JP2007132630A - Boiler reheating steam temperature control device and method - Google Patents

Boiler reheating steam temperature control device and method Download PDF

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JP2007132630A
JP2007132630A JP2005328314A JP2005328314A JP2007132630A JP 2007132630 A JP2007132630 A JP 2007132630A JP 2005328314 A JP2005328314 A JP 2005328314A JP 2005328314 A JP2005328314 A JP 2005328314A JP 2007132630 A JP2007132630 A JP 2007132630A
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temperature
reheater
spray water
reheater outlet
water flow
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Takahiro Mori
高裕 森
Shoyu Nakai
昭祐 中井
Takeyoshi Asano
剛義 浅野
Koji Ito
浩二 伊藤
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Toshiba Corp
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Toshiba Corp
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<P>PROBLEM TO BE SOLVED: To provide a boiler reheating steam temperature control device having good controllability without deteriorating turbine efficiency. <P>SOLUTION: The boiler reheating steam temperature control device performs the temperature control of a reheater 14 of a boiler by using a reheater outlet damper 15 and an temperature reducer spray water flow rate adjusting valve 17 based on deviation between the outlet temperature of a superheater of the boiler and the outlet temperature of the reheater. The boiler reheating steam temperature control device is equipped with an temperature reducer spray water flow rate control part 20 for adjusting a temperature reducer spray water flow rate by the temperature reducer spray water flow rate adjusting valve 17, and a reheater outlet damper control part 19 for adjusting an opening of the reheater outlet damper so that an opening command of the temperature reducer spray water flow rate adjusting valve 17 is zero and controlling a reheater outlet steam temperature to a set value. <P>COPYRIGHT: (C)2007,JPO&INPIT

Description

本発明は、火力発電プラントのボイラの過熱器の出口温度と再熱器の出口温度設定値との偏差に基づいて、再熱器出口ダンパと減温器スプレー水流量調節弁とを用いてボイラの再熱器の温度制御を行うボイラ再熱蒸気温度制御装置及び方法に関する。   The present invention relates to a boiler using a reheater outlet damper and a desuperheater spray water flow control valve based on the deviation between the outlet temperature of the superheater of the boiler of the thermal power plant and the outlet temperature set value of the reheater. TECHNICAL FIELD The present invention relates to a boiler reheat steam temperature control apparatus and method for controlling the temperature of a reheater.

火力発電プラントには事業用あるいはIPP(Independent Power Producer)用などの火力発電プラントがある。通常、これらの火力発電プラントではボイラを有している。また、ボイラで発生した蒸気を高圧タービンに導き、高圧タービンで仕事を終えた蒸気を再び再熱器で過熱して低圧タービンに導くようにした再熱蒸気系を有した火力発電プラントがある。このような火力発電プラントでは、再熱蒸気温度は、再熱器出口ダンパ制御と減温器スプレー水流量制御とで行われている(例えば、特許文献1参照)。   Thermal power plants include thermal power plants for business use or IPP (Independent Power Producer). Usually, these thermal power plants have boilers. There is also a thermal power plant having a reheat steam system in which steam generated in a boiler is guided to a high-pressure turbine, and steam that has finished work in the high-pressure turbine is again heated by a reheater and guided to a low-pressure turbine. In such a thermal power plant, the reheat steam temperature is controlled by reheater outlet damper control and desuperheater spray water flow rate control (for example, refer to Patent Document 1).

図9は、従来の火力発電プラントにおけるボイラ再熱蒸気温度制御装置のブロック構成図である。ボイラで発生した蒸気は過熱器11及び減温器12にて温度制御され、高圧タービン13に供給される。そして、高圧タービン13で仕事を終えた蒸気は、一旦、ボイラの再熱器14により加熱され、再熱器出口ダンパ15で温度が調整されて低圧タービン16に導かれる。減温器12はスプレー水流量調整弁17からのスプレー水量により温度調整が行われる。   FIG. 9 is a block diagram of a boiler reheat steam temperature control device in a conventional thermal power plant. Steam generated in the boiler is temperature-controlled by the superheater 11 and the temperature reducer 12 and supplied to the high-pressure turbine 13. The steam that has finished work in the high-pressure turbine 13 is once heated by the reheater 14 of the boiler, the temperature is adjusted by the reheater outlet damper 15, and is guided to the low-pressure turbine 16. The temperature of the temperature reducer 12 is adjusted by the amount of spray water from the spray water flow rate adjustment valve 17.

低圧タービン16に供給される再熱蒸気の温度制御は、ボイラ再熱蒸気温度制御装置18により行われる。ボイラ再熱蒸気温度制御装置18は、再熱器出口ダンパ15の開度を調節して再熱器出口蒸気温度を設定値に制御する再熱器出口ダンパ制御部19と、減温器スプレー水流量調節弁17により減温器スプレー水流量を調節して再熱器出口蒸気温度を設定値に制御する減温器スプレー水流量制御部20とから構成される。   Temperature control of the reheat steam supplied to the low-pressure turbine 16 is performed by the boiler reheat steam temperature control device 18. The boiler reheat steam temperature control device 18 adjusts the opening of the reheater outlet damper 15 to control the reheater outlet steam temperature to a set value, and the desuperheater spray water. The flow control valve 17 is configured to include a temperature reducer spray water flow rate control unit 20 that adjusts the flow rate of the temperature reducer spray water and controls the reheater outlet steam temperature to a set value.

再熱器出口ダンパ制御部19は、減算器21で再熱器出口温度設定値Tr1と過熱器出口温度T1との偏差ΔT1をとり、PID制御器22にて制御演算して再熱器出口ダンパ15を制御する。減温器スプレー水流量制御部20は、再熱器出口温度設定値Tr1とバイアス値Tbとを加算器23で加算し、その加算した信号と過熱器出口温度T1との偏差を減算器24により演算する。そして、その結果得られる偏差ΔT2をPID制御器25にて制御演算し、開度制限器26により制限を掛けて減温器スプレー水流量調節弁17の開度を調節する。つまり、減温器スプレー水流量制御部20は、温度偏差ΔT1が大きくなった場合のバックアップとして動作するように構成されている。   The reheater outlet damper control unit 19 takes a deviation ΔT1 between the reheater outlet temperature set value Tr1 and the superheater outlet temperature T1 by the subtractor 21, performs control calculation by the PID controller 22, and performs a reheater outlet damper. 15 is controlled. The temperature reducer spray water flow rate control unit 20 adds the reheater outlet temperature set value Tr1 and the bias value Tb by the adder 23, and the subtractor 24 adds the deviation between the added signal and the superheater outlet temperature T1. Calculate. Then, the deviation ΔT2 obtained as a result is subjected to a control calculation by the PID controller 25, and the opening degree limiter 26 limits the opening degree of the temperature reducer spray water flow rate adjustment valve 17. That is, the temperature reducer spray water flow rate control unit 20 is configured to operate as a backup when the temperature deviation ΔT1 increases.

減温器スプレー水流量制御部20による制御は制御性は良いが、スプレー水を吹きかけることによる効率の低下があり、再熱器出口ダンパ制御部19による制御は時定数が大きく制御性が悪いが効率の低下は小さい。そこで、効率面を重視して再熱器出口ダンパ制御を優先し、減温器スプレー水流量制御をバックアップとしている。
特開平8−135405号公報
Although the control by the desuperheater spray water flow rate control unit 20 has good controllability, there is a decrease in efficiency due to spraying spray water, and the control by the reheater outlet damper control unit 19 has a large time constant and poor controllability. The decrease in efficiency is small. Therefore, emphasizing efficiency, priority is given to reheater outlet damper control, and desuperheater spray water flow control is used as a backup.
JP-A-8-135405

ところが、従来のボイラ再熱蒸気温度制御装置においては、時定数が大きい再熱器出口ダンパ制御を優先としているため制御性が悪い。また、再熱器出口ダンパ制御の制御性が悪いので、減温器スプレー水流量制御が動作すると、減温器スプレー水流量制御ではスプレー水を吹きかけることにより温度制御するので、タービン効率が低下することになる。   However, in the conventional boiler reheat steam temperature control device, controllability is poor because priority is given to reheater outlet damper control with a large time constant. In addition, since the controllability of the reheater outlet damper control is poor, if the desuperheater spray water flow rate control is operated, the temperature control is performed by spraying the spray water in the desuperheater spray water flow rate control, so the turbine efficiency is reduced. It will be.

本発明の目的は、タービン効率を低下させることなく良好な制御性を有するボイラ再熱蒸気温度制御装置及び方法を提供することにある。   An object of the present invention is to provide a boiler reheat steam temperature control apparatus and method having good controllability without reducing turbine efficiency.

本発明のボイラ再熱蒸気温度制御装置は、ボイラの過熱器の出口温度と再熱器の出口温度設定値との偏差に基づいて、再熱器出口ダンパと減温器スプレー水流量調節弁とを用いてボイラの再熱器の温度制御を行うボイラ再熱蒸気温度制御装置において、前記減温器スプレー水流量調節弁により減温器スプレー水流量を調節して再熱器出口蒸気温度を設定値に制御する減温器スプレー水流量制御部と、前記減温器スプレー水流量調節弁の開度指令をゼロにするように前記再熱器出口ダンパの開度を調節して再熱器出口蒸気温度を設定値に制御する再熱器出口ダンパ制御部とを備えたことを特徴とする。   The boiler reheat steam temperature control device of the present invention is based on the deviation between the boiler superheater outlet temperature and the reheater outlet temperature set value, and the reheater outlet damper, the desuperheater spray water flow control valve, In the boiler reheat steam temperature control device, which controls the temperature of the boiler reheater using the chiller, the reheater outlet steam temperature is set by adjusting the desuperheater spray water flow rate with the desuperheater spray water flow rate control valve The reheater outlet is controlled by adjusting the opening of the reheater outlet damper so that the opening command of the desuperheater spray water flow rate control valve and the desuperheater spray water flow rate control valve are set to zero. And a reheater outlet damper controller that controls the steam temperature to a set value.

本発明のボイラ再熱蒸気温度制御方法は、ボイラの過熱器の出口温度と再熱器の出口温度設定値との偏差に基づいて、再熱器出口ダンパと減温器スプレー水流量調節弁とを用いてボイラの再熱器の温度制御を行うボイラ再熱蒸気温度制御方法において、前記減温器スプレー水流量調節弁により減温器スプレー水流量を調節して再熱器出口蒸気温度を設定値に減温器スプレー水流量制御するとともに、前記減温器スプレー水流量調節弁の開度指令をゼロにするように前記再熱器出口ダンパの開度を調節して再熱器出口蒸気温度を設定値に再熱器出口ダンパ制御することを特徴とする。   The boiler reheat steam temperature control method of the present invention is based on a deviation between a boiler superheater outlet temperature and a reheater outlet temperature set value, and a reheater outlet damper, a desuperheater spray water flow control valve, In the boiler reheat steam temperature control method, which controls the temperature of the boiler reheater using the temperature controller, the reheater outlet steam temperature is set by adjusting the desuperheater spray water flow rate with the desuperheater spray water flow rate control valve. The temperature of the desuperheater spray water is controlled to a value, and the reheater outlet steam temperature is adjusted by adjusting the opening of the reheater outlet damper so that the opening command of the desuperheater spray water flow control valve is zero. Is controlled to a reheater outlet damper to a set value.

本発明によれば、再熱器出口蒸気温度をその設定値に制御するために減温器スプレー水流量を調節する減温器スプレー水流量制御と、減温器スプレー水流量調節弁の開度指令をゼロにするように再熱器出口ダンパ開度を調節する再熱器出口ダンパ制御とを協調して動作させるので、タービン効率を低下させることなく良好な制御性を維持して再熱器出口蒸気温度を制御できる。   According to the present invention, the desuperheater spray water flow control for adjusting the desuperheater spray water flow rate to control the reheater outlet steam temperature to its set value, and the opening degree of the desuperheater spray water flow rate control valve. Since the reheater outlet damper control that adjusts the reheater outlet damper opening so that the command becomes zero is operated in cooperation, the reheater maintains good controllability without reducing turbine efficiency. The outlet steam temperature can be controlled.

(第1の実施の形態)
図1は本発明の第1の実施の形態に係わるボイラ再熱蒸気温度制御装置の構成図である。ボイラ再熱蒸気温度制御装置18は、再熱器出口ダンパ15の開度を調節して再熱器出口蒸気温度を設定値に制御する再熱器出口ダンパ制御部19と、減温器スプレー水流量調節弁17により減温器スプレー水流量を調節して再熱器出口蒸気温度を設定値に制御する減温器スプレー水流量制御部20とから構成される。
(First embodiment)
FIG. 1 is a configuration diagram of a boiler reheat steam temperature control apparatus according to a first embodiment of the present invention. The boiler reheat steam temperature control device 18 adjusts the opening of the reheater outlet damper 15 to control the reheater outlet steam temperature to a set value, and the desuperheater spray water. The flow control valve 17 is configured to include a temperature reducer spray water flow rate control unit 20 that adjusts the flow rate of the temperature reducer spray water and controls the reheater outlet steam temperature to a set value.

減温器スプレー水流量制御部20は、再熱器出口温度設定値Tr1と過熱器出口温度T1とを減算器24により減算し、その結果得られる偏差ΔT3をPID制御器25にて制御演算し、開度制限器26を通して減温器スプレー水流量調節弁17の開度を調節する。   The desuperheater spray water flow rate controller 20 subtracts the reheater outlet temperature set value Tr1 and the superheater outlet temperature T1 by the subtractor 24, and the PID controller 25 controls and calculates the deviation ΔT3 obtained as a result. The opening degree of the desuperheater spray water flow rate adjustment valve 17 is adjusted through the opening degree limiter 26.

一方、再熱器出口ダンパ制御部19は、減温器スプレー水流量調節弁17のゼロ開度指令値H0を設定値とし、PID制御器25からの減温器スプレー水流量調節弁17の開度要求値Hとの偏差ΔHを減算器27により演算し、PID制御器28により、減温器スプレー水流量調節弁17の開度指令がゼロになるように再熱器出口ダンパ15の開度を調節する。すなわち、再熱器出口ダンパ制御部19は、減温器スプレー水流量調節弁17の開度指令をゼロにするように、再熱器出口ダンパ15の開度を調節して再熱器出口蒸気温度を設定値に制御する。   On the other hand, the reheater outlet damper control unit 19 sets the zero opening command value H0 of the temperature reducer spray water flow rate adjustment valve 17 as a set value, and opens the temperature reducer spray water flow rate adjustment valve 17 from the PID controller 25. The deviation ΔH from the degree required value H is calculated by the subtractor 27, and the opening degree of the reheater outlet damper 15 is adjusted by the PID controller 28 so that the opening degree command of the desuperheater spray water flow rate adjustment valve 17 becomes zero. Adjust. That is, the reheater outlet damper control unit 19 adjusts the opening degree of the reheater outlet damper 15 so that the opening degree command of the desuperheater spray water flow rate adjustment valve 17 becomes zero, and the reheater outlet steam. Control the temperature to the set value.

この場合、減温器スプレー水流量制御と再熱器出口ダンパ制御とは、従来のボイラ再熱蒸気温度制御装置での制御方法とは異なり、別々の設定値とプロセス値とを使用した制御となっているため、両制御系が干渉することはない。   In this case, the temperature controller spray water flow rate control and reheater outlet damper control are different from the control method in the conventional boiler reheat steam temperature control device in that control using separate set values and process values is used. Therefore, both control systems do not interfere with each other.

第1の実施の形態によれば、減温器スプレー水流量制御と再熱器出口ダンパ制御とを協調させて動作させるので、早い温度変化に対しては、制御性の良い減温器スプレー水流量制御で対応し、一方、再熱器出口ダンパ制御によりスプレー水がゼロになる運転点でゆっくりとバランスすることができる。このため、減温器スプレー水流量調節弁17の開度を抑え、スプレー水の流量を少なくすることになり効率の低下を防ぐことができる。   According to the first embodiment, since the desuperheater spray water flow control and the reheater outlet damper control are operated in cooperation with each other, the desuperheater spray water with good controllability is provided for a rapid temperature change. On the other hand, the flow rate can be controlled, while the reheater outlet damper control can balance slowly at the operating point where the spray water becomes zero. For this reason, the opening degree of the desuperheater spray water flow rate control valve 17 is suppressed, the flow rate of the spray water is reduced, and a decrease in efficiency can be prevented.

(第2の実施の形態)
図2は本発明の第2の実施の形態に係わるボイラ再熱蒸気温度制御装置の構成図である。図2に示すように、ボイラ再熱蒸気温度制御装置18は、再熱器出口ダンパ15の開度を調節して再熱器出口蒸気温度を設定値に制御する再熱器出口ダンパ制御部19と、減温器スプレー水流量調節弁17により減温器スプレー水流量を調節して再熱器出口蒸気温度を設定値に制御する減温器スプレー水流量制御部20とから構成される。
(Second Embodiment)
FIG. 2 is a block diagram of a boiler reheat steam temperature control apparatus according to the second embodiment of the present invention. As shown in FIG. 2, the boiler reheat steam temperature control device 18 adjusts the opening of the reheater outlet damper 15 to control the reheater outlet steam temperature to a set value. And a desuperheater spray water flow rate control unit 20 for adjusting the desuperheater spray water flow rate by the desuperheater spray water flow rate regulating valve 17 and controlling the reheater outlet steam temperature to a set value.

再熱器出口ダンパ制御部19は、過熱器出口温度が再熱器出口温度設定値になるように再熱器出口ダンパの開度を調節する第1制御系29と、減温器スプレー水流量調節弁17の開度指令をゼロにするように再熱器出口ダンパの開度を調節する第2制御系30とを有し、さらに、過熱器出口温度T1が再熱器出口温度設定値Tr1にバイアス値Tbを加えた値以下か否かを判定する比較器31と、比較器31の比較結果が「以下」の場合には第1制御系29の出力を選択し「以下」でないときは第2制御系30の出力を選択する切換器32とを備えている。   The reheater outlet damper control unit 19 includes a first control system 29 that adjusts the opening degree of the reheater outlet damper so that the superheater outlet temperature becomes the reheater outlet temperature set value, and the desuperheater spray water flow rate. And a second control system 30 that adjusts the opening degree of the reheater outlet damper so that the opening degree command of the control valve 17 becomes zero, and the superheater outlet temperature T1 is set to the reheater outlet temperature set value Tr1. When the comparison result of the comparator 31 is “below” or not, the output of the first control system 29 is selected and not “below” or less. And a switch 32 for selecting the output of the second control system 30.

一方、減温器スプレー水流量制御部20は、再熱器出口温度設定値Tr1とバイアス値Tbとを加算器23で加算し、その加算した信号と過熱器出口温度T1との偏差を減算器24により演算する。そして、その結果得られる偏差ΔT2をPID制御器25にて制御演算し、開度制限器26により制限を掛けて減温器スプレー水流量調節弁17の開度を調節する。   On the other hand, the desuperheater spray water flow rate controller 20 adds the reheater outlet temperature set value Tr1 and the bias value Tb by the adder 23, and subtracts the deviation between the added signal and the superheater outlet temperature T1. 24. Then, the deviation ΔT2 obtained as a result is subjected to a control calculation by the PID controller 25, and the opening degree limiter 26 limits the opening degree of the temperature reducer spray water flow rate adjustment valve 17.

すなわち、再熱器出口ダンパ制御部19は、再熱器出口温度設定値Tr1と過熱器出口温度T1との偏差ΔT1をPID制御器22にて制御演算し、再熱器出口ダンパ15を制御する第1制御系29による制御系と、減温器スプレー水流量調節弁17のゼロ開度指令値H0を設定値とし、PID制御器28により、減温器スプレー水流量調節弁17の開度指令がゼロになるように再熱器出口ダンパ15の開度を調節する第2制御系による制御系との両方を持つ。   That is, the reheater outlet damper control unit 19 controls and calculates the deviation ΔT1 between the reheater outlet temperature set value Tr1 and the superheater outlet temperature T1 by the PID controller 22, and controls the reheater outlet damper 15. The control system by the first control system 29 and the zero opening command value H0 of the desuperheater spray water flow rate adjustment valve 17 are set as set values, and the opening command of the desuperheater spray water flow rate adjustment valve 17 is set by the PID controller 28. And the control system by the second control system that adjusts the opening degree of the reheater outlet damper 15 so as to be zero.

そして、再熱器出口温度設定値Tr1とバイアス値Tbとを加算器23で加算した加算値(Tr1+Tb)と過熱器出口温度T1との偏差(Tr1+Tb−T1)を減算器24により演算し、その結果得られる偏差ΔT2を比較器31で比較する。比較の結果、過熱器出口温度T1の方が加算値(Tr1+Tb)より大きい場合には、切換器32は第2制御系30の出力を選択する。つまり、再熱器出口ダンパ制御部19は、減温器スプレー水流量調節弁17の開度指令をゼロにするように再熱器出口ダンパ15の開度を調節して再熱器出口蒸気温度を設定値に制御する。   Then, the subtractor 24 calculates a deviation (Tr1 + Tb−T1) between the added value (Tr1 + Tb) obtained by adding the reheater outlet temperature set value Tr1 and the bias value Tb by the adder 23 and the superheater outlet temperature T1, The resulting deviation ΔT2 is compared by the comparator 31. As a result of the comparison, when the superheater outlet temperature T1 is larger than the added value (Tr1 + Tb), the switcher 32 selects the output of the second control system 30. That is, the reheater outlet damper control unit 19 adjusts the opening degree of the reheater outlet damper 15 so that the opening degree command of the desuperheater spray water flow rate adjustment valve 17 becomes zero, and the reheater outlet steam temperature. Is controlled to the set value.

過熱器出口温度T1の方が加算値(Tr1+Tb)より大きい場合には、減温器スプレー水流量制御が動作する状態であるため、減温器スプレー水流量制御部20による減温器スプレー水流量制御も行われている。これにより、減温器スプレー水流量制御と再熱器出口ダンパ制御との協調制御が行われる。従って、減温器スプレー水流量調節弁17の開度を抑え、スプレー水の流量を少なくすることになり効率の低下を防ぐことができる。   When the superheater outlet temperature T1 is larger than the added value (Tr1 + Tb), the temperature reducer spray water flow rate control unit 20 is in a state in which the temperature reducer spray water flow rate control is operated. Control is also performed. Thereby, coordinated control of the temperature reducer spray water flow rate control and the reheater outlet damper control is performed. Therefore, the opening degree of the desuperheater spray water flow rate control valve 17 is suppressed, and the flow rate of the spray water is reduced, thereby preventing a reduction in efficiency.

また、比較器31での比較の結果、過熱器出口温度T1の方が加算値(Tr1+Tb)より小さい場合には、切換器32により第1制御系29が選択される。すなわち、過熱器出口温度T1の方が加算値(Tr1+Tb)より小さい場合には、減温器スプレー水流量制御部20よる減温器スプレー水流量制御が動作しないため、第1制御系29により、再熱器出口温度設定値Tr1と過熱器出口温度T1との偏差ΔT1がなくなるように制御される。   Further, as a result of the comparison by the comparator 31, when the superheater outlet temperature T1 is smaller than the added value (Tr1 + Tb), the first control system 29 is selected by the switch 32. That is, when the superheater outlet temperature T1 is smaller than the added value (Tr1 + Tb), the temperature controller spray water flow rate control by the temperature reducer spray water flow rate control unit 20 does not operate. Control is performed such that the deviation ΔT1 between the reheater outlet temperature set value Tr1 and the superheater outlet temperature T1 is eliminated.

第2の実施の形態によれば、第1制御系29による再熱器出口ダンパ制御と、第2制御系による減温器スプレー水流量制御と再熱器出口ダンパ制御との協調制御とを切り換える機能を持つので、スプレー水流量が最小となるように制御でき、効率の低下を防ぐことができる。   According to the second embodiment, switching between reheater outlet damper control by the first control system 29 and cooperative control between the desuperheater spray water flow rate control and the reheater outlet damper control by the second control system is performed. Because it has a function, it can be controlled so that the flow rate of the spray water is minimized, and a decrease in efficiency can be prevented.

(第3の実施の形態)
図3は本発明の第3の実施の形態に係わるボイラ再熱蒸気温度制御装置の構成図である。この第3の実施の形態は、図2に示した第2の実施の形態に対し、ゲート回路33を追加して設け、運転員による切換指令信号Sによりゲート回路33を開くようにしたものである。その他の構成は、図2に示した第2の実施の形態と同一であるので、同一要素には同一符号を付し重複する説明は省略する。
(Third embodiment)
FIG. 3 is a block diagram of a boiler reheat steam temperature control apparatus according to the third embodiment of the present invention. In the third embodiment, a gate circuit 33 is added to the second embodiment shown in FIG. 2, and the gate circuit 33 is opened by a switching command signal S from the operator. is there. Since the other configuration is the same as that of the second embodiment shown in FIG.

図3に示すように、運転員による切換指令信号Sはゲート回路33に入力される。ゲート回路33には比較器31の出力も入力されており、比較器31は過熱器出口温度T1の方が加算値(Tr1+Tb)より大きい場合に論理値「1」を出力する。従って、ゲート回路33は、過熱器出口温度T1の方が加算値(Tr1+Tb)より大きい場合に、その比較器31の出力信号を切換器32に出力することを許可するものである。   As shown in FIG. 3, the switching command signal S by the operator is input to the gate circuit 33. The output of the comparator 31 is also input to the gate circuit 33, and the comparator 31 outputs a logical value “1” when the superheater outlet temperature T1 is larger than the added value (Tr1 + Tb). Therefore, the gate circuit 33 permits the output signal of the comparator 31 to be output to the switch 32 when the superheater outlet temperature T1 is larger than the added value (Tr1 + Tb).

これにより、通常状態では第1制御系29の出力信号で再熱器出口ダンパ15を制御し、比較器31により過熱器出口温度T1の方が加算値(Tr1+Tb)より大きいと判断された状態で、かつ、運転員からの切換指令信号Sがあったときに、第1制御系29の出力信号から第2制御系30の出力信号に切り換えが行われ、第2制御系30の出力信号で再熱器出口ダンパ15が制御される。   Thereby, in the normal state, the reheater outlet damper 15 is controlled by the output signal of the first control system 29, and the comparator 31 determines that the superheater outlet temperature T1 is larger than the added value (Tr1 + Tb). When there is a switching command signal S from the operator, switching from the output signal of the first control system 29 to the output signal of the second control system 30 is performed, and the output signal of the second control system 30 is restarted. The heater outlet damper 15 is controlled.

第3の実施の形態によれば、切換器32の切換条件として、比較器31の条件成立と運転員の切換指令信号Sとのアンド条件としたので、運転員の判断で第1制御系29による再熱器出口ダンパ制御と第2制御系による再熱器出口ダンパ制御を切り換えることができる。つまり、第2制御系による減温器スプレー水流量制御と再熱器出口ダンパ制御との協調制御を運転員の判断で選択できる。   According to the third embodiment, the switching condition of the switching device 32 is the AND condition between the satisfaction of the condition of the comparator 31 and the switching command signal S of the operator, so the first control system 29 is determined by the operator. It is possible to switch between the reheater outlet damper control by the above and the reheater outlet damper control by the second control system. That is, the cooperative control of the desuperheater spray water flow rate control and the reheater outlet damper control by the second control system can be selected by the operator's judgment.

(第4の実施の形態)
図4は本発明の第4の実施の形態に係わるボイラ再熱蒸気温度制御装置の構成図である。この第4の実施の形態は、図1に示した第1の実施の形態に対し、関数発生器34を設け、この関数発生器34により、再熱器出口温度設定値Tr1と過熱器出口温度T1との偏差ΔT3に基づいて、再熱器出口ダンパ制御部19のPID制御器28のゲインを可変とするようにしたものである。図1と同一要素には同一符号を付し重複する説明を省略する。
(Fourth embodiment)
FIG. 4 is a block diagram of a boiler reheat steam temperature control apparatus according to the fourth embodiment of the present invention. In the fourth embodiment, a function generator 34 is provided with respect to the first embodiment shown in FIG. 1, and the regenerator outlet temperature set value Tr1 and the superheater outlet temperature are provided by the function generator 34. Based on the deviation ΔT3 from T1, the gain of the PID controller 28 of the reheater outlet damper controller 19 is made variable. The same elements as those in FIG. 1 are denoted by the same reference numerals, and redundant description is omitted.

図4において、減温器スプレー水流量制御部29による減温器スプレー水流量制御と、再熱器出口ダンパ制御部19による再熱器出口ダンパ制御との協調制御において、減算器24により得られる再熱器出口温度設定値Tr1と過熱器出口温度T1との偏差ΔT3を関数発生器34に入力し、関数発生器34は偏差ΔT3に基づいてPID制御器28のゲインを算出する。   In FIG. 4, the subtractor 24 obtains the cooperative control of the desuperheater spray water flow rate control by the desuperheater spray water flow rate control unit 29 and the reheater outlet damper control by the reheater outlet damper control unit 19. A deviation ΔT3 between the reheater outlet temperature set value Tr1 and the superheater outlet temperature T1 is input to the function generator 34, and the function generator 34 calculates the gain of the PID controller 28 based on the deviation ΔT3.

関数発生器34で算出するゲインは、偏差ΔT3がマイナスのときは、その絶対値が大きくなるほど大きくなるように算出される。これにより、再熱器出口ダンパ15の減温動作を大きくし、減温器スプレー水流量調節弁17の開動作によるスプレー水流量を小さくする。   When the deviation ΔT3 is negative, the gain calculated by the function generator 34 is calculated so as to increase as the absolute value increases. As a result, the temperature reducing operation of the reheater outlet damper 15 is increased, and the spray water flow rate due to the opening operation of the temperature reducer spray water flow rate adjusting valve 17 is decreased.

第4の実施の形態によれば、再熱器出口温度設定値Tr1と過熱器出口温度T1との偏差ΔT3に基づいて再熱器出口ダンパ制御部19のPID制御器28のゲインを可変とし、偏差ΔT3がマイナスになるほどゲインを大きくするので、再熱器出口ダンパ15の減温動作を大きくし、減温器スプレー水流量調節弁17の開動作によるスプレー水流量を最小となるような制御となり、ボイラの効率の低下を防ぐことができる。   According to the fourth embodiment, the gain of the PID controller 28 of the reheater outlet damper control unit 19 is variable based on the deviation ΔT3 between the reheater outlet temperature set value Tr1 and the superheater outlet temperature T1. Since the gain is increased as the deviation ΔT3 becomes negative, the temperature reducing operation of the reheater outlet damper 15 is increased and the spray water flow rate by the opening operation of the temperature reducing device spray water flow rate adjusting valve 17 is minimized. This can prevent the boiler efficiency from being lowered.

(第5の実施の形態)
図5は本発明の第5の実施の形態に係わるボイラ再熱蒸気温度制御装置の構成図である。この第5の実施の形態は、図2に示した第2の実施の形態に対し、再熱器出口ダンパ制御部19の第2制御系30に関数発生器34を設け、この関数発生器34により、再熱器出口温度設定値Tr1にバイアス値Tbを加算した加算値(Tr1+Tb)と過熱器出口温度T1との偏差ΔT2に基づいて、再熱器出口ダンパ制御部19のPID制御器28のゲインを可変とするようにしたものである。図2と同一要素には同一符号を付し重複する説明を省略する。
(Fifth embodiment)
FIG. 5 is a block diagram of a boiler reheat steam temperature control apparatus according to the fifth embodiment of the present invention. This fifth embodiment is different from the second embodiment shown in FIG. 2 in that a function generator 34 is provided in the second control system 30 of the reheater outlet damper control unit 19, and this function generator 34 Thus, based on the difference ΔT2 between the added value (Tr1 + Tb) obtained by adding the bias value Tb to the reheater outlet temperature set value Tr1 and the superheater outlet temperature T1, the PID controller 28 of the reheater outlet damper control unit 19 The gain is variable. The same elements as those in FIG. 2 are denoted by the same reference numerals, and redundant description is omitted.

図5に示すボイラ再熱蒸気温度制御装置18は、再熱器出口ダンパ制御部19の第1制御系29による再熱器出口ダンパ制御と、再熱器出口ダンパ制御部19の第2制御系30の再熱器出口ダンパ制御と減温器スプレー水流量制御との協調制御とを切り換える機能を持つ。   The boiler reheat steam temperature control device 18 shown in FIG. 5 includes a reheater outlet damper control by the first control system 29 of the reheater outlet damper control unit 19 and a second control system of the reheater outlet damper control unit 19. It has a function of switching between 30 reheater outlet damper control and cooperative control of the desuperheater spray water flow rate control.

このボイラ再熱蒸気温度制御装置18において、減温器スプレー水流量制御と再熱器出口ダンパ制御との協調制御を行う第2制御系のPID制御器28のゲインを関数発生器34により可変とする。関数発生器34は、減算器24により得られる再熱器出口温度設定値Tr1にバイアス値Tbを加算した加算値(Tr1+Tb)と過熱器出口温度T1との偏差ΔT2に基づいてゲインを算出する。関数発生器34にて算出する可変ゲインは、偏差ΔT2がマイナスになるほど大きくなるようにする。   In the boiler reheat steam temperature control device 18, the gain of the PID controller 28 of the second control system that performs coordinated control of the desuperheater spray water flow rate control and the reheater outlet damper control is variable by the function generator 34. To do. The function generator 34 calculates the gain based on the difference ΔT2 between the addition value (Tr1 + Tb) obtained by adding the bias value Tb to the reheater outlet temperature set value Tr1 obtained by the subtractor 24 and the superheater outlet temperature T1. The variable gain calculated by the function generator 34 is increased as the deviation ΔT2 becomes negative.

第5の実施の形態によれば、再熱器出口温度設定値Tr1にバイアス値Tbを加算した加算値(Tr1+Tb)と過熱器出口温度T1との偏差ΔT2に基づいて再熱器出口ダンパ制御部19のPID制御器28のゲインを可変とし、偏差ΔT3がマイナスになるほどゲインを大きくするので、再熱器出口ダンパ15の減温動作を大きくし、減温器スプレー水流量調節弁17の開動作によるスプレー水流量を最小となるような制御となり、ボイラの効率の低下を防ぐことができる。   According to the fifth embodiment, the reheater outlet damper control unit is based on the deviation ΔT2 between the added value (Tr1 + Tb) obtained by adding the bias value Tb to the reheater outlet temperature set value Tr1 and the superheater outlet temperature T1. 19, the gain of the PID controller 28 is made variable, and the gain is increased as the deviation ΔT3 becomes negative. Therefore, the temperature reducing operation of the reheater outlet damper 15 is increased, and the temperature reducing device spray water flow rate adjusting valve 17 is opened. It becomes the control which makes the spray water flow rate by minimum become possible, and the fall of the efficiency of a boiler can be prevented.

(第6の実施の形態)
図6は本発明の第6の実施の形態に係わるボイラ再熱蒸気温度制御装置の構成図である。この第6の実施の形態は、図2に示した第2の実施の形態に対し、比較器31及び切換器32に代えて比較選択器35を設け、比較選択器35により、第1制御系29の出力と第2制御系30の出力とのうち大きい方を選択して再熱器出口ダンパに出力するようにしたものである。図2と同一要素には同一符号を付し重複する説明を省略する。
(Sixth embodiment)
FIG. 6 is a block diagram of a boiler reheat steam temperature control apparatus according to the sixth embodiment of the present invention. The sixth embodiment is different from the second embodiment shown in FIG. 2 in that a comparison selector 35 is provided in place of the comparator 31 and the switch 32, and the comparison selector 35 provides a first control system. The larger one of the output of 29 and the output of the second control system 30 is selected and output to the reheater outlet damper. The same elements as those in FIG. 2 are denoted by the same reference numerals, and redundant description is omitted.

再熱器出口ダンパ制御部19の第1制御系29は、再熱器出口温度設定値Tr1と過熱器出口温度T1との偏差ΔT1を減算器21で求め、PID制御器22にて制御演算して再熱器出口ダンパ15を制御する。また、再熱器出口ダンパ制御部19の第2制御系30は、PID制御器25からの減温器スプレー水流量調節弁17の開度要求値Hとの偏差ΔHを減算器27により演算し、PID制御器28により、減温器スプレー水流量調節弁17の開度指令がゼロになるように再熱器出口ダンパ15の開度を調節する。   The first control system 29 of the reheater outlet damper control unit 19 obtains a deviation ΔT1 between the reheater outlet temperature set value Tr1 and the superheater outlet temperature T1 by the subtractor 21, and performs control calculation by the PID controller 22. Thus, the reheater outlet damper 15 is controlled. Further, the second control system 30 of the reheater outlet damper controller 19 calculates a deviation ΔH from the required opening degree H of the desuperheater spray water flow rate control valve 17 from the PID controller 25 by the subtractor 27. The opening degree of the reheater outlet damper 15 is adjusted by the PID controller 28 so that the opening degree command of the desuperheater spray water flow rate adjustment valve 17 becomes zero.

比較選択器35は、第1制御系29の出力信号と第2の制御系30の出力信号とを入力し、第1制御系29の出力信号と第2制御系30の出力信号とを比較する。そして、比較選択器35は、第1制御系29の出力と第2制御系30の出力とのうち大きい方を選択して再熱器出口ダンパ15に出力する。   The comparison selector 35 receives the output signal of the first control system 29 and the output signal of the second control system 30 and compares the output signal of the first control system 29 and the output signal of the second control system 30. . Then, the comparison selector 35 selects the larger one of the output of the first control system 29 and the output of the second control system 30 and outputs it to the reheater outlet damper 15.

第6の実施の形態によれば、第2制御系30の出力信号が大きい場合には、減温器スプレー水流量制御が動作し、再熱器出口ダンパ制御と再熱器出口ダンパ制御との協調制御が比較選択器35により選択されるので、再熱器出口ダンパ15による減温効果をより早く動作させることができる。これにより、減温器スプレー水流量調節弁17の開度を抑え、スプレー水の流量を少なくすることになり、ボイラの効率の低下を防ぐことができる。   According to the sixth embodiment, when the output signal of the second control system 30 is large, the temperature reducer spray water flow rate control is operated, and the reheater outlet damper control and the reheater outlet damper control are performed. Since cooperative control is selected by the comparison selector 35, the temperature reduction effect by the reheater outlet damper 15 can be operated more quickly. Thereby, the opening degree of the desuperheater spray water flow rate adjustment valve 17 is suppressed, the flow rate of the spray water is reduced, and a decrease in boiler efficiency can be prevented.

(第7の実施の形態)
図7は本発明の第7の実施の形態に係わるボイラ再熱蒸気温度制御装置の構成図である。この第7の実施の形態は、図2に示した第2の実施の形態に対し、第1制御系29の出力と第2制御系30の出力とのうち大きい方を選択して再熱器出口ダンパに出力する比較選択器35を設け、切換器32は、比較器31の比較結果に基づき、過熱器出口温度T1が再熱器出口温度設定値Tr1にバイアス値Tbを加えた値以下のときは第1制御系29の出力を選択し、過熱器出口温度T1が再熱器出口温度設定値Tr1にバイアス値Tbを加えた値以下でないときは比較選択器35の出力を選択して再熱器出口ダンパ35に出力するようにしたものである。図2と同一要素には同一符号を付し重複する説明を省略する。
(Seventh embodiment)
FIG. 7 is a configuration diagram of a boiler reheat steam temperature control device according to the seventh embodiment of the present invention. The seventh embodiment selects a larger one of the output of the first control system 29 and the output of the second control system 30 from the second embodiment shown in FIG. A comparison selector 35 that outputs to the outlet damper is provided, and the switching unit 32 is configured so that the superheater outlet temperature T1 is equal to or less than the value obtained by adding the bias value Tb to the reheater outlet temperature setting value Tr1 based on the comparison result of the comparator 31. When the output of the first control system 29 is selected, when the superheater outlet temperature T1 is not less than or equal to the reheater outlet temperature set value Tr1 plus the bias value Tb, the output of the comparison selector 35 is selected and restarted. This is output to the heater outlet damper 35. The same elements as those in FIG. 2 are denoted by the same reference numerals, and redundant description is omitted.

図7において、再熱器出口ダンパ制御部19の第1制御系29は、再熱器出口温度設定値Tr1と過熱器出口温度T1との偏差ΔT1を減算器21で求め、PID制御器22にて制御演算して再熱器出口ダンパ15を制御する。また、再熱器出口ダンパ制御部19の第2制御系30は、PID制御器25からの減温器スプレー水流量調節弁17の開度要求値Hとの偏差ΔHを減算器27により演算し、PID制御器28により、減温器スプレー水流量調節弁17の開度指令がゼロになるように再熱器出口ダンパ15の開度を調節する。   In FIG. 7, the first control system 29 of the reheater outlet damper control unit 19 obtains a deviation ΔT1 between the reheater outlet temperature set value Tr1 and the superheater outlet temperature T1 by the subtractor 21, and sends it to the PID controller 22. The reheater outlet damper 15 is controlled by performing control calculation. Further, the second control system 30 of the reheater outlet damper controller 19 calculates a deviation ΔH from the required opening degree H of the desuperheater spray water flow rate control valve 17 from the PID controller 25 by the subtractor 27. The opening degree of the reheater outlet damper 15 is adjusted by the PID controller 28 so that the opening degree command of the desuperheater spray water flow rate adjustment valve 17 becomes zero.

再熱器出口温度設定値Tr1とバイアス値Tbとを加算器23で加算した値(Tr1+Tb)と過熱器出口温度T1との偏差(Tr1+Tb−T1)を減算器24により演算し、その偏差ΔT2を比較器31で比較する。そして、過熱器出口温度T1の方が加算値(Tr1+Tb)より大きい場合には、比較選択器35の出力信号が選択される。   A subtractor 24 calculates a deviation (Tr1 + Tb−T1) between the value (Tr1 + Tb) obtained by adding the reheater outlet temperature set value Tr1 and the bias value Tb by the adder 23 and the superheater outlet temperature T1, and the deviation ΔT2 is calculated. Comparison is made by the comparator 31. When the superheater outlet temperature T1 is larger than the added value (Tr1 + Tb), the output signal of the comparison selector 35 is selected.

過熱器出口温度T1が加算値(Tr1+Tb)より大きい場合には、減温器スプレー水流量制御が動作する。このため、再熱器出口ダンパ制御と減温器スプレー水流量制御との協調制御となり、その場合の再熱器出口ダンパ制御の要求値は、第1制御系29の出力と第2制御系30の出力とのうち大きい方である。一方、過熱器出口温度T1が加算値(Tr1+Tb)より小さい場合には、減温器スプレー水流量制御が動作しない。このため、切換器32により第1制御系29による再熱器出口ダンパ制御が選択される。   When the superheater outlet temperature T1 is larger than the added value (Tr1 + Tb), the temperature reducer spray water flow rate control is operated. For this reason, it becomes cooperative control with reheater exit damper control and desuperheater spray water flow rate control, and the required value of reheater exit damper control in that case is the output of the 1st control system 29, and the 2nd control system 30 Whichever is greater. On the other hand, when the superheater outlet temperature T1 is smaller than the added value (Tr1 + Tb), the temperature reducer spray water flow rate control does not operate. For this reason, the reheater outlet damper control by the first control system 29 is selected by the switch 32.

第7の実施の形態によれば、過熱器出口温度T1が加算値(Tr1+Tb)より小さい場合は第1制御系29による再熱器出口ダンパ制御を行い、過熱器出口温度T1が加算値(Tr1+Tb)より大きい場合は、第2制御系30による再熱器出口ダンパ制御の出力信号または第1制御系29の再熱器出口ダンパ制御の出力信号のいずれか大きい方を比較選択器35で選択して、減温器スプレー水流量制御との協調制御となるので、スプレー水流量が最小となるように制御でき、ボイラの効率の低下を防ぐことができる。   According to the seventh embodiment, when the superheater outlet temperature T1 is smaller than the addition value (Tr1 + Tb), the reheater outlet damper control is performed by the first control system 29, and the superheater outlet temperature T1 is the addition value (Tr1 + Tb). ), The output signal of the reheater outlet damper control by the second control system 30 or the output signal of the reheater outlet damper control of the first control system 29 is selected by the comparison selector 35, whichever is larger. Therefore, since it is coordinated control with the desuperheater spray water flow rate control, it is possible to control the spray water flow rate to be minimum, and to prevent a decrease in boiler efficiency.

(第8の実施の形態)
図8は本発明の第8の実施の形態に係わるボイラ再熱蒸気温度制御装置の構成図である。この第8の実施の形態は、図2に示した第2の実施の形態に対し、比較器31に代えて切換判定部36を設け、切換器32は切換判定器36の出力に基づいて第1制御系29の出力または第2制御系30の出力を切り換えるようにしたものである。切換判定部36は、過熱器出口温度T1が再熱器出口温度設定値Tr1にバイアス値Tbを加えた値より低い温度から蒸気温度の上昇変化を計算し、その蒸気温度上昇変化に基づいて第1制御系29から第2制御系30への切り換えの判定を行う。図2と同一要素には同一符号を付し重複する説明を省略する。
(Eighth embodiment)
FIG. 8 is a configuration diagram of a boiler reheat steam temperature control device according to the eighth embodiment of the present invention. The eighth embodiment is different from the second embodiment shown in FIG. 2 in that a switching determination unit 36 is provided instead of the comparator 31, and the switching unit 32 is based on the output of the switching determination unit 36. The output of the first control system 29 or the output of the second control system 30 is switched. The switching determination unit 36 calculates an increase in steam temperature from a temperature at which the superheater outlet temperature T1 is lower than a value obtained by adding the bias value Tb to the reheater outlet temperature set value Tr1, and based on the steam temperature increase change, The switching from the first control system 29 to the second control system 30 is determined. The same elements as those in FIG. 2 are denoted by the same reference numerals, and redundant description is omitted.

図8において、再熱器出口ダンパ制御部19の第1制御系29は、再熱器出口温度設定値Tr1と過熱器出口温度T1との偏差ΔT1を減算器21で求め、PID制御器22にて制御演算して再熱器出口ダンパ15を制御する。また、再熱器出口ダンパ制御部19の第2制御系30は、PID制御器25からの減温器スプレー水流量調節弁17の開度要求値Hとの偏差ΔHを減算器27により演算し、PID制御器28により、減温器スプレー水流量調節弁17の開度指令がゼロになるように再熱器出口ダンパ15の開度を調節する。   In FIG. 8, the first control system 29 of the reheater outlet damper control unit 19 obtains a deviation ΔT1 between the reheater outlet temperature set value Tr1 and the superheater outlet temperature T1 by the subtractor 21, and sends it to the PID controller 22. The reheater outlet damper 15 is controlled by performing control calculation. Further, the second control system 30 of the reheater outlet damper controller 19 calculates a deviation ΔH from the required opening degree H of the desuperheater spray water flow rate control valve 17 from the PID controller 25 by the subtractor 27. The opening degree of the reheater outlet damper 15 is adjusted by the PID controller 28 so that the opening degree command of the desuperheater spray water flow rate adjustment valve 17 becomes zero.

切換判定部36は第1制御系29から第2制御系30への切り換えの判定を行うものであり、再熱器出口温度設定値Tr1とバイアス値Tbとを加算器23で加算した値(Tr1+Tb)と過熱器出口温度T1との偏差(Tr1+Tb−T1)を減算器24により演算し、その結果得られる偏差ΔT2を微分器37、38で微分する。また、比較器39は過熱器出口温度T1と予め定めた設定温度とを比較し、過熱器出口温度T1が予め定めた設定温度になったとき論理値「1」を出力する。範囲付き比較器40、41は過熱器出口温度T1が予め定めた温度範囲であるときに積分器42、43の動作を許可するものである。   The switching determination unit 36 determines whether to switch from the first control system 29 to the second control system 30, and is a value obtained by adding the reheater outlet temperature set value Tr1 and the bias value Tb by the adder 23 (Tr1 + Tb ) And the superheater outlet temperature T1 (Tr1 + Tb−T1) is calculated by the subtractor 24, and the difference ΔT2 obtained as a result is differentiated by the differentiators 37 and 38. The comparator 39 compares the superheater outlet temperature T1 with a predetermined set temperature, and outputs a logical value “1” when the superheater outlet temperature T1 reaches a predetermined set temperature. The range-equipped comparators 40 and 41 permit the operation of the integrators 42 and 43 when the superheater outlet temperature T1 is within a predetermined temperature range.

いま、過熱器出口温度T1が比較器39で設定した温度より低い温度であるとする。この状態では比較器39の出力は論理値「0」である。この状態で、過熱器出口温度T1が急激に上昇し、その上昇した過熱器出口温度T1が範囲付き比較器40で設定した温度範囲であれば、微分器37の出力値が積分器42で積分され比較器44に入力される。比較器44では、その積分値と予め定めた設定値とを比較し、予め定めた設定値を超えたときは論理値「1」を出力する。   It is assumed that the superheater outlet temperature T1 is lower than the temperature set by the comparator 39. In this state, the output of the comparator 39 is a logical value “0”. In this state, if the superheater outlet temperature T1 rises rapidly and the raised superheater outlet temperature T1 is within the temperature range set by the comparator 40 with a range, the output value of the differentiator 37 is integrated by the integrator 42. And input to the comparator 44. The comparator 44 compares the integral value with a predetermined set value, and outputs a logical value “1” when the predetermined set value is exceeded.

一方、過熱器出口温度T1が比較器39で設定した温度より低い温度で、その低い温度から比較器39で設定した温度まで急上昇が継続した場合には、範囲付き比較器41で設定した温度範囲であれば、微分器38の出力値が積分器43で積分され、比較器45は、その積分値と予め定めた設定値とを比較し、予め定めた設定値を超えたときは論理値「1」を出力する。   On the other hand, when the superheater outlet temperature T1 is lower than the temperature set by the comparator 39 and continues to rise rapidly from the low temperature to the temperature set by the comparator 39, the temperature range set by the comparator 41 with range is set. If so, the output value of the differentiator 38 is integrated by the integrator 43, and the comparator 45 compares the integrated value with a predetermined set value. When the predetermined set value is exceeded, the logical value “ 1 "is output.

選択器46は、過熱器出口温度T1が急激に上昇した場合には比較器44を選択し、比較器39で設定した温度まで急上昇が継続した場合には比較器45を選択し、比較器39で設定した温度まで急激な温度上昇がない場合には比較器39を選択する。   The selector 46 selects the comparator 44 when the superheater outlet temperature T1 rapidly increases, and selects the comparator 45 when the rapid increase continues to the temperature set by the comparator 39. The comparator 39 is selected when there is no rapid temperature rise up to the temperature set in.

過熱器出口温度T1が上昇すると減温器スプレー水流量制御が動作するため、選択器46により、第2制御系30が選択され、減温器スプレー水流量制御部20による減温器スプレー水流量制御と再熱器出口ダンパ制御との協調制御が行われる。これにより、減温器スプレー水流量調節弁17の開度を抑え、スプレー水の流量を少なくすることになり、ボイラ効率の低下を防ぐことができる。   When the superheater outlet temperature T1 rises, the desuperheater spray water flow rate control is operated, so that the second control system 30 is selected by the selector 46 and the desuperheater spray water flow rate control unit 20 performs the desuperheater spray water flow rate control. Coordinated control between control and reheater outlet damper control is performed. Thereby, the opening degree of the desuperheater spray water flow rate control valve 17 is suppressed, the flow rate of the spray water is reduced, and a decrease in boiler efficiency can be prevented.

また、過熱器出口温度T1が比較器39で設定した温度より低く、また設定温度まで急激な温度上昇がない場合には、減温器スプレー水流量制御が動作しないため、選択器46により第1制御系29による再熱器出口ダンパ制御が選択されボイラ効率の低下を防ぐことができる。   In addition, when the superheater outlet temperature T1 is lower than the temperature set by the comparator 39 and there is no rapid temperature rise to the set temperature, the depressurizer spray water flow rate control does not operate, and therefore the selector 46 performs the first operation. The reheater outlet damper control by the control system 29 is selected, so that it is possible to prevent a decrease in boiler efficiency.

第8の実施の形態によれば、第1制御系29による再熱器出口ダンパ制御と、第2制御系による再熱器出口ダンパ制御と減温器スプレー水流量制御との協調制御を切り換える機能を持つので、スプレー水流量が最小となるように制御でき、ボイラ効率の低下を防ぐことができる。   According to the eighth embodiment, a function of switching cooperative control between reheater outlet damper control by the first control system 29, reheater outlet damper control by the second control system, and desuperheater spray water flow control. Therefore, it is possible to control the flow rate of the spray water to be minimum, and it is possible to prevent a decrease in boiler efficiency.

本発明の第1の実施の形態に係わるボイラ再熱蒸気温度制御装置の構成図。The block diagram of the boiler reheat steam temperature control apparatus concerning the 1st Embodiment of this invention. 本発明の第2の実施の形態に係わるボイラ再熱蒸気温度制御装置の構成図。The block diagram of the boiler reheat steam temperature control apparatus concerning the 2nd Embodiment of this invention. 本発明の第3の実施の形態に係わるボイラ再熱蒸気温度制御装置の構成図。The block diagram of the boiler reheat steam temperature control apparatus concerning the 3rd Embodiment of this invention. 本発明の第4の実施の形態に係わるボイラ再熱蒸気温度制御装置の構成図。The block diagram of the boiler reheat steam temperature control apparatus concerning the 4th Embodiment of this invention. 本発明の第5の実施の形態に係わるボイラ再熱蒸気温度制御装置の構成図。The block diagram of the boiler reheat steam temperature control apparatus concerning the 5th Embodiment of this invention. 本発明の第6の実施の形態に係わるボイラ再熱蒸気温度制御装置の構成図。The block diagram of the boiler reheat steam temperature control apparatus concerning the 6th Embodiment of this invention. 本発明の第7の実施の形態に係わるボイラ再熱蒸気温度制御装置の構成図。The block diagram of the boiler reheat steam temperature control apparatus concerning the 7th Embodiment of this invention. 本発明の第8の実施の形態に係わるボイラ再熱蒸気温度制御装置の構成図。The block diagram of the boiler reheat steam temperature control apparatus concerning the 8th Embodiment of this invention. 従来例による再熱蒸気温度制御装置の構成図。The block diagram of the reheat steam temperature control apparatus by a prior art example.

符号の説明Explanation of symbols

11…過熱器、12…減温器、13…高圧タービン、14…再熱器、15…再熱器出口ダンパ、16…低圧タービン、17…スプレー水流量調整弁、18…ボイラ再熱蒸気温度制御装置、19…再熱器出口ダンパ制御部、20…減温器スプレー水流量制御部、21…減算器、22…PID制御器、23…加算器、24…減算器、25…PID制御器、26…開度制限器、27…減算器、28…PID制御器、29…第1制御系、30…第2制御系、31…比較器、32…切換器、33…ゲート回路、34…関数発生器、35…比較選択器、36…切換判定部 DESCRIPTION OF SYMBOLS 11 ... Superheater, 12 ... Temperature reducer, 13 ... High pressure turbine, 14 ... Reheater, 15 ... Reheater exit damper, 16 ... Low pressure turbine, 17 ... Spray water flow control valve, 18 ... Boiler reheat steam temperature Control unit, 19 ... reheater outlet damper control unit, 20 ... desuperheater spray water flow rate control unit, 21 ... subtractor, 22 ... PID controller, 23 ... adder, 24 ... subtractor, 25 ... PID controller , 26 ... Opening limiter, 27 ... Subtractor, 28 ... PID controller, 29 ... First control system, 30 ... Second control system, 31 ... Comparator, 32 ... Switch, 33 ... Gate circuit, 34 ... Function generator, 35... Comparison selector, 36.

Claims (9)

ボイラの過熱器の出口温度と再熱器の出口温度設定値との偏差に基づいて、再熱器出口ダンパと減温器スプレー水流量調節弁とを用いてボイラの再熱器の温度制御を行うボイラ再熱蒸気温度制御装置において、前記減温器スプレー水流量調節弁により減温器スプレー水流量を調節して再熱器出口蒸気温度を設定値に制御する減温器スプレー水流量制御部と、前記減温器スプレー水流量調節弁の開度指令をゼロにするように前記再熱器出口ダンパの開度を調節して再熱器出口蒸気温度を設定値に制御する再熱器出口ダンパ制御部とを備えたことを特徴とするボイラ再熱蒸気温度制御装置。   Based on the deviation between the boiler superheater outlet temperature and the reheater outlet temperature setpoint, the reheater outlet damper and desuperheater spray water flow control valve are used to control the temperature of the boiler reheater. In the boiler reheat steam temperature control device to be performed, a desuperheater spray water flow rate control unit that controls the reheater outlet steam temperature to a set value by adjusting the desuperheater spray water flow rate by the desuperheater spray water flow rate control valve And a reheater outlet that controls the reheater outlet steam temperature to a set value by adjusting the opening of the reheater outlet damper so that the opening command of the desuperheater spray water flow control valve becomes zero A boiler reheat steam temperature control device comprising a damper control unit. ボイラの過熱器の出口温度と再熱器の出口温度設定値との偏差に基づいて、再熱器出口ダンパと減温器スプレー水流量調節弁とを用いてボイラの再熱器の温度制御を行うボイラ再熱蒸気温度制御装置において、前記減温器スプレー水流量調節弁により減温器スプレー水流量を調節して再熱器出口蒸気温度を設定値に制御する減温器スプレー水流量制御部と、前記再熱器出口ダンパの開度を調節して再熱器出口蒸気温度を設定値に制御する再熱器出口ダンパ制御部とを備え、前記再熱器出口ダンパ制御部は、過熱器出口温度が再熱器出口温度設定値になるように再熱器出口ダンパの開度を調節する第1制御系と、前記減温器スプレー水流量調節弁の開度指令をゼロにするように前記再熱器出口ダンパの開度を調節する第2制御系と、過熱器出口温度が再熱器出口温度設定値にバイアス値を加えた値以下か否かを判定する比較器と、前記比較器の比較結果が以下の場合には第1制御系の出力を選択し以下でないときは第2制御系の出力を選択する切換器とを備えたことを特徴とするボイラ再熱蒸気温度制御装置。   Based on the deviation between the boiler superheater outlet temperature and the reheater outlet temperature setpoint, the reheater outlet damper and desuperheater spray water flow control valve are used to control the temperature of the boiler reheater. In the boiler reheat steam temperature control device to be performed, a desuperheater spray water flow rate control unit that controls the reheater outlet steam temperature to a set value by adjusting the desuperheater spray water flow rate by the desuperheater spray water flow rate control valve And a reheater outlet damper control unit that controls the reheater outlet steam temperature to a set value by adjusting the opening of the reheater outlet damper, and the reheater outlet damper control unit includes a superheater. The first control system for adjusting the opening degree of the reheater outlet damper so that the outlet temperature becomes the reheater outlet temperature set value, and the opening degree command of the desuperheater spray water flow rate control valve to be zero A second control system for adjusting the opening degree of the reheater outlet damper, and a superheater outlet; A comparator for determining whether the degree is equal to or less than a value obtained by adding a bias value to the reheater outlet temperature set value, and if the comparison result of the comparator is as follows, the output of the first control system is selected and is not less than A boiler reheat steam temperature control device comprising a switch for selecting the output of the second control system. 前記第1制御系と前記第2制御系との切換を手動で選択できるようにしたことを特徴とする請求項2記載のボイラ再熱蒸気温度制御装置。   3. The boiler reheat steam temperature control device according to claim 2, wherein switching between the first control system and the second control system can be manually selected. 前記再熱器出口ダンパ制御部のゲインを再熱器出口温度設定値と過熱器出口温度との偏差によって可変としたことを特徴とする請求項1記載のボイラ再熱蒸気温度制御装置。   The boiler reheat steam temperature control device according to claim 1, wherein the gain of the reheater outlet damper control unit is variable depending on a deviation between a reheater outlet temperature set value and a superheater outlet temperature. 前記再熱器出口ダンパ制御部の第2制御系のゲインを再熱器出口温度設定値にバイアス値を加算した加算値と過熱器出口温度との偏差によって可変とすることを特徴とする請求項2記載のボイラ再熱蒸気温度制御装置。   The gain of the second control system of the reheater outlet damper control unit is variable depending on a deviation between an addition value obtained by adding a bias value to a reheater outlet temperature setting value and a superheater outlet temperature. The boiler reheat steam temperature control device according to 2. 前記比較器及び前記切換器に代えて、前記第1制御系の出力と前記第2制御系の出力とのうち大きい方を選択して再熱器出口ダンパに出力する比較選択器を設けたことを特徴とする請求項2記載のボイラ再熱蒸気温度制御装置。   In place of the comparator and the switch, a comparison selector that selects the larger one of the output of the first control system and the output of the second control system and outputs it to the reheater outlet damper is provided. The boiler reheat steam temperature control device according to claim 2. 前記第1制御系の出力と前記第2制御系の出力とのうち大きい方を選択して再熱器出口ダンパに出力する比較選択器を設け、前記切換器は、前記比較器の比較結果に基づき、過熱器出口温度が再熱器出口温度設定値にバイアス値を加えた値以下のときは第1制御系の出力を選択し、過熱器出口温度が再熱器出口温度設定値にバイアス値を加えた値以下でないときは前記比較選択器の出力を選択して前記再熱器出口ダンパに出力することを特徴とする請求項2記載のボイラ再熱蒸気温度制御装置。 A comparison selector is provided for selecting a larger one of the output of the first control system and the output of the second control system and outputting the selected one to the reheater outlet damper. Therefore, when the superheater outlet temperature is equal to or less than the value obtained by adding the bias value to the reheater outlet temperature set value, the output of the first control system is selected, and the superheater outlet temperature is set to the reheater outlet temperature set value 3. The boiler reheat steam temperature control device according to claim 2, wherein the output of the comparison selector is selected and output to the reheater outlet damper when the value is not equal to or less than the value obtained by adding the value of 1. 前記再熱器出口ダンパ制御部は、前記比較器に代えて、過熱器出口温度が再熱器出口温度設定値にバイアス値を加えた値より低い温度から蒸気温度の上昇変化を計算し、その蒸気温度上昇変化に基づいて前記第1制御系から前記第2制御系への切り換え判定する切換判定部を備え、前記切換器は前記切換判定器の出力に基づいて第1制御系の出力または第2制御系の出力を切り換えることを特徴とする請求項2記載のボイラ再熱蒸気温度制御装置。   The reheater outlet damper control unit calculates, in place of the comparator, a rise in steam temperature from a temperature at which the superheater outlet temperature is lower than a value obtained by adding a bias value to the reheater outlet temperature set value, A switching determination unit configured to determine switching from the first control system to the second control system based on a change in steam temperature, and the switching unit outputs or outputs the first control system based on the output of the switching determination unit; The boiler reheat steam temperature control device according to claim 2, wherein the output of the two control system is switched. ボイラの過熱器の出口温度と再熱器の出口温度設定値との偏差に基づいて、再熱器出口ダンパと減温器スプレー水流量調節弁とを用いてボイラの再熱器の温度制御を行うボイラ再熱蒸気温度制御方法において、前記減温器スプレー水流量調節弁により減温器スプレー水流量を調節して再熱器出口蒸気温度を設定値に減温器スプレー水流量制御するとともに、前記減温器スプレー水流量調節弁の開度指令をゼロにするように前記再熱器出口ダンパの開度を調節して再熱器出口蒸気温度を設定値に再熱器出口ダンパ制御することを特徴とするボイラ再熱蒸気温度制御方法。   Based on the deviation between the boiler superheater outlet temperature and the reheater outlet temperature setpoint, the reheater outlet damper and desuperheater spray water flow control valve are used to control the temperature of the boiler reheater. In the boiler reheat steam temperature control method to be performed, the desuperheater spray water flow rate is adjusted by the desuperheater spray water flow rate control valve, and the reheater outlet steam temperature is controlled to the set value, and the desuperheater spray water flow rate is controlled. Reheater outlet damper temperature is controlled to a set value by adjusting the opening degree of the reheater outlet damper so that the opening degree command of the desuperheater spray water flow control valve is zero. The boiler reheat steam temperature control method characterized by this.
JP2005328314A 2005-11-14 2005-11-14 Boiler reheating steam temperature control device and method Pending JP2007132630A (en)

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Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN102588947A (en) * 2012-02-29 2012-07-18 哈尔滨锅炉厂有限责任公司 Temperature reducer of 350MW tangential firing supercritical boiler reheater and temperature reducing method of temperature reducer
CN114484408A (en) * 2022-03-11 2022-05-13 西安西热锅炉环保工程有限公司 Control system and method for mixed type dead steam recoverer of thermal power plant

Cited By (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN102588947A (en) * 2012-02-29 2012-07-18 哈尔滨锅炉厂有限责任公司 Temperature reducer of 350MW tangential firing supercritical boiler reheater and temperature reducing method of temperature reducer
CN102588947B (en) * 2012-02-29 2016-02-10 哈尔滨锅炉厂有限责任公司 350MW tangential firing super critical boiler reheater and desuperheat method
CN114484408A (en) * 2022-03-11 2022-05-13 西安西热锅炉环保工程有限公司 Control system and method for mixed type dead steam recoverer of thermal power plant
CN114484408B (en) * 2022-03-11 2024-01-19 西安西热锅炉环保工程有限公司 Control system and method for mixed type exhaust steam recoverer of thermal power plant

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