Method for determining local temperature anomalies in a fluidized bed of a reactor, method for assessing the risk of bed sintering in a fluidized bed reactor, and reactor system

The method improves fluidized bed reactor control by using temperature sensors and a numerical model to detect anomalies and assess sintering risks, preventing shutdowns and reducing costs through real-time monitoring and adjustments.

JP7818073B2Active Publication Date: 2026-02-19SUMITOMO SHI FW ENERGIA OY
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Patent Information

Application Number
JP2024514430
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2021-09-09
Filing Date
2022-09-09
Publication Date
2026-02-19
Estimated Expiration
2042-09-09

AI Technical Summary

Technical Problem

Existing fluidized bed reactors face challenges in accurately controlling bed temperature and predicting the onset of sintering, leading to potential shutdowns and costly repairs.

Method used

A method using a grid of temperature sensors and a numerical bed temperature model to detect local temperature anomalies and assess the risk of sintering, allowing for automatic adjustments to prevent bed sintering through real-time monitoring and calibration.

Benefits of technology

Enhances bed control accuracy, prevents reactor shutdowns, and reduces operational costs by detecting temperature anomalies and sintering risks early, enabling proactive maintenance.

✦ Generated by Eureka AI based on patent content.

Smart Images

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Patent Text Reader

Abstract

to improve bed control in fluidized bed reactor systems. SOLUTION: A specific method for monitoring the condition of the fluidized bed is proposed to improve the control of a fluidized bed reactor system 10. In the method for controlling the fluidized bed reactor system 10, for example, local bed temperature anomalies and / or bed sintering indices are monitored, and upon detection of a local bed temperature anomaly and / or bed sintering index exceeding a predefined standard, the operation of the reactor system 10 is automatically adjusted and / or an operator is informed that a local bed temperature anomaly and / or bed sintering condition has been detected.
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Description

[Technical Field]

[0001] The present invention relates to the control of a fluidized bed reactor, such as a circulating fluidized bed (CFB) boiler, a bubbling fluidized bed (BFB) boiler, a gasifier, or a reactor configured to carry out a process in a fluidized bed. [Background technology]

[0002] Reactors such as grate boilers and fluidized bed boilers are typically utilized to generate steam that can be used for a variety of purposes, such as power generation and heating.

[0003] It is also known to use fluidized bed reactors, such as gasifiers, to convert solid materials into gaseous products.

[0004] In a fluidized bed boiler, fuel and solid particulate bed material are introduced into a furnace, and fluidizing gas is introduced from the bottom of the furnace to fluidize the bed material and fuel. Combustion of the fuel occurs within the furnace. In BFB combustion, the fluidizing gas passes through the bed so that it forms bubbles in the bed. In a BFB, the fluidized bed can be controlled rather conveniently by controlling the fluidizing gas supply and the fuel supply.

[0005] In CFB combustion, the fluidizing gas is passed through the bed material. Most of the bed particles are entrained in the fluidizing gas and carried along with it. The particles are separated from the fluidizing gas and recycled back into the furnace.

[0006] Control of the fluidized bed is of paramount importance for the process in the fluidized bed to occur as desired. Summary of the Invention [Problem to be solved by the invention]

[0007] It is a first object of the present invention to improve bed control in a fluidized bed reactor system. This object can be achieved by the method according to independent claim 1.

[0008] It is a second object of the present invention to improve the accuracy of bed control in a fluidized bed reactor system. This object can be achieved by a method according to the parallel independent claim 6.

[0009] It is a third object of the present invention to improve bed control in a fluidized bed reactor system. This object can be achieved by a method according to the parallel independent claim 9.

[0010] It is a fourth object of the present invention to improve bed control in a fluidized bed reactor system. This object can be achieved by a method according to the parallel independent claim 12.

[0011] The dependent claims describe advantageous embodiments of the method. [Means for solving the problem]

[0012] With respect to the first object of the present invention, a method for determining local temperature anomalies in a fluidized bed reactor system comprising a reaction chamber having a grid with at least three temperature sensors which together define a measurement grid, each representing a measurement point, comprises: - measuring the floor temperature at a measuring point; - calculating bed temperatures for the measurement points using at least one numerical bed temperature model to obtain calculated bed temperatures under normal operating conditions of the reactor system; - comparing the measured floor temperature to the calculated floor temperature for at least some of the measurement points and determining that a local temperature anomaly exists if the measured floor temperature exceeds an anomaly threshold; Includes:

[0013] In this method, the at least three temperature sensors used to monitor the bed temperature, together with the numerical bed temperature model, provide a high degree of accuracy in fluidized bed temperature measurements to the extent that localized bed temperature anomalies can be detected.

[0014] Without being bound by theory, it may be found that localized anomalies are related to the onset of sintering in a fluidized bed, especially when bed temperatures are measured at the grid level. The inventors have observed that localized temperature anomalies serve as a precursor to the onset of sintering in a fluidized bed. Therefore, by monitoring the measured bed temperature relative to the calculated bed temperature, the onset of sintering in a bed can be detected, and measures can be taken in advance to repair the bed, or at least to prevent sintering from worsening. This can help avoid shutdowns of the reactor system due to bed sintering and costly repairs. It is advantageous that bed temperature anomalies provide information about bed quality, preferably whether sintering is occurring in the bed. Or, in other words, it is possible to receive information about bed-related problems that could lead to shutdowns if corrective measures are not taken. Thus, reactor availability can be improved and / or operating costs can be reduced. The method is preferably performed automatically, either by a local control system or a remote, preferably process intelligence, system.

[0015] The calculated bed temperature for the measurement point can be obtained in the following way. - a numerical model is prepared and calibrated between reactor operating data, including predetermined process variables, and measured bed temperatures at each measurement point; - monitoring current operating data of the reactor, including measured bed temperatures and predetermined process variables at each measurement point; - for at least one measurement point, a numerical model is used to calculate a calculated temperature using current operating data and measured bed temperatures of at least two other measurement points; - Comparing the calculated temperature and the measured temperature against anomaly criteria, if the anomaly criteria are met, it is determined that a local temperature anomaly exists.

[0016] Calibration may be performed in a delayed manner, preferably using historical data from at least M days ago, where M is at least 3, preferably M is at least 7, and more preferably M is at least 14. In this way, there can be greater assurance that emerging bed quality problems will not adversely affect the calibration.

[0017] If the combustion process is carried out in a fluidized bed, the predetermined process variables include primary air flow rate, fuel moisture, main steam flow rate, flue gas oxygen, bed pressure, and measured bed temperature.

[0018] According to one embodiment of the present invention, the calculated bed temperature model is: y=b0+b1×x1+b2×x2+···+b N-1 ×x N-1 +b N ×x N can be obtained from where: b0···b N are the model coefficients obtained from the linear regression model x1~x N = Preselected process variables 1 to N

[0019] If the reactor is a fluidized bed gasifier, the process parameters are: x1 = total steam flow rate fed to the gasifier x2 = oxygen injection rate to gasifier x3 = preselected properties of the feedstock to be gasified (such as one or more of moisture, and / or alkali content, and / or halogen content) x4 = average floor temperature readings x5 = preselected properties (e.g., one or more of H2 and CO, H2O, CO2, O2 and N2) x5 = average bed pressure x6 = average recirculation gas flow rate, if applicable x7 = Average control ratio of steam inlet supply rate and oxygen inlet supply rate Contains one or more of:

[0020] If the reactor is a fluidized bed hydration reactor for hydrating alkali or alkaline earth oxides, the process parameters are: x1 = total steam flow rate x2 = a first preselected property of the alkali oxide to be hydrated (such as particle size distribution, porosity, and reactivity of the material in its raw form or in a treated variant (e.g., coating and treatment) intended to improve its performance). x3 = average floor temperature readings x4=Produced gas content / temperature x5 = average bed pressure x6 = average recirculation gas flow rate Contains one or more of:

[0021] If the reactor is a fluidized bed reactor for cleaning a flue gas or process gas stream to remove CO2 and / or other acid gases, the process parameters are: x1 = total flow rate of gas to be purified x2 = preselected properties of the gas to be purified x3 = average floor temperature readings x4 = flow rate of reactants such as CaO into the reactor x5 = flow rate of product material such as CaCO3 from reactor x5 = average bed pressure Contains one or more of:

[0022] For a fluidized bed boiler where the reactor is configured to burn a fuel material, the calculated bed temperature model is: y=b0+b1×x1+b2×x2+b3×x3+b4×x4+b5×x5+b6×x6 can be obtained from where: b0···b6 are the model coefficients obtained from the linear regression model, The process variables include: x1 = total air flow, primary air flow (x 1Prim ) and secondary air flow rate (x 1sec ) x2=fuel moisture x3 = Floor temperature measurement (x) adjacent to the output floor temperature measurement (y) 3a , x 3b ) average x4=flue gas oxygen content x5 = average bed pressure x6 = average recirculation gas flow rate

[0023] According to one embodiment, fuel moisture may be calculated or measured.

[0024] According to one embodiment of the present invention, the calculated bed temperature model is: y=b0+b1×x1+b2×x2+b3×x3+b4×x4+b5×x5+b6×x6 can be obtained from where: b0···b6 are the model coefficients obtained from the linear regression model. x1 = total air flow, primary air flow (x 1Prim ) and secondary air flow rate (x 1sec ) x2 = H2O content of flue gas x3 = Floor temperature measurement (x) adjacent to the output floor temperature measurement (y) 3a , x 3b ) average x4=flue gas oxygen content x5 = average bed pressure x6 = average recirculation gas flow rate

[0025] According to one embodiment of the present invention, the calculated bed temperature may be obtained using artificial intelligence tools. According to one embodiment of the present invention, the calculated bed temperature may be obtained using neural networks.

[0026] Upon detection of a local temperature anomaly, calibration is preferably not performed (i.e., calibration is skipped) for a predetermined time. In addition to or instead of a reactor shutdown situation, abnormal operation and / or abnormal bed conditions are preferably removed or omitted from the calibration data. This approach can help avoid bed quality issues that may adversely affect calibration. This approach can be fine-tuned so that upon detection of a local temperature anomaly that meets a given threshold, calibration is not performed for a predetermined time. In that case, only conditions severe enough to generate a sufficiently large anomaly signal can be selected to skip calibration for a predetermined time.

[0027] With regard to the second object of the present invention, there is provided a method for calibrating a numerical model of a fluidized bed of a reactor system comprising a reaction chamber having a grid comprising at least three temperature sensors which together define a measurement grid and each of which is representative of a measurement point, the reactor system being configured to generate a measured bed temperature at each of the measurement points.

[0028] It is preferably used in the context of the method for the first object of the present invention, - current operating data of the reactor, including measured bed temperatures at each measurement point and predetermined process variables, is monitored and collected to provide historical data; A numerical model between the reactor operating data including the predetermined process variables and the measured bed temperature at each measurement point is fitted using at least one numerical fitting method, preferably a numerical regression method, advantageously least squares fitting.

[0029] In this way, a calibrated numerical model can be generated that produces results of suitable accuracy under different operating conditions of the reactor system.

[0030] Calibration may be repeated at predetermined intervals, such as periodically, to help keep the calibration realistic, reflecting possible wear and tear on the reactor system as well as changes in process variables and environmental conditions (changes in temperature, ambient humidity, ambient pressure) that may lead to changing operating parameters over time.

[0031] If a local temperature anomaly is detected, the calibration can be aborted, thus providing greater assurance that an ongoing floor quality problem will not adversely affect the calibration.

[0032] Regarding the third object of the present invention, a method for assessing the risk of sintering of the bed of a fluidized bed reactor system comprising a reaction chamber having a grid comprising at least three temperature sensors, which together define a measurement grid and each of which is representative of a measurement point, comprises: - current operating data of the reactor, i.e., the bed temperature of the reactor bed, is measured at each measuring point; - Based on the current operating data of the reactor, i) the average of the measured bed temperatures is calculated; ii) the standard deviation of the measured bed temperatures is calculated; iii) the difference between the maximum measured bed temperature and the minimum measured bed temperature is calculated; iv) For the measured bed temperature, the spreading rate is calculated; - using the results of calculations i), ii), iii) and iv), a bed sintering index is prepared; Includes:

[0033] One possibility for a definition of the sintering index that is preferably used may be the following: i) the average of the measured bed temperatures is calculated; ii) the standard deviation of the measured bed temperatures is calculated; iii) the difference between the maximum measured bed temperature and the minimum measured bed temperature is calculated; iv) For the measured bed temperature, the spreading rate x spread,

[0034]

number

[0035] The method can be further developed as follows. v) Calculated bed temperature T for the same measurement point Ci , I=1,...,n is calculated, and the measured bed temperature T Mi , i=1,···,n and the calculated floor temperature are calculated. It is compared with a corresponding predetermined limit value to obtain an index of risk of sintering for the bed temperature residual.

[0036] The final risk index may then be, for example, the maximum of the above risk indices.

[0037] The inventors have thus observed that the resulting bed sintering index is indicative of fluidized bed conditions that could lead to reactor shutdown if not addressed early enough to take corrective action so that the need to shut down the reactor can be avoided, as will be discussed in more detail with reference to Figure 7.

[0038] Preferably, the method further comprises: vi) A calculated bed temperature for the same measurement point is calculated and the residual between the measured bed temperature and the calculated bed temperature is calculated, the result of step v) is also used in preparing a bed sintering index.

[0039] In this way, the accuracy of the prediction of the bed sintering index can be further improved.

[0040] In the method according to the third object of the invention, the calculated bed temperature can be obtained using the method according to the first object of the invention.

[0041] Regarding the fourth object of the present invention, there is provided a method for controlling a fluidized bed reactor system, comprising: Local bed temperature anomalies and / or bed sintering index are monitored; Upon detecting a local bed temperature anomaly and / or bed sintering index exceeding a predetermined standard, the operation of the combustion reactor system is automatically adjusted and / or an indication is provided to the operator that a local bed temperature anomaly and / or bed sintering condition has been detected.

[0042] In this way, the reactor system can be automatically controlled to prevent bed sintering, or alternatively, operators can be notified of local bed temperature anomalies and / or bed sintering conditions and take action to prevent bed sintering.

[0043] The automatic adjustment of reactor operation may include at least one of: a) increasing or decreasing reactant feed; b) increasing or decreasing the flow rate of the feedstock being processed; c) increasing or decreasing bed material feed and / or bed material removal; e) temporarily limiting reactor yield or power output.

[0044] According to an embodiment of the present invention, the automatic adjustment or so-called corrective action is - Changing the composition of the feedstock being processed, such as the fuel composition in combustion applications - Triggers an air pulse through the grating nozzle - Introducing feed additives that affect the sintering tendency of the bed material, or increasing the amount of such feed additives It includes at least one of the following:

[0045] The measured bed temperature may begin to drop during the early stages of sintering, and therefore, an abnormal bed condition may be determined during bed monitoring when it is determined that the bed temperature has dropped below the modeled bed temperature and exceeded the abnormal threshold.

[0046] Local bed temperature anomalies can be monitored using the method according to the first object of the present invention.

[0047] The bed sintering index can be monitored using a method according to the third object of the present invention.

[0048] In the method, local bed temperature anomalies and / or monitored sintering indices are preferably monitored using a numerical model. A delayed calibration of the numerical model can be used to reduce or avoid the influence of recent bed conditions on the calibration data.

[0049] Advantageously, the delay calibration is performed using a method according to the second object of the invention.

[0050] The reactor system is configured to carry out the method according to any one of the objects of the present invention.

[0051] The method and reactor will now be described in more detail with reference to exemplary embodiments shown in the accompanying drawings of Figures 1 to 8B. [Brief explanation of the drawings]

[0052] [Figure 1] FIG. 1 is a diagram of a CFB reactor system. [Figure 2] FIG. 1 is a diagram of a BFB reactor system. [Figure 3] FIG. 1 is a diagram of a grating and its measurement arrangement. [Figure 4] FIG. 1 is a diagram of a method for calculating the risk of sintering. [Figure 5] FIG. 10 is a diagram illustrating a method for calculating residuals. [Figure 6] FIG. 1 is a diagram of a method for delay calibration. [Figure 7] FIG. 10 shows the results obtained using the residual calculation method. [Figure 8A] FIG. 8 is a diagram of the results of the risk calculation method used on actual operating data of the reactor system for the situation in FIG. 7. [Figure 8B] FIG. 8 is a diagram of the results of the risk calculation method used on actual operating data of the reactor system for the situation in FIG. 7. DETAILED DESCRIPTION OF THE INVENTION

[0053] In all figures, the same reference numerals refer to the same technical features.

[0054] FIG. 1 illustrates a reactor system 10 that is a circulating fluidized bed (CFB) reactor. A particular application of such a CFB reactor can be a CFB boiler. The reactor system 10 includes a furnace 12, i.e., a reactor chamber having tube walls 13 (typically including a front wall 132, a rear wall 134, and side walls 131, 133, as shown in FIG. 3 ) connected to the water-steam circuit of the reactor system 10. Water is supplied from a water tank to an economizer, from the economizer via a steam drum to an evaporative heat transfer surface such as the tube walls 13, and then via the steam drum to a superheater and then to a turbine. The flue gas flow path can include an economizer and / or a superheater and / or a reheater.

[0055] The operation of a CFB is described below. Fluidizing gas (such as air, oxygen-containing gas, or in some practical applications, any mixture of steam, pure oxygen, regeneration gas from the reactor outlet, etc.) is typically supplied from fluidizing gas supply 153 below grate 250 via primary fluidizing gas supply inlet 151 so that the primary fluidizing gas enters the reaction chamber through the nozzles of grate 250 to fluidize the bed material. A secondary (or optionally, tertiary) gas supply 152 may be provided to supply gases for controlling the process within the reaction chamber. As a result, the bed material is fluidized. Components required for the reaction or process are also supplied into furnace 12 as needed. Furthermore, the feedstock to be processed is supplied into the reactor chamber via feedstock supply inlet 22.

[0056] The reaction can be regulated by controlling the feedstock supply 22 (e.g., by decreasing or increasing the feed flow rate) and the fluidization gas supply and / or its components (e.g., by decreasing or increasing the amount of oxygen or oxygen-containing gas fed into the reactor chamber 12). The feedstock can be supplied with additives appropriate to the process, particularly additives that function as alkaline sorbents in the combustion of fuel, such as CaCO and / or clay. Additionally or alternatively, NOx reduction agents, such as ammonium or urea, can be supplied into or above the combustion zone of the reactor 12.

[0057] A practical application of fuel combustion for steam production is described below. The fluidized medium introduced into the furnace may comprise sand, limestone, and / or clay, and in particular kaolin. One effect of the bed, and combustion in general, is that in the water-steam circuit, water and steam are heated at the tube walls 13, converting the water into steam.

[0058] The bottom ash falls to the bottom of the furnace 12 and can be removed by an ash chute (omitted from Figure 1 for clarity), but a portion of the ash, the so-called fly ash, is carried along with the flue gases.

[0059] Combustion products such as flue gases, unburned fuel, and fluidized media pass from the furnace 12 to a particle separator 14, which may include a vortex finder 103. The particle separator 14 separates the flue gases from the solids. Particularly in larger reactors 10, there may be two or more (two, three, ...) separators 14, preferably arranged in parallel with each other.

[0060] The solids separated by separator 14 pass through a loop seal 120, preferably located at the bottom of separator 14. The solids then pass to a fluidized bed heat exchanger (FBHE) 100, which also has a heat transfer surface (e.g., including, but not limited to, tubes and / or heat transfer panels), such that FBHE 100 collects heat from the solids to further heat the steam in the water-steam circuit.

[0061] The FBHE 100 may be fluidized, equipped with heat transfer tubes or other types of heat transfer surfaces, and arranged as a reheater or superheater. From the FBHE outlet 105, steam is sent to the high-pressure turbine (if the FBHE 100 is a superheater) or the intermediate-pressure turbine (if the FBHE 100 is a reheater). The FBHE inlet 104 preferably comes from an economizer (if the FBHE 100 is a superheater) or the high-pressure turbine (if the FBHE 100 is a reheater).

[0062] The solids can exit the FBHE 100 and enter the furnace 12 via the return flow path 102. In large reactors 10 in particular, there may be two or more (two, three, ...) loop seals 120 and FBHEs 100, and return flow paths 102, preferably arranged in parallel with one another, such that for each separator 14 there is a respective loop seal 120, FBHE 100, and return flow path 102. In practice, some of the FBHEs 100 are arranged as superheaters and some are arranged as reheaters.

[0063] The flue gases are passed from the separator 14 to a crossover duct 15 from which they are passed to a rear flue 16 (preferably a vertical flue) from which they are passed via a flue gas duct 18 to a chimney 19 .

[0064] The rear flue 16 is connected to several heat transfer surfaces 21 i (where i=1, 2, 3, . . . , k, where k is the number of heat transfer surfaces). In FIG. 1, of these heat transfer surfaces, heat transfer surfaces 211, 212, 213, 214, . . . , 215, 216, 217, 218, 219, 220, 2210, 2221, 2222, 223 k The heat transfer surface 21 kindicates an air preheater. Other heat transfer surfaces 211-21 k-1 may include an economizer, a superheater, and a reheater. The actual number of different heat transfer surfaces in each of these components may be selected differently for each reactor, depending, for example, on the actual needs. There may also be further components with heat transfer surfaces 21.

[0065] The reactor system 10 includes multiple sensors and a computer unit. In fact, one medium-sized (100-150 MWth) reactor system 10 may generate 100 million measurements per day, requiring 25 GB of storage space. Figures 1 and 2 show some of the sensors and computer unit. Examples of sensors include a temperature sensor measuring the output steam temperature at the outlet 105 of the FBHE 100, a pressure sensor measuring the pressure in the FBHE 100 chamber, a temperature sensor measuring the flue gas outlet temperature at the separator 14, a temperature sensor measuring the temperature in the loop seal 120, and a pressure sensor measuring the pressure in the loop seal.

[0066] Process data can be collected from the sensors by a distributed control system (DCS) 301. Data collection is most conveniently done via, for example, a fieldbus 378. The DCS 301 can have a display / monitor 302 for displaying operational status information to operators. An EDGE server 303 can process the measurement data obtained from the sensors, such as filtering and smoothing. There may also be local storage 304 for storing the data.

[0067] The DCS 301, display / monitor 302, EDGE server 303, and local storage 304 may be within a reactor network 370 (with local storage 304 preferably connected directly to the EDGE server 303). The reactor network 370 is preferably separate from a fieldbus 380 used to communicate measurements from sensors to the DCS 301 and / or EDGE server 303. There may be an open platform communication server between the DCS 301 and the EDGE server 303 to improve system interoperability.

[0068] The reactor network 370 may be connected to the Internet 300, preferably via a gateway 308. In this situation, measurement results may be transferred from the reactor network 370 to a cloud service, such as a process intelligence system 305 located in a computational cloud 306. The applicant currently operates a cloud service that runs the analytical platform. The cloud service may operate in a virtualized server environment, such as Microsoft® Azure®, a virtualized, easily scalable environment for distributed computing and cloud storage for data. Other cloud computing services may also be suitable for running the analytical platform. Furthermore, instead of or in addition to a cloud computing service, a local or remote server may be used to run the analytical platform.

[0069] 2 shows a reactor system 10 that is a bubbling fluidized bed (BFB) reactor. BFB reactors differ from CFB reactors in that the fluidized bed is a bubbling bed rather than a circulating bed, and the fluidization velocity is low. Therefore, the separator 14, loop seal 120, FBHE 100, and return flow path 102 are not necessarily located in a BFB reactor.

[0070] In the case of a BFB boiler, at least one superheater 14 is placed in the furnace 12, preferably at the top of the furnace 12. In other types of practical applications, the superheater may be omitted. The inlet 143 of the superheater 14 preferably comes from a steam drum 200 or another superheater, and the outlet 144 leads to a high-pressure turbine. It should be noted that the heat transfer surfaces are presented only for the purpose of understanding that the method is applicable to any process that generates heat.

[0071] are positioned above the grid 250 and together define a measurement grid, each of which has a measurement point P i , i=1, . . . , n i 1. A method for determining local temperature anomalies in the bed of a fluidized bed reactor system 10 comprising a reaction chamber 12 having a grate 250 comprising: - Floor temperature T Mi , i=1,...,N is the measurement point P i , i=1,···,N, - Measuring point P i , i=1, . . . , n are calculated using at least one numerical bed temperature model to obtain a calculated bed temperature T Ci , i=1,...,n, - Measuring point P i , i=1,...,n, for at least some of the measured bed temperatures T Mi is the calculated bed temperature T Ci and if it exceeds the abnormal threshold (for example, ΔT = T Mi -T Ci is calculated for all i and ΔT > ΔT limit ), it is determined that a local temperature anomaly exists.

[0072] Measurement point P i , i=1,...,N, the calculated floor temperature T Ci , i=1,...,N are preferably obtained in the following way. - Reactor operating data, i.e., predetermined process variables and the i, i=1,...,N) Mi , i=1,···,N, a numerical model f is prepared and calibrated, i.e., f(x1, x2, c3, x4, x5)=T Mi , - Each measurement point P i , i=1,...,N, the measured bed temperature T Mi , i=1,...,N and current operating data of the reactor including predetermined process variables are monitored; - at least one measuring point P j , j = 1,...,n, the numerical model calculates the temperature T using the current operating data and the measured bed temperatures at at least two other measurement points. Cj is used to calculate - Calculated bed temperature T Ci and measured floor temperature T Mi is compared against an anomaly criterion, and if the anomaly criterion is met, it is determined that a local temperature anomaly exists.

[0073] Calibration may be performed in a delayed manner, preferably using historical data from at least M days ago, where M is at least 3, preferably M is at least 7, and more preferably M is at least 14.

[0074] Upon detecting a local temperature anomaly, calibration may not be performed for a predetermined time period. In particular, upon detecting a local temperature anomaly that meets a given threshold, calibration may not be performed for a predetermined time period.

[0075] Both define a measurement grid, and each has a measurement point P i , i=1, . . . , N i 1. A method for calibrating a numerical model of a fluidized bed of a reactor system 10 comprising a reaction chamber 12 having a grid 250 comprising: i , i=1,...,N, the measured bed temperature T Mi A method configured to generate - Each measurement point P i , i=1,...,n, the measured bed temperature T Mi , i=1,...,N and the current operation data of the reactor including predetermined process variables are monitored and collected to become historical data; - Operating data, i.e., predetermined process variables and the respective measuring points P i , i=1,...,n, the measured bed temperature T Mi , i=1,...,N, the numerical model f is fitted using at least one numerical fitting method, preferably a numerical regression method, advantageously least squares fitting.

[0076] 3 shows an example in which the reactor grid 250 is equipped with eight temperature sensors 20 (hence N=8). In principle, any number of temperature sensors 20 (but at least three) can be used.

[0077] The calibration is preferably repeated at predetermined intervals, such as periodically.

[0078] If a local temperature anomaly is detected, the calibration can be aborted.

[0079] Both define a measurement grid, and each has a measurement point P i , i=1,...,n, there are at least three temperature sensors (20 i 1. A method for assessing the risk of bed sintering in a fluidized bed reactor system (10) comprising a reaction chamber (12) having a grid (250) comprising: - Current operating data of the reactor, i.e., the measured bed temperature T Mi , i=1,...,N is the measurement point P i , i=1,···,n, - Based on the current operating data of the reactor, i) the average of the measured bed temperatures is calculated; ii) the standard deviation of the measured bed temperatures is calculated; iii) the difference between the maximum measured bed temperature and the minimum measured bed temperature is calculated; iv) For the measured bed temperature, the spreading rate x spread,

[0080]

number

[0081] According to one embodiment of the present invention, in the calculation of the dispersion degree i=1:N, N is the total number of bed temperature measurements, x i are the individual floor temperature measurements,

[0082]

number

[0083] Preferably, the method also includes: v) Calculated bed temperature T for the same measurement point Ci , I=1,...,n is calculated, and the measured bed temperature T Mi , i=1,...,n and the calculated bed temperature are calculated. The result of step v) is also advantageously used to prepare a bed sintering index.

[0084] A method of controlling a fluidized bed reactor system 10, comprising: Local bed temperature anomalies and / or bed sintering index are monitored; Upon detecting a local bed temperature anomaly and / or bed sintering index that exceeds a predetermined standard, the reactor system 10 automatically adjusts operation and / or indicates to the operator that a local bed temperature anomaly and / or bed sintering condition has been detected.

[0085] The automatic adjustment of reactor operation may include at least one of: a) increasing or decreasing reactant feed; b) increasing or decreasing the flow rate of the feedstock being processed; c) increasing or decreasing bed material feed and / or bed material removal; e) temporarily limiting reactor yield or power output.

[0086] If the reactor is a fluidized bed reactor such as a boiler or gasifier, automatic adjustment of reactor operation may include at least one of: a) increasing or decreasing the primary and / or secondary air or steam-oxygen mixture supply 151, 152; b) increasing or decreasing the fuel supply 20; c) increasing or decreasing the bed material supply and / or bed material removal; and / or d) adjusting (preferably increasing) the recycle gas flow rate; and / or e) temporarily limiting the reactor load.

[0087] Automatic adjustments or so-called corrective measures are - Changing the composition of fuels and other feedstocks - Induces a gas flow pulse through the primary fluidizing nozzle - Introducing appropriate feed additives that influence the bed sintering behavior or increasing the amount of feed additives It may include one of:

[0088] Local bed temperature anomalies and / or monitored sintering indices are preferably monitored using a numerical model. Preferably, delayed calibration of the numerical model is used to reduce or avoid the influence of recent bed conditions on the calibration data.

[0089] The reactor system 10 is configured to carry out the method according to any one of the preceding claims.

[0090] FIG. 4 illustrates a possible use of the present method in a fluidized bed reactor system 10, more particularly in a DCS 301 and / or EDGE server 303, or in a process intelligence system 305.

[0091] Process variables are made available to the DCS as data inputs (step J1) of previously stored historical data.

[0092] In step J3, the bed temperature is modeled using available historical data for the process variables.

[0093] In step J5, floor diagnosis is performed using the online data applied to the model, resulting in a residual ΔT = T C -T M is obtained.

[0094] 5 shows possible process variable inputs to the bed diagnostic step J5 associated with the process of fuel combustion carried out in a fluidized bed reactor. Possible inputs provided are primary air flow rate, secondary air flow rate, flue gas oxygen content, flue gas HO content, and bed pressure. These can be measured during operation of the combustion boiler, preferably by the DCS 301 or the EDGE server 303.

[0095] Corrective action can be taken automatically (preferably by DCS 301, EDGE Server 303, or Process Intelligence System 305), or the action can be taken manually by reactor operators.

[0096] If the reactor is a gasifier, the process variable inputs are: Steam flow rate Steam pressure Steam temperature Oxygen flow rate ·Feed material composition ·Feedstock flow rate Contains one or more of:

[0097] If the reactor is a calcium oxide hydration reactor, the process variable inputs are: Steam flow rate Steam temperature Steam pressure ·CaO flow rate Cao carrier gas flow rate CaO / other solids ratio Contains one or more of:

[0098] For gas clean-up reactor systems where the reactor is configured to remove CO2 or other acid gases (so-called calcium looping), the process variable inputs are: Steam flow rate Steam pressure and temperature Additional fuel flow Additional fuel heating value - Additional fuel moisture content ·CaCO3 generation flow rate Total flow rate of CaO / CaCO3 Contains one or more of:

[0099] FIG. 6 illustrates the principle of delay calibration.

[0100] The inventors analyzed actual operating data collected during operation of reactor system 10 as a boiler until the reactor system 10 was shut down due to bed sintering. Using this method, the inventors can show that local bed temperature anomalies can be detected and that local bed temperature anomalies tend to act as precursors to bed sintering (see FIG. 7). Using this method, local bed temperature anomalies and sintering conditions can be observed early enough, within an appropriately long and early enough action window, before an actual problem occurs. In the example of FIG. 7, the action window was approximately 45-25 hours before the reactor system 10 had to be shut down due to bed sintering issues.

[0101] 8A and 8B show the temperature sensor measurement data for each of the temperature sensors 201-208 resulting in the curves shown in Figure 7. Thus, at least eight temperature sensors 20 are sufficient to allow a sufficiently long action window for automatic control of the reactor system 10 or manual control by the boiler operator to reliably detect sintering problems early enough to prevent shutdown of the reactor system 10.

[0102] It is obvious to those skilled in the art that with technological advances, the basic idea of ​​the present invention can be implemented in many ways and for various processes that utilize a fluidized bed of solid materials. Therefore, the present invention and its embodiments are not limited to the above examples, but can vary within the scope of the claims and their legal equivalents.

[0103] In the appended claims and the foregoing description of the invention, unless the context requires otherwise, either expressly or by necessary implication, the word "comprises" or variations such as "comprises" or "comprising" are used in the inclusive sense, i.e., to specify the presence of stated features, but are not used to exclude the presence or addition of further features in various embodiments of the invention.

Claims

1. Both define a measurement grid, and each has a measurement point (P i , i=1, . . . , n) i 1. A method for determining local temperature anomalies in a fluidized bed reactor system (10) comprising a reaction chamber (12) having a grate (250) comprising: - Each measurement point (P i , i = 1, ..., N) Mi , i=1, ..., N) and predetermined process variables (x1, x2, x3, x4, ...) are monitored; - Operation data including predetermined process variables (x1, x2, x3, x4, ...) and each measurement point (P i , i=1,...,N) Mi , i = 1, ..., N), a numerical model (f) is prepared and calibrated; - the measurement point (P i , i=1, . . . , n) are calculated using the numerical model to obtain a calculated bed temperature (T Ci , i=1,...,n), - the measurement point (P i , i=1, . . . , n), the measured bed temperature (T Mi ) is the calculated bed temperature (T Ci ) and if it exceeds the anomaly threshold, it is determined that a local temperature anomaly exists.

2. - at least one measurement point (P j , j is 1, ..., n), the numerical model calculates a calculated bed temperature (T Cj ) is used to calculate - the calculated bed temperature (T Ci ) and the measured bed temperature (T Mi 2. The method of claim 1, wherein the temperature anomaly is compared against an anomaly criterion and a local temperature anomaly is determined to exist if the anomaly criterion is met.

3. The method of claim 1 , wherein the calibration is performed in a delayed manner using historical data.

4. The method of claim 1 or 3, wherein upon detection of a local temperature anomaly, the calibration is not performed for a predetermined time.

5. The method of claim 3 , wherein upon detecting a local temperature anomaly that meets a given threshold, the calibration is not performed for a predetermined time.

6. 3. The method of claim 1 or 2, wherein upon detection of a local bed temperature anomaly, the operation of the reactor system (10) is automatically adjusted and / or an operator is informed that a local bed temperature anomaly has been detected.

7. The operating data and the measured bed temperature (T Mi , i=1, ..., N), - Each measurement point (P i , i=1,...,N) Mi , i=1, ..., N) and predetermined process variables are monitored and collected as historical data for the current operation of the reactor; - Operation data and each measurement point (P i , i = 1, ..., n) Mi , i=1,...,N), a numerical model (f) between the The method according to any one of claims 1 to 5, wherein the method is calibrated so that

8. The method of claim 7 , wherein the calibration is repeated at predetermined intervals.

9. 9. The method of claim 7 or 8, wherein the calibration is aborted upon detection of a local temperature anomaly.

10. 1. A method for assessing the risk of bed sintering in a fluidized bed reactor, comprising: - the reactor system (10) together define a measurement grid, each having a measurement point (P i , i=1, . . . , n) i a reaction chamber (12) having a grating (250) comprising - the current operating data of the reactor, i.e. the measured bed temperature (T Mi , i=1,...,N) are the measurement points (P i , i=1,...,n), - based on the current operating data of the reactor, i) an average of the measured bed temperatures is calculated; ii) the standard deviation of the measured bed temperatures is calculated; iii) the difference between the maximum measured bed temperature and the minimum measured bed temperature is calculated; iv) The degree of dispersion (x spread, [Equation 1] ) is calculated, - Using the results of calculations i), ii), iii) and iv), a bed sintering index is prepared.

11. moreover v) Calculated bed temperature (T Ci , I=1,...,n) is calculated, and the measured bed temperature (T Mi 11. The method of claim 10, wherein a residual between the calculated bed temperature and the calculated bed temperature is calculated, and the result of step v) is also used in preparing the bed sintering index.

12. Calculation bed temperature (T) Ci , I=1,・・・,n)が, - the measurement point (P i , i=1,...,n) are calculated using at least one numerical bed temperature model between operational data and the measured bed temperatures to obtain a calculated bed temperature (T Ci , i = 1, ..., n) The method of claim 10, wherein the

13. 13. The method of any one of claims 10 to 12, wherein upon detecting a bed sintering index exceeding a predetermined standard, the operation of the reactor system (10) is automatically adjusted and / or an operator is informed that a bed sintering condition has been detected.

14. 12. The method of claim 11, wherein the automatic adjustment of operation comprises at least one or more of: a) increasing or decreasing reactant feed (151, 152); b) increasing or decreasing the flow rate of the feedstock (20) being processed; c) increasing or decreasing bed material feed and / or bed material removal; d) temporarily limiting the reactor yield.

15. A reactor system (10) configured to carry out the method according to any one of claims 1 to 14.

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