JPH0979504A - Cleaning method for exhaust heat recovery boiler - Google Patents

Cleaning method for exhaust heat recovery boiler

Info

Publication number
JPH0979504A
JPH0979504A JP24110195A JP24110195A JPH0979504A JP H0979504 A JPH0979504 A JP H0979504A JP 24110195 A JP24110195 A JP 24110195A JP 24110195 A JP24110195 A JP 24110195A JP H0979504 A JPH0979504 A JP H0979504A
Authority
JP
Japan
Prior art keywords
steam
cleaning
heat recovery
recovery boiler
drum
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Pending
Application number
JP24110195A
Other languages
Japanese (ja)
Inventor
Toshinori Shigenaka
利則 重中
Hiroshi Nishimura
洋 西村
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Mitsubishi Power Ltd
Original Assignee
Babcock Hitachi KK
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Babcock Hitachi KK filed Critical Babcock Hitachi KK
Priority to JP24110195A priority Critical patent/JPH0979504A/en
Publication of JPH0979504A publication Critical patent/JPH0979504A/en
Pending legal-status Critical Current

Links

Classifications

    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F22STEAM GENERATION
    • F22BMETHODS OF STEAM GENERATION; STEAM BOILERS
    • F22B37/00Component parts or details of steam boilers
    • F22B37/02Component parts or details of steam boilers applicable to more than one kind or type of steam boiler
    • F22B37/48Devices for removing water, salt, or sludge from boilers; Arrangements of cleaning apparatus in boilers; Combinations thereof with boilers
    • F22B37/486Devices for removing water, salt, or sludge from boilers
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F01MACHINES OR ENGINES IN GENERAL; ENGINE PLANTS IN GENERAL; STEAM ENGINES
    • F01KSTEAM ENGINE PLANTS; STEAM ACCUMULATORS; ENGINE PLANTS NOT OTHERWISE PROVIDED FOR; ENGINES USING SPECIAL WORKING FLUIDS OR CYCLES
    • F01K23/00Plants characterised by more than one engine delivering power external to the plant, the engines being driven by different fluids
    • F01K23/02Plants characterised by more than one engine delivering power external to the plant, the engines being driven by different fluids the engine cycles being thermally coupled
    • F01K23/06Plants characterised by more than one engine delivering power external to the plant, the engines being driven by different fluids the engine cycles being thermally coupled combustion heat from one cycle heating the fluid in another cycle
    • F01K23/10Plants characterised by more than one engine delivering power external to the plant, the engines being driven by different fluids the engine cycles being thermally coupled combustion heat from one cycle heating the fluid in another cycle with exhaust fluid of one cycle heating the fluid in another cycle
    • F01K23/106Plants characterised by more than one engine delivering power external to the plant, the engines being driven by different fluids the engine cycles being thermally coupled combustion heat from one cycle heating the fluid in another cycle with exhaust fluid of one cycle heating the fluid in another cycle with water evaporated or preheated at different pressures in exhaust boiler
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02EREDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
    • Y02E20/00Combustion technologies with mitigation potential
    • Y02E20/16Combined cycle power plant [CCPP], or combined cycle gas turbine [CCGT]

Abstract

PROBLEM TO BE SOLVED: To provide a method for cleaning an economic exhaust heat recovery boiler by reducing a temporary facility. SOLUTION: Degreasing agent such as sodium hydroxide of a specified amount is introduced from the manholes of a high-pressure drum 10 and a low- pressure drum 9. Thereafter, a gas turbine 1 is started, and a load operation of a no-load or more is executed. A high-pressure evaporator 5 and a low- pressure evaporator 7 are heated by this operation to generate steams, which are mutually circulated via the drum 9, a low-pressure downflow tube 9a and the generator 7 at the drum 9 side, and via the drum 10, a high-pressure downflow tube 10 and the generator 5 at the drum 10 side. The agent is circulated via the generators 5, 7 and the drums 9, 10 to degrease it by the circulating operation.

Description

【発明の詳細な説明】Detailed Description of the Invention

【0001】[0001]

【発明の属する技術分野】本発明は、排熱回収ボイラの
化学洗浄方法に関する。
TECHNICAL FIELD The present invention relates to a chemical cleaning method for an exhaust heat recovery boiler.

【0002】[0002]

【従来の技術】高効率発電および中間負荷運用に最適な
プラントとして、最近複合発電プラントが注目されてい
る。このプラントは、ガスタービンによる発電を行うと
ともに、このガスタービンから排出される排ガスの熱を
回収する排熱回収ボイラを備え、排熱回収ボイラにおい
て発生した蒸気で蒸気タービンを駆動して発電するもの
である。このような排熱回収ボイラの例を図1により説
明する。
2. Description of the Related Art Combined power plants have recently attracted attention as plants most suitable for high-efficiency power generation and intermediate load operation. This plant generates electricity using a gas turbine, and has an exhaust heat recovery boiler that recovers the heat of the exhaust gas discharged from the gas turbine.The steam generated by the exhaust heat recovery boiler drives a steam turbine to generate power. It is. An example of such an exhaust heat recovery boiler will be described with reference to FIG.

【0003】図1は複合発電プラントの系統図である。
複合発電プラントはガスタービン1と該ガスタービン1
により駆動される発電機2とガスタービン1の排ガスG
を導入してその熱を回収する排熱回収ボイラ3および排
熱回収ボイラ3からの蒸気により駆動される蒸気タービ
ン12などから構成されている。
FIG. 1 is a system diagram of an integrated power plant.
The combined cycle power plant includes a gas turbine 1 and the gas turbine 1.
Exhaust gas G of generator 2 and gas turbine 1 driven by
And a steam turbine 12 driven by steam from the exhaust heat recovery boiler 3 and the like.

【0004】排熱回収ボイラ3は過熱器4、高圧蒸発器
5、高圧節炭器6、低圧蒸発器7、低圧節炭器8、低圧
ドラム9、高圧ドラム10等で構成されている。排熱回
収ボイラ3の過熱器4からの蒸気により駆動される蒸気
タービン12は発電機2に連結されている。蒸気タービ
ン12から排出される蒸気は復水器13で復水され、復
水ポンプ14により復水Wは低圧節炭器8に供給され
る。低圧節炭器8の出口の加熱された給水はボイラ移送
ポンプ15により高圧節炭器6に導かれると共に流量調
整弁16を経由して低圧節炭器8への給水に混合され
る。
The exhaust heat recovery boiler 3 comprises a superheater 4, a high-pressure evaporator 5, a high-pressure economizer 6, a low-pressure evaporator 7, a low-pressure economizer 8, a low-pressure drum 9 and a high-pressure drum 10. The steam turbine 12 driven by the steam from the superheater 4 of the exhaust heat recovery boiler 3 is connected to the generator 2. The steam discharged from the steam turbine 12 is condensed by the condenser 13, and the condensed water W is supplied to the low pressure economizer 8 by the condensate pump 14. The heated feed water at the outlet of the low-pressure economizer 8 is introduced into the high-pressure economizer 6 by the boiler transfer pump 15 and is mixed with the feedwater to the low-pressure economizer 8 via the flow rate adjusting valve 16.

【0005】高圧蒸発器5、高圧節炭器6、低圧蒸発器
7および低圧節炭器8のドレンは各ドレン配管20〜2
3を通してブロータンク17へ排出され、ここに一旦溜
められるとともに、ブロータンク17をオーバーフロー
したドレンは排水配管24を通し、減温器18において
所内用水25により規定温度(約60℃)に減温され、
ピット19へ排出される。
The drains of the high-pressure evaporator 5, the high-pressure economizer 6, the low-pressure evaporator 7 and the low-pressure economizer 8 are drain pipes 20 to 2 respectively.
3 is discharged to the blow tank 17 and temporarily stored there, and the drain overflowing the blow tank 17 is passed through the drainage pipe 24 and is cooled to a specified temperature (about 60 ° C.) by the in-house water 25 in the desuperheater 18. ,
It is discharged to pit 19.

【0006】また、高圧タービンバイパス配管26、低
圧タービンバイパス配管27は排熱回収ボイラ3で生成
した蒸気が蒸気タービン12で受け入れられない場合
に、復水器13の方へ逃がすための配管である。
Further, the high-pressure turbine bypass pipe 26 and the low-pressure turbine bypass pipe 27 are pipes for allowing the steam generated in the exhaust heat recovery boiler 3 to escape to the condenser 13 when the steam turbine 12 cannot receive the steam. .

【0007】[0007]

【発明が解決しようとする課題】上記複合発電プラント
は良く知られているので、その動作の説明は省略する
が、複合発電プラント用排熱回収ボイラ3の場合、ガス
タービン1の排ガス温度が約600℃と比較的低温であ
るため、高圧蒸発器5などの各伝熱管群の熱負荷(単位
伝熱面積当りの熱吸収量:単位kcal/m2h)は小
さい。したがって、管内面のスケール生成速度も小さく
(通常、熱負荷の1〜2乗に比例する。)、スケールに
よる管の過熱、破損が生じないため、排熱回収ボイラ3
の管内面の化学洗浄として塩酸などを使った酸洗は実施
されていない。
Since the above combined power generation plant is well known, the description of its operation will be omitted, but in the case of the exhaust heat recovery boiler 3 for the combined power generation plant, the exhaust gas temperature of the gas turbine 1 is about Since the temperature is relatively low at 600 ° C., the heat load (heat absorption amount per unit heat transfer area: unit kcal / m 2 h) of each heat transfer tube group such as the high-pressure evaporator 5 is small. Therefore, the scale generation rate on the inner surface of the pipe is also small (usually proportional to the heat load to the 1st power to the 2nd power), and the pipe is not overheated or damaged by the scale.
No acid pickling using hydrochloric acid, etc., has been carried out for the chemical cleaning of the inner surface of the pipe.

【0008】一方、排熱回収ボイラ3の製作時には機械
油などの油脂分を使用するため、製作後の管内面に油脂
分が残存している。管内面に油脂分があると、高圧ドラ
ム10または低圧ドラム9内でホーミング(泡立ち)が
発生し、キャリーオーバー(ドラム10、9からの流
出)を増加させたり、管内面で酸化鉄などの腐食生成物
の元凶になったりするので、油脂分を除去する水酸化ナ
トリウムなどを使った脱脂洗浄は実施している。
On the other hand, since oil and fat such as machine oil is used when the exhaust heat recovery boiler 3 is manufactured, the oil and fat remains on the inner surface of the pipe after manufacturing. If oil and fat are present on the inner surface of the pipe, homing (foaming) occurs in the high-pressure drum 10 or the low-pressure drum 9 to increase carryover (outflow from the drums 10 and 9) and corrosion of iron oxide etc. on the inner surface of the pipe. Since it may be a source of the product, degreasing cleaning using sodium hydroxide etc. to remove oil and fat is carried out.

【0009】脱脂洗浄の場合、水酸化ナトリウムなどの
薬品の脱脂効果を上げるため約80℃以上に加温する必
要がある。この場合、従来は図6に示すように、高圧節
炭器6や低圧節炭器8に薬品を含んだ注水用仮配管30
を接続し、高圧蒸発器5や低圧蒸発器7からの排水用仮
配管31を設置し、注水用仮配管30の途中に仮設純水
タンクと薬品タンクからなる薬品投入設備32および加
温用に補助蒸気を注入するミキシングヒーター33を設
備する必要がある。また、図6に示すように、脱脂洗浄
後、洗浄液を中和処理するための仮設処理槽34(約2
00m3×2基)を設置する必要があり、多くの仮設設
備が必要になると同時に、大きな配置スペースも必要で
あり非常に不経済であった。
In the case of degreasing cleaning, it is necessary to heat to above 80 ° C. in order to enhance the degreasing effect of chemicals such as sodium hydroxide. In this case, conventionally, as shown in FIG. 6, the high-pressure economizer 6 and the low-pressure economizer 8 have a temporary water injection pipe 30 containing a chemical.
And a temporary pipe 31 for draining water from the high-pressure evaporator 5 and the low-pressure evaporator 7 is installed, and a chemical injection facility 32 including a temporary pure water tank and a chemical tank is provided in the middle of the temporary water injection pipe 30 for heating. It is necessary to provide a mixing heater 33 for injecting auxiliary steam. Further, as shown in FIG. 6, after degreasing and cleaning, a temporary processing tank 34 (about 2
00m 3 × 2 units) must be installed at the same time require more temporary facilities, large arrangement space is also necessary it was very uneconomical.

【0010】本発明の課題は、仮設設備を少なくし経済
的な排熱回収ボイラの洗浄方法を提供することにある。
An object of the present invention is to provide an economical cleaning method for an exhaust heat recovery boiler by reducing temporary equipment.

【0011】[0011]

【課題を解決するための手段】本発明の上記課題は、次
の解決手段によって達成される。すなわち、ガスタービ
ンからの排ガス流路に設けられ、節炭器を経て蒸気ドラ
ムに給水する給水系と、蒸発器の伝熱管群において排ガ
スの熱を回収して蒸気を発生させると共に、発生した蒸
気を蒸気ドラムから過熱器を経て蒸気タービンへ供給す
る蒸気系とから構成される排熱回収ボイラにおいて、洗
浄薬品を蒸気ドラムに入れ、ガスタービンを無負荷以上
の負荷運転を行って排熱回収ボイラの管内洗浄をする排
熱回収ボイラ洗浄方法、または、ガスタービンからの排
ガス流路に設けられ、節炭器を経て蒸気ドラムに給水す
る給水系と、蒸発器の伝熱管群において排ガスの熱を回
収して蒸気を発生させると共に、発生した蒸気を蒸気ド
ラムから過熱器を経て蒸気タービンへ供給する蒸気系と
から構成され、蒸気ドラムと蒸気タービンから排出され
る蒸気を復水するための復水器とを直接接続し、蒸気タ
ービンをバイパスする蒸気タービンバイパス配管にバイ
パス弁を設けた排熱回収ボイラにおいて、洗浄薬品を蒸
気ドラムに入れ、ガスタービンを無負荷以上の負荷運転
を行って該蒸気タービンバイパス弁でドラム圧力を規定
値に制御しながら、排熱回収ボイラの管内の洗浄する排
熱回収ボイラ洗浄方法である。
The above object of the present invention can be achieved by the following means. That is, in the exhaust gas flow path from the gas turbine, the water supply system that supplies water to the steam drum through the economizer and the heat transfer tube group of the evaporator to recover the heat of the exhaust gas and generate steam, and the generated steam In a heat recovery steam generator consisting of a steam system that supplies steam from a steam drum to a steam turbine through a superheater, cleaning chemicals are put in the steam drum and the gas turbine is operated under no-load or more load conditions. Exhaust heat recovery boiler cleaning method that cleans the inside of the pipe, or the water supply system that is installed in the exhaust gas flow path from the gas turbine and that supplies water to the steam drum via the economizer and the heat of the exhaust gas in the heat transfer tube group of the evaporator. It is composed of a steam system that collects steam to generate steam, and supplies the generated steam from the steam drum to the steam turbine through a superheater, and then discharges it from the steam drum and steam turbine. In a heat recovery steam generator that has a bypass valve installed in the steam turbine bypass pipe that bypasses the steam turbine, the cleaning chemicals are put in the steam drum and the gas turbine is removed. This is a method for cleaning an exhaust heat recovery boiler, in which the inside of the pipe of the exhaust heat recovery boiler is cleaned while performing a load operation above the load and controlling the drum pressure to a specified value by the steam turbine bypass valve.

【0012】本発明の上記排熱回収ボイラ洗浄方法にお
いて、洗浄後の洗浄排水の化学処理を、節炭器と蒸発器
の各ドレンを一旦溜めるブロータンクを利用して実施す
る方法、または、洗浄後の洗浄排水の化学処理を排熱回
収ボイラ系統に予め設けられている排水処理槽を利用し
て実施する方法、または洗浄後の洗浄排水の化学処理
を、ブロータンク排水管を利用して実施する方法を採用
しても良い。
In the above-mentioned exhaust heat recovery boiler cleaning method of the present invention, the cleaning waste water after cleaning is chemically treated by using a blow tank for temporarily accumulating each drain of the economizer and the evaporator, or the cleaning. Blow tank drain pipes are used for chemical treatment of post-cleaning wastewater using a wastewater treatment tank that is already installed in the exhaust heat recovery boiler system, or for post-cleaning wastewater chemical treatment. The method of doing may be adopted.

【0013】また、蒸気ドラムに薬品を投入する設備と
洗浄後の洗浄排水の化学処理のための薬品を投入する設
備を兼用しても良い。また、蒸気ドラムに入れる薬品と
して、脱脂の外に管内面にマグネタイトの保護被膜を形
成させるためにヒドラジンを入れても良い。
The facility for introducing a chemical into the steam drum may be combined with the facility for introducing a chemical for chemical treatment of the cleaning waste water after cleaning. As a chemical to be added to the steam drum, hydrazine may be added in addition to degreasing in order to form a protective film of magnetite on the inner surface of the tube.

【0014】[0014]

【発明の実施の形態】以下、本発明の複合発電プラント
用排熱回収ボイラ3の脱脂洗浄の要領を図1を用いて説
明する。まず、高圧ドラム10および低圧ドラム9のマ
ンホール35(図2に高圧ドラム10の平面図を示
す。)より、水酸化ナトリウムなどの脱脂薬品を規定量
投入し、マンホール35を閉める。その後、ガスタービ
ン1を起動し、無負荷以上の負荷運転を実施する。な
お、無負荷運転時、ガスタービン1の出口ガス温度は約
300℃であり、脱脂効果を得る温度80℃以上は充分
確保される。
BEST MODE FOR CARRYING OUT THE INVENTION The procedure for degreasing and cleaning an exhaust heat recovery boiler 3 for a combined cycle power plant according to the present invention will be described below with reference to FIG. First, the manhole 35 of the high-pressure drum 10 and the low-pressure drum 9 (a plan view of the high-pressure drum 10 is shown in FIG. 2) is charged with a specified amount of degreasing chemicals such as sodium hydroxide, and the manhole 35 is closed. After that, the gas turbine 1 is started, and a load operation of no load or more is performed. In addition, during no-load operation, the outlet gas temperature of the gas turbine 1 is about 300 ° C., and a temperature of 80 ° C. or higher at which the degreasing effect is obtained is sufficiently secured.

【0015】この運転により、高圧蒸発器5および低圧
蒸発器7は加温され、蒸気を発生するとともに低圧ドラ
ム9側では該ドラム9と低圧降水管9aと低圧蒸発器7
で、また、高圧ドラム10側では高圧ドラム10、高圧
降水管10a、高圧蒸発器5でそれぞれ自然循環運転を
行うようになる。この循環運転により薬品が蒸発器5、
7およびドラム9、10を循環して脱脂を行うものであ
る。
By this operation, the high-pressure evaporator 5 and the low-pressure evaporator 7 are heated to generate steam, and at the low-pressure drum 9 side, the drum 9, the low-pressure downcomer pipe 9a and the low-pressure evaporator 7 are generated.
On the high-pressure drum 10 side, the high-pressure drum 10, the high-pressure downcomer 10a, and the high-pressure evaporator 5 perform natural circulation operation. By this circulation operation, chemicals
7 and drums 9 and 10 are circulated for degreasing.

【0016】近年、排熱回収ボイラ3の製作時の管理が
向上したことにより、油脂量が低減(油脂濃度20〜3
0ppmが2〜3ppm)しており、過去の実績より、
排熱回収ボイラ3の管群およびドラム9、10からの溶
出油脂分のほとんどが図3に示すドラム9、10の内部
装置36に付着する油脂分であることが分かっている。
したがって、本実施例のように、高圧蒸発器5、低圧蒸
発器7、高圧ドラム10、低圧ドラム9のみの洗浄を行
えば充分である。
In recent years, the management of the exhaust heat recovery boiler 3 at the time of manufacture has been improved, so that the amount of oil and fat has been reduced (oil and oil concentration 20 to 3).
0ppm is 2-3ppm), and from the past results,
It is known that most of the oil and fats eluted from the tube group of the exhaust heat recovery boiler 3 and the drums 9 and 10 are the oils and fats attached to the internal device 36 of the drums 9 and 10 shown in FIG.
Therefore, it is sufficient to wash only the high-pressure evaporator 5, the low-pressure evaporator 7, the high-pressure drum 10, and the low-pressure drum 9 as in this embodiment.

【0017】また、脱脂薬品は不揮発性であるため、ド
ラム9、10からの発生蒸気中に薬品が含有されること
は無いので、蒸気タービン12または復水器13(ター
ビンバイパス弁28、29で、高圧ドラム10および低
圧ドラム9の圧力を規定圧に制御しながら、それぞれタ
ービンバイパス管26、27を経由して蒸気が流れる場
合)への影響も無い。
Further, since the degreasing chemicals are non-volatile, the chemicals are not contained in the steam generated from the drums 9 and 10. Therefore, the steam turbine 12 or the condenser 13 (in the turbine bypass valves 28 and 29). , When the pressures of the high-pressure drum 10 and the low-pressure drum 9 are controlled to the specified pressures, and the steam flows through the turbine bypass pipes 26 and 27, respectively.

【0018】なお、脱脂の他、管内面にマグネタイトの
保護被膜を形成させるためにヒドラジンを規定濃度以上
入れて洗浄する場合もある。
In addition to degreasing, hydrazine may be added to the inner surface of the pipe to form a protective coating on the inner surface of the pipe, and cleaning may be performed by adding hydrazine in a prescribed concentration or more.

【0019】洗浄終了後、図4に示すように、高圧蒸発
器5および低圧蒸発器7内の洗浄液をそれぞれドレン配
管20およびドレン配管22によりブロータンク17に
排出する。この場合、図4に示すようにブロータンク1
7内に中和反応処理液を薬品タンク32から注入して洗
浄液の中和処理を行う。
After the cleaning is completed, as shown in FIG. 4, the cleaning liquid in the high pressure evaporator 5 and the low pressure evaporator 7 is discharged to the blow tank 17 through the drain pipe 20 and the drain pipe 22, respectively. In this case, as shown in FIG. 4, the blow tank 1
The neutralization reaction treatment liquid is injected into the inside of the container 7 from the chemical tank 32 to neutralize the cleaning liquid.

【0020】ここで中和反応は瞬間的に起こるため、ブ
ロータンク17内での中和処理工程での問題は無い。中
和処理後、洗浄液は排水配管24を経由して減温器18
に供給し、所内用水25を用いて冷却し、ピット19へ
流す。
Since the neutralization reaction occurs instantaneously here, there is no problem in the neutralization process in the blow tank 17. After the neutralization process, the cleaning liquid passes through the drainage pipe 24 and the temperature reducer 18
It is supplied to the pit 19, cooled with on-site water 25, and then poured into the pit 19.

【0021】図5には本発明の他の実施例を示すが、ド
ラム9、10に薬品注入装置32から薬品を注入する注
入用仮設配管38とブロータンク17もしくは排水配管
24に中和処理剤を注入する配管39を兼用した場合を
示す。ドラム9、10への薬品注入は、例えば水面計4
0用の検出配管41などに行う。
FIG. 5 shows another embodiment of the present invention. The neutralizing agent for the temporary pipe 38 for injection and the blow tank 17 or the drainage pipe 24 for injecting the chemical from the chemical injection device 32 into the drums 9, 10 is shown. The case where the pipe 39 for injecting is also used is shown. For the chemical injection into the drums 9 and 10, for example, a water gauge 4
The detection pipe 41 for 0 or the like is used.

【0022】なお、上記実施例には複圧排熱回収ボイラ
3の例を用いて説明したが、圧力ドラムが1つまたは3
つ以上ある排熱回収ボイラについても当然適用できるも
のであり、また、例えば中和処理などの排水処理もブロ
ータンク17以外に、排熱回収ボイラ系統に用いられて
いる排水槽などでも排水処理は可能である。
The above embodiment has been described with reference to the example of the double pressure exhaust heat recovery boiler 3, but one or three pressure drums are used.
Of course, the present invention can also be applied to exhaust heat recovery boilers having three or more, and, for example, drainage treatment such as neutralization treatment can be performed not only in the blow tank 17 but also in drainage tanks used in the exhaust heat recovery boiler system. It is possible.

【0023】本発明によれば、脱脂洗浄に必要な温度は
ガスタービンを無負荷以上の負荷にて運転することによ
って確保され、洗浄は排熱回収ボイラの自然循環運転に
よって実施され、洗浄液の中和処理はブロータンクを利
用して行えるので、仮設設備がほとんど不要となり、そ
のため仮設設備の据付撤去の期間も約1ケ月以上短縮さ
れるなど、非常に経済的な洗浄方法を提供するものであ
る。
According to the present invention, the temperature required for degreasing cleaning is ensured by operating the gas turbine at a load of no load or more, and the cleaning is performed by the natural circulation operation of the exhaust heat recovery boiler, Since the sum treatment can be done using a blow tank, the temporary equipment is almost unnecessary, and the installation and removal period of the temporary equipment can be shortened by about one month or more, providing a very economical cleaning method. .

【図面の簡単な説明】[Brief description of drawings]

【図1】 本発明に係る一実施例の複合発電プラントの
系統図である。
FIG. 1 is a system diagram of an integrated power plant according to an embodiment of the present invention.

【図2】 図1の高圧ドラムの平面図である。FIG. 2 is a plan view of the high-pressure drum of FIG.

【図3】 図1の高圧ドラムまたは低圧ドラムの内部装
置の図である。
FIG. 3 is a view of the internal device of the high pressure drum or low pressure drum of FIG. 1.

【図4】 本発明に係る一実施例の排熱回収ボイラの排
水処理系統図である。
FIG. 4 is a wastewater treatment system diagram of an exhaust heat recovery boiler according to an embodiment of the present invention.

【図5】 本発明の他の実施例の排熱回収ボイラの排水
処理系統図である。
FIG. 5 is a wastewater treatment system diagram of an exhaust heat recovery boiler according to another embodiment of the present invention.

【図6】 従来の排熱回収ボイラのボイラ化学洗浄の系
統図である。
FIG. 6 is a system diagram of conventional boiler chemical cleaning of an exhaust heat recovery boiler.

【符号の説明】[Explanation of symbols]

1 ガスタービン 2 発電機 3 排熱回収ボイラ 4 過熱器 5 高圧蒸発器 6 高圧節炭器 7 低圧蒸発器 8 低圧節炭器 9 低圧ドラム 10 高圧ドラム 12 蒸気タービン 13 復水器 14 復水ポンプ 15 ボイラ移送
ポンプ 16 流量調整弁 17 ブロータン
ク 18 減温器 25 所内用水 26 高圧タービンバイパス配管 27 低圧タービ
ンバイパス配管 32 薬品タンク 35 マンホール 36 ドラム9、10の内部装置 38 注入用仮設
配管 39 中和処理剤注入配管 40 水面計 41 検出配管
1 Gas Turbine 2 Generator 3 Waste Heat Recovery Boiler 4 Superheater 5 High Pressure Evaporator 6 High Pressure Economizer 7 Low Pressure Evaporator 8 Low Pressure Economizer 9 Low Pressure Drum 10 High Pressure Drum 12 Steam Turbine 13 Condenser 14 Condensate Pump 15 Boiler transfer pump 16 Flow rate control valve 17 Blow tank 18 Desuperheater 25 Water for internal use 26 High pressure turbine bypass pipe 27 Low pressure turbine bypass pipe 32 Chemical tank 35 Manhole 36 Internal device of drum 9, 10 38 Temporary pipe for injection 39 Neutralizing agent Injection pipe 40 Water level gauge 41 Detection pipe

Claims (7)

【特許請求の範囲】[Claims] 【請求項1】 ガスタービンからの排ガス流路に設けら
れ、節炭器を経て蒸気ドラムに給水する給水系と、蒸発
器の伝熱管群において排ガスの熱を回収して蒸気を発生
させると共に、発生した蒸気を蒸気ドラムから過熱器を
経て蒸気タービンへ供給する蒸気系とから構成される排
熱回収ボイラにおいて、 洗浄薬品を蒸気ドラムに入れ、ガスタービンを無負荷以
上の負荷運転を行って排熱回収ボイラの管内洗浄をする
ことを特徴とする排熱回収ボイラ洗浄方法。
1. A water supply system which is provided in an exhaust gas flow path from a gas turbine and supplies water to a steam drum through a economizer, and a heat transfer tube group of an evaporator to recover heat of exhaust gas and generate steam, In an exhaust heat recovery boiler consisting of a steam system that supplies the generated steam from a steam drum to a steam turbine via a superheater, cleaning chemicals are put in the steam drum, and the gas turbine is discharged by performing a load operation of no load or more. A method for cleaning an exhaust heat recovery boiler, which comprises cleaning the inside of a heat recovery boiler.
【請求項2】 ガスタービンからの排ガス流路に設けら
れ、節炭器を経て蒸気ドラムに給水する給水系と、蒸発
器の伝熱管群において排ガスの熱を回収して蒸気を発生
させると共に、発生した蒸気を蒸気ドラムから過熱器を
経て蒸気タービンへ供給する蒸気系とから構成され、蒸
気ドラムと蒸気タービンから排出される蒸気を復水する
ための復水器とを直接接続し、蒸気タービンをバイパス
する蒸気タービンバイパス配管にバイパス弁を設けた排
熱回収ボイラにおいて、 洗浄薬品を蒸気ドラムに入れ、ガスタービンを無負荷以
上の負荷運転を行って該蒸気タービンバイパス弁でドラ
ム圧力を規定値に制御しながら、排熱回収ボイラの管内
の洗浄することを特徴とする排熱回収ボイラ洗浄方法。
2. A water supply system which is provided in an exhaust gas flow path from a gas turbine and supplies water to a steam drum through a economizer, and a heat transfer tube group of an evaporator to recover heat of exhaust gas and generate steam, It consists of a steam system that supplies the generated steam from a steam drum to a steam turbine through a superheater.The steam drum and the condenser for condensing the steam discharged from the steam turbine are directly connected to each other, and the steam turbine In an exhaust heat recovery boiler equipped with a bypass valve in the steam turbine bypass pipe that bypasses the steam turbine, the cleaning chemicals are put in the steam drum, the gas turbine is operated under no load or more, and the steam turbine bypass valve sets the drum pressure to the specified value. A method for cleaning an exhaust heat recovery boiler, characterized in that the inside of a pipe of the exhaust heat recovery boiler is cleaned while controlling the above.
【請求項3】 洗浄後の洗浄排水の化学処理を、節炭器
と蒸発器の各ドレンを一旦溜めるブロータンクを利用し
て実施することを特徴とする請求項1または2記載の排
熱回収ボイラ洗浄方法。
3. The exhaust heat recovery according to claim 1 or 2, wherein the chemical treatment of the cleaning waste water after cleaning is carried out by using a blow tank for temporarily accumulating each drain of the economizer and the evaporator. Boiler cleaning method.
【請求項4】 洗浄後の洗浄排水の化学処理を排熱回収
ボイラ系統に予め設けられている排水処理槽を利用して
実施することを特徴とする請求項1または2記載の排回
収ボイラ洗浄方法。
4. The waste recovery boiler cleaning according to claim 1 or 2, wherein the chemical treatment of the cleaning waste water after cleaning is carried out by using a waste water treatment tank provided in advance in the exhaust heat recovery boiler system. Method.
【請求項5】 洗浄後の洗浄排水の化学処理を、ブロー
タンク排水管を利用して実施することを特徴とする請求
項1または2記載の排熱回収ボイラ洗浄方法。
5. The exhaust heat recovery boiler cleaning method according to claim 1, wherein the cleaning waste water after cleaning is chemically treated by using a blow tank drain pipe.
【請求項6】 蒸気ドラムに薬品を投入する設備と洗浄
後の洗浄排水の化学処理のための薬品を投入する設備を
兼用することを特徴する請求項1または2記載の排熱回
収ボイラ洗浄方法。
6. The method for cleaning a waste heat recovery boiler according to claim 1, wherein the equipment for introducing the chemical into the steam drum and the equipment for introducing the chemical for the chemical treatment of the cleaning waste water after cleaning are used together. .
【請求項7】 蒸気ドラムに入れる薬品として、ヒドラ
ジンを入れることを特徴とする請求項1または2記載の
排熱回収ボイラ洗浄方法。
7. The exhaust heat recovery boiler cleaning method according to claim 1 or 2, wherein hydrazine is added as a chemical to be added to the steam drum.
JP24110195A 1995-09-20 1995-09-20 Cleaning method for exhaust heat recovery boiler Pending JPH0979504A (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
JP24110195A JPH0979504A (en) 1995-09-20 1995-09-20 Cleaning method for exhaust heat recovery boiler

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
JP24110195A JPH0979504A (en) 1995-09-20 1995-09-20 Cleaning method for exhaust heat recovery boiler

Publications (1)

Publication Number Publication Date
JPH0979504A true JPH0979504A (en) 1997-03-28

Family

ID=17069309

Family Applications (1)

Application Number Title Priority Date Filing Date
JP24110195A Pending JPH0979504A (en) 1995-09-20 1995-09-20 Cleaning method for exhaust heat recovery boiler

Country Status (1)

Country Link
JP (1) JPH0979504A (en)

Cited By (8)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2005068905A1 (en) * 2004-01-20 2005-07-28 Siemens Aktiengesellschaft Method and device for removing water from a steam plant
JP2009257259A (en) * 2008-04-18 2009-11-05 Mitsubishi Heavy Ind Ltd Piping installation for plant
JP2015102278A (en) * 2013-11-25 2015-06-04 三菱日立パワーシステムズ株式会社 Chemical washing method for boiler piping
JP2015105786A (en) * 2013-11-29 2015-06-08 三菱日立パワーシステムズ株式会社 Exhaust heat recovery boiler and cleaning method
JP2016059825A (en) * 2014-09-12 2016-04-25 三菱日立パワーシステムズ株式会社 Chemical liquid preparation method, chemical liquid preparation device, and chemical cleaning method
KR20180001994U (en) * 2015-09-08 2018-07-02 아틀라스 캅코 에어파워, 남로체 벤누트삽 An ORC for converting waste heat from a heat source into mechanical energy, and a cooling system using such an ORC
JP2018112400A (en) * 2018-04-19 2018-07-19 三菱日立パワーシステムズ株式会社 Waste heat collection boiler and cleaning method
US11802689B2 (en) * 2017-06-20 2023-10-31 Boyle Energy Services & Technology, Inc. Commissioning power plants

Cited By (10)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2005068905A1 (en) * 2004-01-20 2005-07-28 Siemens Aktiengesellschaft Method and device for removing water from a steam plant
US7487640B2 (en) 2004-01-20 2009-02-10 Siemens Aktiengesellschaft Method and device for removing water from a steam plant
JP2009257259A (en) * 2008-04-18 2009-11-05 Mitsubishi Heavy Ind Ltd Piping installation for plant
JP2015102278A (en) * 2013-11-25 2015-06-04 三菱日立パワーシステムズ株式会社 Chemical washing method for boiler piping
JP2015105786A (en) * 2013-11-29 2015-06-08 三菱日立パワーシステムズ株式会社 Exhaust heat recovery boiler and cleaning method
JP2016059825A (en) * 2014-09-12 2016-04-25 三菱日立パワーシステムズ株式会社 Chemical liquid preparation method, chemical liquid preparation device, and chemical cleaning method
KR20180001994U (en) * 2015-09-08 2018-07-02 아틀라스 캅코 에어파워, 남로체 벤누트삽 An ORC for converting waste heat from a heat source into mechanical energy, and a cooling system using such an ORC
US10612423B2 (en) 2015-09-08 2020-04-07 Atlas Copco Airpower, Naamloze Vennootschap ORC for transporting waste heat from a heat source into mechanical energy and cooling system making use of such an ORC
US11802689B2 (en) * 2017-06-20 2023-10-31 Boyle Energy Services & Technology, Inc. Commissioning power plants
JP2018112400A (en) * 2018-04-19 2018-07-19 三菱日立パワーシステムズ株式会社 Waste heat collection boiler and cleaning method

Similar Documents

Publication Publication Date Title
US5601657A (en) Two-step chemical cleaning process
CN105135412B (en) A kind of unit cleaning of super critical boiler
JPH0791361A (en) Device for electric generation by temperature difference
JPH0979504A (en) Cleaning method for exhaust heat recovery boiler
RU2568033C2 (en) Method of completing chemical cleaning of electric power plant
JP3643454B2 (en) Power plant boiler cleaning method
CN107101525A (en) A kind of method cleaned to power plant boiler superheater cyclic chemical
CN201916889U (en) supercritical low temperature EDTA (Ethylene Diamine Tetraacetic Acid) cleaning system for tower-type boiler in heat power plant
CN102425778A (en) Process of carrying out low-temperature chemical cleaning passivation on thermal power plant boiler by utilizing EDTA (Ethylene Diamine Tetraacetic Acid)
KR101825316B1 (en) Flash tank design
JPH11236689A (en) Water treating apparatus for power generating plant and water treatment
JP4052779B2 (en) Bath water heater
JP2003097801A (en) Water treating device and water treating method for power generating plant
US20090266076A1 (en) Condensate Polisher Circuit
JP2878707B2 (en) Storage method of feed water heater of nuclear power plant
CN209688806U (en) A kind of chemical cleaning system
JP2001033004A (en) Method of draining for waste heat recovery boiler
RU2778190C1 (en) Method for improving the energy efficiency of a steam power plant and a device for its implementation
JP6184846B2 (en) Chemical cleaning method for boiler piping
RU2166718C1 (en) Method for chemical cleaning of surface deposits of heat power equipment
JP3219741B2 (en) Condensate treatment system and condensate treatment method
JP2002055193A (en) Feed water system for neuclear power plant and its clad reducing method
JPS60223998A (en) Chemical washing of boiler
RU2045696C1 (en) System of recovery of waste heat of combustion products
JPS6044553B2 (en) Rust prevention methods and equipment for supply and condensate piping systems