio than bituminous coal. On the other hand, bituminous coal has a lower moisture content and a higher fuel ratio than subbituminous coal. In other words, subbituminous coal and bituminous coal have different properties. The fuel ratio refers to fixed carbon / volatile matter. Coal with a lower fuel ratio contains more volatile matter and therefore tends to be easier to combust. Furthermore, the properties of coal include, for example, calorific value, moisture content, and pulverizability (ease of pulverization).

[0067] 7, in the solid fuel pulverizer 100 according to this embodiment, when the fuel ratio is lower than a predetermined value (F in FIG. 7), the mill outlet temperature is controlled to be a relatively low temperature T1. When the fuel ratio is higher than a predetermined value (F in FIG. 7), the mill outlet temperature is controlled to be a temperature T2 higher than T1.

[0068] As described above, subbituminous coal has a higher moisture content and a lower fuel ratio (i.e., it is easier to combust) than bituminous coal. Therefore, when grinding subbituminous coal, the primary air flow rate in the mill 10 is set higher than when grinding bituminous coal in order to dry the subbituminous coal, which has a higher moisture content. Therefore, as shown in FIG. 3(b), when grinding subbituminous coal, the pressure drop contribution ΔP2a due to the moisture content is larger than the pressure drop contribution ΔP2b when grinding bituminous coal (ΔP2a > ΔP2b). Furthermore, to suppress ignition of subbituminous coal, which has a low fuel ratio, the mill outlet temperature is set lower than when grinding bituminous coal. As a result, as shown in Figure 3(d), when grinding subbituminous coal, the contribution of the mill outlet temperature to pressure loss, ΔP4a, is smaller than the contribution of the mill outlet temperature to pressure loss, ΔP4b, when grinding bituminous coal (ΔP4a<ΔP4b).

[0069] In this way, the contributions to pressure drop due to the moisture content and mill outlet temperature of subbituminous coal and bituminous coal are in a relationship where they offset increases and decreases in the mill furnace differential pressure. In other words, the sum of the contributions to pressure drop due to the moisture content and mill outlet temperature of subbituminous coal (ΔP2a + ΔP4a) and the sum of the contributions to pressure drop due to the moisture content and mill outlet temperature of bituminous coal (ΔP2b + ΔP4b) are relatively close values. Furthermore, as mentioned above, the contribution of fineness to pressure drop is almost the same for bituminous coal and sub-bituminous coal (see Figure 3(c)). In other words, P3a ≒ P4a. Considering the above points, the factor that affects the difference between the values ​​of Pa and Pb in the above formulas (2) and (3) is the difference between ΔP1a and ΔP1b, which is the pressure loss contribution due to the primary air flow rate.

[0070] In this way, the factors affecting the mill furnace differential pressure (pressure loss in the pulverized fuel supply passage 100b) other than the influence of pressure loss due to the primary air flow rate offset each other between subbituminous coal and bituminous coal. Therefore, when pulverizing subbituminous coal and when pulverizing bituminous coal, the first threshold can be set based only on the influence of pressure loss due to the primary air flow rate.

[0071] Figure 8 is a graph showing the mill furnace differential pressure and primary air flow rate versus the coal feed rate when crushing subbituminous coal and when crushing bituminous coal. Figure 8(a) shows the relationship between the coal feed rate and the mill furnace differential pressure, and Figure 8(b) shows the relationship between the coal feed rate and the primary air flow rate (air flow curve). In Figure 8, the primary air flow rate of sub-bituminous coal at coal feed rate C1 is A1, and the mill furnace differential pressure is P1. Similarly, the primary air flow rate of bituminous coal at coal feed rate C2 is also A1, and the mill furnace differential pressure is P1. Similarly, the primary air flow rate of sub-bituminous coal at coal feed rate C3 is A2, and the mill furnace differential pressure is P2. Similarly, the primary air flow rate of bituminous coal at coal feed rate C4 is also A2, and the mill furnace differential pressure is P2. In other words, the slope of the line showing the relationship between coal feed rate and mill furnace differential pressure and the slope of the line showing the relationship between coal feed rate and primary air flow rate are the same for both sub-bituminous coal and bituminous coal. When the graphs of Figures 8(a) and 8(b) are summarized in terms of the relationship between the primary air flow rate and the mill furnace differential pressure, as shown in Figure 9, the straight lines showing the relationship between the primary air flow rate and the mill furnace differential pressure coincide for both sub-bituminous coal and bituminous coal (solid lines in Figure 9). That is, for both sub-bituminous coal and bituminous coal, when the primary air flow rate is A1, the mill furnace differential pressure is P1. Also, when the primary air flow rate is A2, the mill furnace differential pressure is P2.

[0072] Therefore, when setting the first threshold based solely on the effect of the primary air flow rate on pressure loss, if subbituminous coal and bituminous coal have a relationship in which the lines showing the relationship between the primary air flow rate and the mill furnace differential pressure coincide as shown in Figure 9, then whether subbituminous coal or bituminous coal is being crushed, by setting and monitoring the first threshold with the primary air flow rate on the horizontal axis, it is possible to set a common first threshold as shown by the dashed dotted line in Figure 5 when monitoring the mill furnace differential pressure. In other words, there is no need to set separate first thresholds for crushing subbituminous coal and crushing bituminous coal. This simplifies the control performed by the determination unit 51.

[0073] In the present embodiment, an example has been described in which the same first threshold value is set for crushing subbituminous coal and crushing bituminous coal when the line showing the relationship between the primary air flow rate and the mill furnace pressure difference coincides for both subbituminous coal and bituminous coal (solid line in FIG. 9 ). However, the present disclosure is not limited to this. For example, even if the line showing the relationship between the primary air flow rate and the mill furnace pressure difference deviates between subbituminous coal and bituminous coal, the same first threshold value may be set for crushing subbituminous coal and crushing bituminous coal as long as the deviation is within a predetermined range. The predetermined range may be, for example, a range of 30% above and below. That is, for example, if the first threshold value for subbituminous coal is 100%, the deviation is determined to be within the predetermined range if the first threshold value for bituminous coal is between 70% and 130%. If the difference is within a predetermined range, the smaller first threshold value is adopted, and the first threshold values ​​adopted when crushing subbituminous coal and when crushing bituminous coal are set.

[0074] According to this embodiment, the following advantageous effects are achieved. In this embodiment, when sub-bituminous coal and bituminous coal are pulverized by the mill 10, the first threshold value is set based only on the effect on pressure loss due to the primary air flow rate. This allows the first threshold value to be set based on a single parameter (the flow rate of the carrier gas) even when pulverizing solid fuels with different properties, making it easy to set the first threshold value.

[0075] In this embodiment, the same first threshold value can be used when crushing subbituminous coal and when crushing bituminous coal. Since there is no need to switch the threshold value to be monitored when crushing subbituminous coal and when crushing bituminous coal, the control performed by the determination unit 51 can be simplified and appropriate monitoring can be performed according to the operating status of the mill 10 (the type of coal being supplied).

[0076] The present disclosure is not limited to the above-described embodiments, and various modifications can be made without departing from the spirit of the present disclosure. For example, in the above embodiment, an example has been described in which it is determined that an abnormality has occurred in the mill 10 when the differential pressure detected by the differential pressure detection unit exceeds the first threshold value and the primary air flow rate detected by the flow rate detection unit 101 becomes lower than the second threshold value, but the present disclosure is not limited to this. For example, it may be determined that an abnormality has occurred in the mill 10 when the differential pressure detected by the differential pressure detection unit exceeds the first threshold value without using the second threshold value.

[0077] Furthermore, a modified example of the above embodiment will be described. Note that the modified example includes almost the same components as those in the above embodiment, and the same reference numerals will be used to describe components with the same configuration or performing the same processing, and different reference numerals will be used to describe only different components.

[0078] The information processing device 300 shown in FIG. 10 as a device that executes each process in the control unit 50 of the above-described embodiment can be connected to the control unit 50 in a cloud environment or via a VPN (Virtual Private Network) so as to be able to communicate with the control unit 50.

[0079] In this case, as shown in FIG. 11, the control unit 50 can be configured to include a data relay unit 304, and the information processing device 300 can be configured to include a data transmission / reception unit 306, a judgment unit 51, a first threshold setting unit 52, a second threshold setting unit 53, and a memory unit 54.

[0080] The data relay unit 304 relays information regarding the mill furnace differential pressure detected by the pressure detection unit 102, the primary air flow rate detected by the flow rate detection unit 101, the two-phase flow temperature detected by the temperature detection unit 103, the coal feed amount detected by the coal feed amount detection unit (coal feeder) 20, the moisture content of the solid fuel detected by a sensor not shown, and the fineness of the solid fuel, and transmits it to the data transmission / reception unit 306 of the information processing device 300.

[0081] Then, using the information received by the data transmission / reception unit 306, each unit of the information processing device 300 described above executes each process.

[0082] Furthermore, if the judgment unit 51 determines that an abnormality has occurred in the mill 10 using the method described above, it transmits information suggesting that various devices be controlled so that the solid fuel pulverizing device 100 is stopped to the data relay unit 304 via the data transmission / reception unit 306.

[0083] Then, the control unit 50 controls the various devices so that the solid fuel pulverizer 100 is stopped, based on the information suggesting that the various devices be controlled.

[0084] Furthermore, with regard to the information regarding the amount of coal fed, the moisture content of the solid fuel, and the fineness of the solid fuel, instead of information received by the information processing device 300 via the control unit 50, information manually input by an operator via the terminal 302 may be used, or information automatically read from a storage medium, etc. may be used.

[0085] In addition, if the judgment unit 51 determines that an abnormality has occurred in the mill 10, information indicating the abnormality can be displayed on the terminal 302, and the operator can refer to the displayed content and decide whether or not to issue an instruction to stop the solid fuel pulverizing device 100.

[0086] If the operator decides to give instructions, when the operator gives an operating instruction, the terminal 302 sends information to the control unit 50 via the data transmission / reception unit 306, suggesting that various devices be controlled so that the solid fuel pulverization device 100 is stopped, to the data relay unit 304 via the data transmission / reception unit 306, thereby requesting that various devices be controlled so that the solid fuel pulverization device 100 is stopped.

[0087] Alternatively, the operator may request control of various devices so that the solid fuel pulverizer 100 is stopped from another device equipped with an application that can give direct instructions to the control unit 50, rather than directly issuing operating instructions from the terminal 302.

[0088] Furthermore, the information processing device 300 may be configured to execute each process in the information processing device 300 in response to a request from the terminal 302.

[0089] The present invention can be embodied as a control method and a program with respect to the control procedures and processes in the above-described embodiments.

[0090] The devices (solid fuel pulverization device and information processing device), power generation plant, device control method, program, power generation plant system, and power generation plant system control method described in the above-described embodiments can be understood, for example, as follows.

[0091] The device (solid fuel pulverizer (100) and information processing device (300)) according to one aspect of the present disclosure includes a determination unit (51) that determines that an abnormality has occurred in the pulverizer (10) when a differential pressure between the pulverizer (10) that pulverizes the supplied solid fuel and a furnace (210) of a boiler (200) that burns the pulverized solid fuel detected by a differential pressure detection unit (102) exceeds a first threshold value, and a first threshold value setting unit (52) that sets the first threshold value used by the determination unit (51) for determination. The first threshold value setting unit (52) sets the first threshold value based on at least one of the amount of the solid fuel supplied to the pulverizer (10) and / or the flow rate of a carrier gas supplied to the pulverizer (10) for transporting the pulverized solid fuel to the furnace, the temperature of the carrier gas discharged from the pulverizer (10), the moisture content of the solid fuel supplied to the pulverizer (10), and the fineness of the solid fuel discharged from the pulverizer (10).

[0092] In the above configuration, the first threshold value is set based on the amount of solid fuel supplied to the pulverizer and / or the flow rate of the conveying gas supplied to the pulverizer, and at least one of the temperature of the conveying gas discharged from the pulverizer, the moisture content of the solid fuel supplied to the pulverizer, and the fineness of the solid fuel discharged from the pulverizer. The amount of solid fuel, the flow rate of the carrier gas, the temperature of the discharged carrier gas, the moisture content of the solid fuel, and the fineness of the solid fuel are factors that affect the differential pressure between the pulverizer and the furnace (hereinafter simply referred to as "differential pressure"). Therefore, the first threshold used to determine whether an abnormality has occurred in the pulverizer can be set taking into account the factors that affect the differential pressure in the mill furnace. Therefore, it is possible to more accurately determine whether an abnormality has occurred in the pulverizer. In particular, when solid fuel with different properties is supplied to the pulverizer, the mill furnace differential pressure also changes depending on the properties of the solid fuel. In the above configuration, factors that affect the mill furnace differential pressure are taken into consideration, so even in such cases, it is possible to more accurately determine whether an abnormality has occurred in the pulverizer. An abnormality in the pulverizer is, for example, rapid combustion occurring inside the pulverizer.

[0093] In addition, in the device (solid fuel pulverization device (100) and information processing device (300)) according to one embodiment of the present disclosure, the first threshold value setting unit (52) sets the first threshold value based on the amount of the solid fuel supplied to the pulverizer (10), the flow rate of the carrier gas supplied to the pulverizer (10), the temperature of the carrier gas discharged from the pulverizer (10), the moisture content of the solid fuel supplied to the pulverizer (10), and the fineness of the solid fuel discharged from the pulverizer (10).

[0094] In the above configuration, the first threshold is set based on the amount of solid fuel supplied to the pulverizer, the flow rate of the carrier gas supplied to the pulverizer, the temperature of the carrier gas discharged from the pulverizer, the moisture content of the solid fuel supplied to the pulverizer, and the pulverization degree of the solid fuel discharged from the pulverizer, thereby making it possible to set the first threshold more appropriately compared to when the first threshold is set based on a single factor.

[0095] In addition, in the device (solid fuel pulverization device (100) and information processing device (300)) according to one embodiment of the present disclosure, the first threshold value setting unit (52) sets the first threshold value based only on the flow rate of the carrier gas when the pulverizer (10) pulverizes a first solid fuel and a second solid fuel having properties different from those of the first solid fuel.

[0096] In the above configuration, when the pulverizer pulverizes the first solid fuel and the second solid fuel having properties different from those of the first solid fuel, the first threshold value is set based only on the flow rate of the carrier gas. This allows the first threshold value to be set based on one parameter (the flow rate of the carrier gas) even when pulverizing solid fuels having different properties, making it easy to set the first threshold value. Furthermore, if the same first threshold value can be used when pulverizing the first solid fuel and when pulverizing the second solid fuel, there is no need to switch the threshold value monitored when pulverizing the first solid fuel and when pulverizing the second solid fuel, thereby simplifying the control performed by the judgment unit.

[0097] In addition, in an apparatus (solid fuel pulverization apparatus (100) and information processing apparatus (300)) according to one embodiment of the present disclosure, the first threshold value setting unit (52) sets the first threshold value based only on the flow rate of the carrier gas when the moisture content of the first solid fuel is greater than that of the second solid fuel and the fuel ratio of the first solid fuel is smaller than that of the second solid fuel.

[0098] In the above configuration, the moisture content of the first solid fuel is greater than that of the second solid fuel, and the fuel ratio of the first solid fuel is smaller than that of the second solid fuel. When pulverizing the first solid fuel, the primary air flow rate in the mill may be set higher than when pulverizing the second solid fuel in order to dry the first solid fuel, which has a high moisture content. In this case, when pulverizing the first solid fuel, the pressure loss based on the moisture content is larger than the pressure loss when pulverizing the second solid fuel. Also, in order to suppress ignition of the first solid fuel, which has a low fuel ratio, the mill outlet temperature may be set lower than when pulverizing the second solid fuel. In this case, when pulverizing the first solid fuel, the pressure loss based on the mill outlet temperature is smaller than the pressure loss when pulverizing the second solid fuel. In this way, the first solid fuel and the second solid fuel have a relationship in which the pressure losses due to the moisture content and the mill outlet temperature cancel each other out. Therefore, the first threshold value can be preferably set based on the flow rate of the carrier gas. The fuel ratio means fixed carbon / volatile matter. Coal with a lower fuel ratio tends to be easier to burn.

[0099] Furthermore, the device (solid fuel pulverization device (100) and information processing device (300)) according to one embodiment of the present disclosure includes a flow rate detection unit (101) that detects the flow rate of the carrier gas introduced to the pulverizer (10), and a second threshold value setting unit (53) that sets a second threshold value used by the judgment unit (51) for judgment, and the judgment unit (51) judges that an abnormality has occurred in the pulverizer (10) when the differential pressure detected by the differential pressure detection unit (102) exceeds the first threshold value and when the flow rate of the carrier gas introduced to the pulverizer detected by the flow rate detection unit (101) becomes less than the second threshold value.

[0100] In the above configuration, whether or not an abnormality has occurred in the pulverizer is determined based on both the first threshold value based on the differential pressure and the second threshold value based on the carrier gas flow rate, which allows for a more accurate determination of whether or not an abnormality has occurred in the pulverizer compared to when the determination is based on a single parameter.

[0101] In addition, a power generation plant according to one embodiment of the present disclosure includes any of the above-described devices (solid fuel pulverizer (100)), the boiler (200) that generates steam by burning solid fuel pulverized by the device (solid fuel pulverizer (100)), and a power generation unit that generates electricity using the steam generated by the boiler (200).

[0102] In addition, in a control method for a device for pulverizing solid fuel (a solid fuel pulverizing device (100) and an information processing device (300)) according to an aspect of the present disclosure, the control device includes a determination step of determining that an abnormality has occurred in the pulverizer (10) when a differential pressure between the pulverizer (10) that pulverizes the supplied solid fuel and a furnace (210) of a boiler (200) that burns the pulverized solid fuel detected by a differential pressure detection unit (102) exceeds a threshold value; and a threshold setting step of setting the threshold value used in the determination step. and a threshold value setting step, in which the threshold value is set based on at least one of the amount of the solid fuel supplied to the pulverizer (10) and / or the flow rate of a carrier gas supplied to the pulverizer (10) for conveying the pulverized solid fuel to the furnace (210), the temperature of the carrier gas discharged from the pulverizer (10), the moisture content of the solid fuel supplied to the pulverizer (10), and the fineness of the solid fuel discharged from the pulverizer (10).

[0103] Furthermore, a program according to one embodiment of the present disclosure causes a computer to function as a determination means for determining that an abnormality has occurred in the pulverizer (10) when the differential pressure between the pulverizer (10) that pulverizes the supplied solid fuel and the furnace (210) of the boiler (200) that burns the pulverized solid fuel, detected by the differential pressure detection unit (102), exceeds a first threshold value, and as a first threshold value setting means for setting the first threshold value used by the determination means for making the determination, wherein the first threshold value setting means sets the first threshold value based on at least one of the amount of the solid fuel supplied to the pulverizer (10) and / or the flow rate of the carrier gas that is supplied to the pulverizer (10) and transports the pulverized solid fuel to the furnace (210), the temperature of the carrier gas discharged from the pulverizer (10), the moisture content of the solid fuel supplied to the pulverizer (10), and the fineness of the solid fuel discharged from the pulverizer (10).

[0104] A power plant system according to an aspect of the present disclosure is a power plant system in which a terminal (302) and an apparatus (information processing apparatus (300)) can communicate with each other, and the apparatus (302) includes a determination unit (51) that determines that an abnormality has occurred in the pulverizer (10) when a differential pressure between the pulverizer (10) that pulverizes supplied solid fuel and a furnace (210) of a boiler (200) that combusts the pulverized solid fuel detected by a differential pressure detection unit (102) exceeds a first threshold value, and a setting unit (51) that sets the first threshold value used by the determination unit (51) for determination. The first threshold setting unit (52) sets the first threshold based on at least one of the amount of the solid fuel supplied to the pulverizer (10) and / or the flow rate of a carrier gas supplied to the pulverizer (10) for carrying the pulverized solid fuel to the furnace (210), the temperature of the carrier gas discharged from the pulverizer (10), the moisture content of the solid fuel supplied to the pulverizer (10), and the fineness of the solid fuel discharged from the pulverizer (10).

[0105] A control method for a power plant system according to an aspect of the present disclosure is a control method for a power plant system in which a terminal (302) and an apparatus (information processing apparatus (300)) can communicate with each other, the apparatus (300) including a determination step of determining that an abnormality has occurred in the pulverizer (10) when a differential pressure between the pulverizer (10) that pulverizes a supplied solid fuel and a furnace (210) of a boiler (200) that combusts the pulverized solid fuel detected by a differential pressure detection unit (102) exceeds a first threshold value; and a first threshold setting step of setting a first threshold value, wherein the first threshold value setting step sets the first threshold value based on at least one of the amount of the solid fuel supplied to the pulverizer (10) and / or the flow rate of the carrier gas supplied to the pulverizer (10) for transporting the pulverized solid fuel to the furnace (210), the temperature of the carrier gas discharged from the pulverizer (10), the moisture content of the solid fuel supplied to the pulverizer (10), and the fineness of the solid fuel discharged from the pulverizer (10). [Explanation of symbols]

[0106] 1: Power plant 10: Mill (crusher) 11: Housing 12: Grinding table 13: Crushing roller 14: Drive unit 15: Mill motor 16: Rotary classifier 16a: Blade 17:Fuel supply section 18: Classifier motor 19: Exit port 20: Coal feeder (coal feed amount detector) 21: Banka 22: Transport unit 23: Coal feeder motor 24: Downspout 30: Blower (carrier gas supply unit) 30a: Hot gas flow path 30b: Cold gas flow path 30c: Thermal gas damper 30d: Cold gas damper 31: Primary air ventilator 32: Forced ventilation fan 34:Heat exchanger 40: Status detection unit 41: Bottom part 42: Ceiling 45: Journal head 47: Support arm 48: Support shaft 49: Pressing device 50: Control unit 51: Judgment Department 52: First threshold setting unit 53: Second threshold setting unit 54: Storage section 100: Solid fuel crusher 100a: Primary air flow path 100b: Pulverized fuel supply passage (pulverized fuel pipe) 101: Flow rate detection unit 102: Pressure detection unit (differential pressure detection unit) 103: Temperature detection unit 200: Boiler 210: Furnace 220: Burner 300: Information processing device 302: Terminal 304: Data relay unit 306: Data transmission and reception unit

Claims

1. a determination unit that determines that an abnormality has occurred in the pulverizer when a differential pressure between the pulverizer that pulverizes the supplied solid fuel and a furnace of a boiler that combusts the pulverized solid fuel, detected by the differential pressure detection unit, exceeds a first threshold value; a first threshold setting unit that sets the first threshold used by the determination unit for determination, the first threshold value setting unit sets the first threshold value based on at least one of the amount of the solid fuel supplied to the pulverizer and / or the flow rate of a carrier gas supplied to the pulverizer for transporting the pulverized solid fuel to the furnace, the temperature of the carrier gas discharged from the pulverizer, the moisture content of the solid fuel supplied to the pulverizer, and the pulverization degree of the solid fuel discharged from the pulverizer; The first threshold setting unit is a device that sets the first threshold based only on the flow rate of the carrier gas when the pulverizer pulverizes a first solid fuel and a second solid fuel having properties different from those of the first solid fuel.

2. The first threshold setting unit sets a value based on the amount of the solid fuel supplied to the pulverizer, the flow rate of the carrier gas supplied to the pulverizer, and the temperature of the carrier gas discharged from the pulverizer. The device according to claim 1 , wherein the first threshold value is set based on the moisture content of the solid fuel supplied to the pulverizer and the fineness of the solid fuel discharged from the pulverizer.

3. The device described in claim 1 or claim 2, wherein the first threshold setting unit sets the first threshold based only on the flow rate of the carrier gas when the moisture content of the first solid fuel is greater than that of the second solid fuel and the fuel ratio of the first solid fuel is smaller than that of the second solid fuel.

4. A judgment unit that judges that an abnormality has occurred in the pulverizer when the differential pressure between the pulverizer that pulverizes the supplied solid fuel and the furnace of the boiler that burns the pulverized solid fuel detected by the differential pressure detection unit exceeds a first threshold value; a first threshold setting unit that sets the first threshold used by the determination unit for determination, the first threshold value setting unit sets the first threshold value based on at least one of the amount of the solid fuel supplied to the pulverizer and / or the flow rate of a carrier gas supplied to the pulverizer for transporting the pulverized solid fuel to the furnace, the temperature of the carrier gas discharged from the pulverizer, the moisture content of the solid fuel supplied to the pulverizer, and the pulverization degree of the solid fuel discharged from the pulverizer; a flow rate detection unit that detects the flow rate of the carrier gas introduced to the crusher; a second threshold setting unit that sets a second threshold used by the determination unit for determination, The judgment unit is a device that judges that an abnormality has occurred in the pulverizer when the differential pressure detected by the differential pressure detection unit exceeds the first threshold value and the flow rate of the carrier gas guided to the pulverizer detected by the flow rate detection unit becomes less than the second threshold value.

5. An apparatus according to any one of claims 1 to 4; the boiler that burns the solid fuel pulverized by the device to generate steam; a power generation unit that generates electricity using the steam generated by the boiler.

6. 1. A method of controlling an apparatus for pulverizing solid fuel, comprising: The device comprises: a determining step of determining that an abnormality has occurred in the pulverizer when a differential pressure between the pulverizer that pulverizes the supplied solid fuel and a furnace of a boiler that combusts the pulverized solid fuel, detected by a differential pressure detecting unit, exceeds a threshold value; a threshold value setting step of setting the threshold value used in the determination step; the threshold value setting step sets the threshold value based on at least one of the amount of the solid fuel supplied to the pulverizer and / or the flow rate of a carrier gas supplied to the pulverizer for transporting the pulverized solid fuel to the furnace, the temperature of the carrier gas discharged from the pulverizer, the moisture content of the solid fuel supplied to the pulverizer, and the fineness of the solid fuel discharged from the pulverizer; The threshold setting process is a control method for an apparatus in which the threshold is set based only on the flow rate of the carrier gas when the pulverizer pulverizes a first solid fuel and a second solid fuel having properties different from those of the first solid fuel.

7. A method for controlling an apparatus for pulverizing solid fuel, comprising: The device comprises: a determining step of determining that an abnormality has occurred in the pulverizer when a differential pressure between the pulverizer that pulverizes the supplied solid fuel and a furnace of a boiler that combusts the pulverized solid fuel, detected by a differential pressure detecting unit, exceeds a first threshold value; a first threshold value setting step of setting the first threshold value used in the determination step; the first threshold value setting step sets the first threshold value based on at least one of the amount of the solid fuel supplied to the pulverizer and / or the flow rate of a carrier gas supplied to the pulverizer for carrying the pulverized solid fuel to the furnace, the temperature of the carrier gas discharged from the pulverizer, the moisture content of the solid fuel supplied to the pulverizer, and the pulverization degree of the solid fuel discharged from the pulverizer; a flow rate detecting step of detecting a flow rate of the carrier gas introduced to the crusher; a second threshold value setting step of setting a second threshold value used in the determining step; The judgment process is a control method for an apparatus in which, when the differential pressure detected by the differential pressure detection unit exceeds the first threshold value and the flow rate of the conveying gas guided to the crusher detected by the flow rate detection process becomes less than the second threshold value, it is determined that an abnormality has occurred in the crusher.

8. Computer, a determination means for determining that an abnormality has occurred in the pulverizer when a differential pressure between the pulverizer that pulverizes the supplied solid fuel and a furnace of a boiler that combusts the pulverized solid fuel, detected by a differential pressure detection unit, exceeds a first threshold value; the determining means functions as a first threshold setting means for setting the first threshold used for determination, the first threshold value setting means functions to set the first threshold value based on at least one of the amount of the solid fuel supplied to the pulverizer and / or the flow rate of a carrier gas supplied to the pulverizer for carrying the pulverized solid fuel to the furnace, the temperature of the carrier gas discharged from the pulverizer, the moisture content of the solid fuel supplied to the pulverizer, and the fineness of the solid fuel discharged from the pulverizer; The first threshold setting means is a program for causing the pulverizer to function to set the first threshold based only on the flow rate of the carrier gas when the pulverizer pulverizes a first solid fuel and a second solid fuel having properties different from those of the first solid fuel.

9. A computer, a determination means for determining that an abnormality has occurred in the pulverizer when a differential pressure between the pulverizer that pulverizes the supplied solid fuel and a furnace of a boiler that combusts the pulverized solid fuel, detected by a differential pressure detection unit, exceeds a first threshold value; the determining means functions as a first threshold setting means for setting the first threshold used for determination, the first threshold value setting means functions to set the first threshold value based on at least one of the amount of the solid fuel supplied to the pulverizer and / or the flow rate of a carrier gas supplied to the pulverizer for carrying the pulverized solid fuel to the furnace, the temperature of the carrier gas discharged from the pulverizer, the moisture content of the solid fuel supplied to the pulverizer, and the fineness of the solid fuel discharged from the pulverizer; The computer a flow rate detecting means for detecting the flow rate of the carrier gas introduced into the crusher; a second threshold value setting means for setting a second threshold value used in the determination means; The judgment means is a program for causing the means to function to determine that an abnormality has occurred in the pulverizer when the differential pressure detected by the differential pressure detection unit exceeds the first threshold value and when the flow rate of the conveying gas guided to the pulverizer detected by the flow rate detection means becomes less than the second threshold value.

10. A power plant system in which a terminal and a device can communicate with each other, The device comprises: a determination unit that determines that an abnormality has occurred in the pulverizer when a differential pressure between the pulverizer that pulverizes the supplied solid fuel and a furnace of a boiler that combusts the pulverized solid fuel, detected by the differential pressure detection unit, exceeds a first threshold value; a first threshold setting unit that sets the first threshold used by the determination unit for determination, the first threshold value setting unit sets the first threshold value based on at least one of the amount of the solid fuel supplied to the pulverizer and / or the flow rate of a carrier gas supplied to the pulverizer for transporting the pulverized solid fuel to the furnace, the temperature of the carrier gas discharged from the pulverizer, the moisture content of the solid fuel supplied to the pulverizer, and the pulverization degree of the solid fuel discharged from the pulverizer; A power plant system in which the first threshold setting unit sets the first threshold based only on the flow rate of the carrier gas when the pulverizer pulverizes a first solid fuel and a second solid fuel having properties different from those of the first solid fuel.

11. A power plant system in which a terminal and a device can communicate, The device comprises: a determination unit that determines that an abnormality has occurred in the pulverizer when a differential pressure between the pulverizer that pulverizes the supplied solid fuel and a furnace of a boiler that combusts the pulverized solid fuel, detected by the differential pressure detection unit, exceeds a first threshold value; a first threshold setting unit that sets the first threshold used by the determination unit for determination, the first threshold value setting unit sets the first threshold value based on at least one of the amount of the solid fuel supplied to the pulverizer and / or the flow rate of a carrier gas supplied to the pulverizer for transporting the pulverized solid fuel to the furnace, the temperature of the carrier gas discharged from the pulverizer, the moisture content of the solid fuel supplied to the pulverizer, and the pulverization degree of the solid fuel discharged from the pulverizer; a flow rate detection unit that detects the flow rate of the carrier gas introduced to the crusher; a second threshold setting unit that sets a second threshold used by the determination unit for determination, The judgment unit determines that an abnormality has occurred in the pulverizer when the differential pressure detected by the differential pressure detection unit exceeds the first threshold value and the flow rate of the carrier gas guided to the pulverizer detected by the flow rate detection unit becomes less than the second threshold value.

12. A control method for a power plant system in which a terminal and a device can communicate, comprising: The device comprises: a determining step of determining that an abnormality has occurred in the pulverizer when a differential pressure between the pulverizer that pulverizes the supplied solid fuel and a furnace of a boiler that combusts the pulverized solid fuel, detected by a differential pressure detecting unit, exceeds a first threshold value; a first threshold value setting step of setting the first threshold value used in the determination step; the first threshold value setting step sets the first threshold value based on at least one of the amount of the solid fuel supplied to the pulverizer and / or the flow rate of a carrier gas supplied to the pulverizer for carrying the pulverized solid fuel to the furnace, the temperature of the carrier gas discharged from the pulverizer, the moisture content of the solid fuel supplied to the pulverizer, and the pulverization degree of the solid fuel discharged from the pulverizer; A control method for a power plant system, in which the first threshold setting process sets the first threshold based only on the flow rate of the carrier gas when the pulverizer pulverizes a first solid fuel and a second solid fuel having properties different from those of the first solid fuel.

13. A control method for a power plant system in which a terminal and a device can communicate, comprising: The device comprises: a determining step of determining that an abnormality has occurred in the pulverizer when a differential pressure between the pulverizer that pulverizes the supplied solid fuel and a furnace of a boiler that combusts the pulverized solid fuel, detected by a differential pressure detecting unit, exceeds a first threshold value; a first threshold value setting step of setting the first threshold value used in the determination step; the first threshold value setting step sets the first threshold value based on at least one of the amount of the solid fuel supplied to the pulverizer and / or the flow rate of a carrier gas supplied to the pulverizer for carrying the pulverized solid fuel to the furnace, the temperature of the carrier gas discharged from the pulverizer, the moisture content of the solid fuel supplied to the pulverizer, and the pulverization degree of the solid fuel discharged from the pulverizer; a flow rate detecting step of detecting a flow rate of the carrier gas introduced to the crusher; a second threshold value setting step of setting a second threshold value used in the determining step; The determination process determines that an abnormality has occurred in the pulverizer when the differential pressure detected by the differential pressure detection unit exceeds the first threshold value and the flow rate of the carrier gas guided to the pulverizer detected by the flow rate detection process becomes less than the second threshold value.

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