JPS594661A - Heat-resistant type anti-corrosive film - Google Patents

Heat-resistant type anti-corrosive film

Info

Publication number
JPS594661A
JPS594661A JP11456882A JP11456882A JPS594661A JP S594661 A JPS594661 A JP S594661A JP 11456882 A JP11456882 A JP 11456882A JP 11456882 A JP11456882 A JP 11456882A JP S594661 A JPS594661 A JP S594661A
Authority
JP
Japan
Prior art keywords
heat
alkaline earth
earth metal
corrosion
corrosive
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
JP11456882A
Other languages
Japanese (ja)
Inventor
Kikuo Tokunaga
喜久男 徳永
Yoshio Kudo
工藤 良夫
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 Heavy Industries Ltd
Original Assignee
Mitsubishi Heavy Industries Ltd
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 Mitsubishi Heavy Industries Ltd filed Critical Mitsubishi Heavy Industries Ltd
Priority to JP11456882A priority Critical patent/JPS594661A/en
Publication of JPS594661A publication Critical patent/JPS594661A/en
Pending legal-status Critical Current

Links

Abstract

PURPOSE:To form a heat-resistant type anti-corrosive film having improved economic efficiency, corrosion resistance, and durability, by applying a mixture containing an alkaline earth metal carbonate to the surface of pipes of the high- temperature part of a heat transfer device such as a boiler for burning garbage with a silicate-based binder. CONSTITUTION:The surface 1 of pipes of the high-temperature part of a heat transfer device such as a boiler using only heavy oil for combustion, a boiler for burning garbage, etc. is coated with a mixture containing one or more carbonates of alkaline earth metal such as Mg, Ca, Ba, Be, etc. using a silicate- based binder (e.g., sodium sulicate, etc.), to form the heat-resistant type anti- corrosive film 2. EFFECT:The corrosive scale 3 is reacted with the alkaline earth metal carbonates, the voids 2a in the anti-corrosive film 2 are filled, the contact between the scale 3 and the metal 1 is prevented, and corrosion is suppressed.

Description

【発明の詳細な説明】 本発明は重油専焼ボイラ、発電用ボイラ、ソーダ回1p
(ボイラ、ゴミ焼却ボイラ等の高温部伝熱器管表面に付
着形成させる耐熱型防食被膜に関するものである。
[Detailed description of the invention] The present invention is a heavy oil-fired boiler, a power generation boiler, and a soda cycle 1p.
(This relates to a heat-resistant anti-corrosion coating that is adhered and formed on the surface of heat exchanger tubes in high-temperature parts of boilers, garbage incineration boilers, etc.)

近年重油専焼ボイラ等に於いて、  NOx対策のだめ
の燃焼法改善による火炉上部温度の上昇や脱硫装置の普
及による高硫黄燃料の採用等の要因により、高温部伝熱
器管表面に付着する燃焼灰によって高温部伝熱器管の腐
食が起こりつつある。
In recent years, in heavy oil-fired boilers, etc., combustion ash adhering to the surface of heat exchanger tubes in high-temperature areas has increased due to factors such as an increase in the temperature at the top of the furnace due to improved combustion methods for NOx countermeasures and the adoption of high-sulfur fuel due to the spread of desulfurization equipment. Corrosion of the high-temperature heat exchanger tubes is occurring due to this.

この高温部伝熱器管表面に付着する燃焼灰はV、 Na
、 8.0を主成分とする腐食性の強いv2o6−Na
2SO4系の物質である事が知らねている。ここで、高
温部とは付着燃焼灰の表面温度が200〜1000℃の
温度域である。
The combustion ash that adheres to the surface of the heat exchanger tube in the high temperature section contains V, Na
, highly corrosive v2o6-Na whose main component is 8.0
It is known that it is a 2SO4-based substance. Here, the high temperature part is a temperature range in which the surface temperature of the attached combustion ash is 200 to 1000°C.

このような付着燃焼灰による腐食対策としては周知のよ
うに大別して。
As is well known, countermeasures against corrosion caused by adhering combustion ash can be broadly classified into two types.

l)高温部伝熱器管の材質の改良 2)高温部伝熱器管表面に付着する燃焼灰の改質(低S
V燃料への転換や、燃料への防食剤の添加) 3)高温部伝熱器管の表面加工処理 等の方法が現在各方面で研究開発されつつあるが、いず
れの方法も経済性、防食性、耐久性等の点で問題がある
l) Improving the material of the high temperature section heat transfer tube 2) Improving the combustion ash adhering to the high temperature section heat transfer tube surface (low S
3) Methods for surface treatment of high-temperature heat transfer tubes are currently being researched and developed in various fields, but all methods are economically efficient and corrosion-resistant. There are problems in terms of performance, durability, etc.

本発明はこのようガ従来の方法に於ける欠点を除去する
ためになされたもので、前述の分類に従えば2)の応用
による3)の改良に関するものである。
The present invention has been made to eliminate the drawbacks of the conventional methods, and according to the above-mentioned classification, it relates to the improvement of 3) by applying 2).

すなわち9本発明はボイラ等の高温部伝熱器管表面に、
 Mg、 Ca、 Ba、 Be等のアルカリ土類金属
炭酸塩の1種以上を含有1〜だ混合物を、珪酸塩系バイ
ンダーにて付着形成させた。ことを特徴とする耐熱型防
食被膜である。
In other words, 9 The present invention has a heat exchanger tube surface in a high temperature section such as a boiler,
A mixture containing one or more alkaline earth metal carbonates such as Mg, Ca, Ba, and Be was deposited using a silicate binder. This is a heat-resistant anti-corrosion coating characterized by the following.

本発明を第1図に従って説明する。第1図に於いて、1
は高温部伝熱器管表面の金属、2は同金属1の表面に珪
酸塩系バインダ・−によって形成されたMg、 Ca、
 Ba、 Be等のアルカリ土類金属炭酸塩の1種以上
を含有した耐熱型防食被膜。
The present invention will be explained with reference to FIG. In Figure 1, 1
2 is the metal on the surface of the high-temperature heat exchanger tube, 2 is the Mg, Ca,
A heat-resistant anticorrosive coating containing one or more alkaline earth metal carbonates such as Ba and Be.

2aは同耐熱型防食被膜2の内部に存在する空隙、8は
同耐熱型防食被膜2の表面に付着する腐食性の強いV2
06− Na2804 系のスケールである。
2a is a void existing inside the heat-resistant anti-corrosion coating 2, and 8 is a highly corrosive V2 attached to the surface of the heat-resistant anti-corrosion coating 2.
06- Na2804 scale.

この第1図に於いて、2がMg、 Ca、 Ba、 B
a等のアルカリ土類金属化合物を含有しない耐熱型防食
被膜の場合、3は高温に加熱されると溶融して2Q内部
に存在する2aを浸、透しゝ、結局1の表面に到達する
。ここで後記の反応式(1)式、(2)式によって金属
表面が局部的に酸化及び硫化され、これが拡大してlと
2との境界を破壊し腐食が進行する。
In this Figure 1, 2 is Mg, Ca, Ba, B
In the case of a heat-resistant anticorrosion coating that does not contain an alkaline earth metal compound such as a, when 3 is heated to a high temperature, it melts, penetrates and penetrates 2a present inside 2Q, and eventually reaches the surface of 1. Here, the metal surface is locally oxidized and sulfided according to reaction formulas (1) and (2) described later, and this expands to destroy the boundary between 1 and 2, and corrosion progresses.

ところが、前述の2の耐熱型防食被膜にMg。However, Mg is added to the heat-resistant anti-corrosion coating mentioned above.

Ca、 Ba、 Ba等アルカリ土類金属化合物が存在
すると、第1図において8が高温に加熱されて溶融し2
の内部に存在する2aに浸透しても、3はこの2aを通
゛過する間に空隙表面」二のMg、 Ca、 Ba。
When an alkaline earth metal compound such as Ca, Ba, Ba, etc. is present, 8 is heated to a high temperature and melts as shown in Figure 1.
Even if 3 penetrates into 2a existing inside 2a, Mg, Ca, and Ba of 2 will be absorbed into the void surface while passing through 2a.

Be等のアルカリ土類金属化合物を取込み反応して9例
えばアルカリ土類金属化合物がOa化合物の場合OaO
−Vハ5 Na2804系のスケールに変化するため、
8の融点が上昇して空隙内で凝固する。
9 For example, when the alkaline earth metal compound is an Oa compound, OaO is obtained by incorporating an alkaline earth metal compound such as Be.
-Vha5 Because it changes to the Na2804 scale,
The melting point of 8 increases and solidifies within the void.

次に、 Al、 Si、 Zn等の無機質を金属表面に
付着形成させるバインダーとして、リン酸塩系及び珪酸
塩系のものが知られている。本発明者等は珪酸塩系バイ
ンダーについて、前述のアルカリ土類金属化合物をボイ
ラ等高温伝熱器管表面に付着形成させる方法を種々検討
した。その結果アルカリ土類金属の炭酸塩が珪酸塩系バ
インダー例えば珪酸ナトリウム水溶液に良く分散し、塗
布形成後の被膜の密着性、均一性、緻密性が良好である
事を見出したのである。そして、アルカL、、を類、ワ
、、)や。イ、8つ、ヶえイオ、イ、カフ。
Next, phosphate-based and silicate-based binders are known as binders that allow inorganic substances such as Al, Si, and Zn to adhere to metal surfaces. Regarding the silicate binder, the present inventors have investigated various methods for depositing the above-mentioned alkaline earth metal compound on the surface of a tube of a high-temperature heat exchanger such as a boiler. As a result, they found that the alkaline earth metal carbonate was well dispersed in a silicate binder, such as an aqueous sodium silicate solution, and that the coating after coating had good adhesion, uniformity, and density. And Arca L,, kind, Wa,,). I-eight, cuff.

シウム、硫酸力ルンウムなどは珪酸ナトリウム水溶液と
混合すると固化し、金属表面に塗布成形する事が出来な
い。
When mixed with sodium silicate aqueous solution, silium, sulfuric acid, etc. solidify and cannot be applied to metal surfaces.

以上の如く1本発明は腐食性スケールとアルカリ土類金
属炭酸塩が反応して耐熱型防食被膜中の空隙をふさぎ、
腐食性スケールと金属との接触を断つ事によって腐食を
抑制する事とアルカリ土類金属炭酸塩を金属表面(塗布
成形させる方法として珪酸塩系バインダーを用いる事を
特徴としている。
As described above, 1 the present invention reacts with corrosive scale and alkaline earth metal carbonate to close the voids in the heat-resistant anticorrosive coating,
It is characterized by suppressing corrosion by cutting off the contact between corrosive scale and metal, and by using a silicate binder as a method of coating and molding alkaline earth metal carbonate onto the metal surface.

また2本発明においてはMg、 Ca、 Ha、 Be
等のアルカリ土類金属炭酸塩にJ、 8 i、 Zn、
 Zr等の金属及びその酸化物を添加してもその効果が
ある事。
In addition, in the present invention, Mg, Ca, Ha, Be
Alkaline earth metal carbonates such as J, 8i, Zn,
Even if metals such as Zr and their oxides are added, the same effect can be obtained.

そして、 Mg、 Ca、 Ba、 Be等のアルカリ
土類金属炭酸塩としては、それらの化合物を含む石灰石
(CaO02)、白亜(0aOO3)+方解石(0a0
03 )、あられ石(CaC03)、大理石(CaC0
3)、白雲石(CaCO3・0aCO3)、菱苦土鉱(
MgC03)、毒重石(DaCO3)等の如き鉱石でも
良い事 さらに、珪酸塩系バインダーとしては珪酸ナトリウムを
はじめ、  Oa、 AI、 Zn、 Co、 Fa、
 Ba、 RO,Mg。
And, as alkaline earth metal carbonates such as Mg, Ca, Ba, Be, etc., limestone (CaO02), chalk (0aOO3) + calcite (0a0
03), aragonite (CaC03), marble (CaC0
3), dolomite (CaCO3・0aCO3), rhomboidite (
Ores such as MgC03), doxite (DaCO3), etc. may also be used.In addition, silicate binders include sodium silicate, Oa, AI, Zn, Co, Fa,
Ba, RO, Mg.

Mn、Liなどの珪酸塩及びその2a類以上を組合せた
ものでも良い事、は示うまでもない。
It goes without saying that a combination of silicates such as Mn and Li and their Class 2a or higher may also be used.

反応式 %式%(2) 但し、R:不特定の還元剤 M:金属 次に、実施例によって本発明を具体的に示す。reaction formula % formula % (2) However, R: unspecified reducing agent M: Metal Next, the present invention will be specifically illustrated by examples.

腐食事故を起した重油専焼ボイラの高温部伝熱器管に付
着していたスケールを採取し、粉砕後、この腐食性スケ
ールに第1表の崗1〜N1&18の試験片を浸漬して腐
食試験を行った。
The scale that had adhered to the high-temperature heat exchanger tube of the heavy oil-fired boiler that caused the corrosion accident was collected, and after crushing, a corrosion test was conducted by immersing the test pieces of Grades 1 to N1 & 18 in Table 1 into this corrosive scale. I did it.

伺、試験条件は、酸素濃度: 5 vo1%、炭酸ガス
濃度: 15 vo1%、亜硫酸ガス濃度:0,5vo
1%、残り窒素ガスの雰囲気とし、試験温度:650℃
、試験時間=200時間であった。
The test conditions were: oxygen concentration: 5 VO 1%, carbon dioxide concentration: 15 VO 1%, sulfur dioxide concentration: 0.5 VO.
1%, remaining nitrogen gas atmosphere, test temperature: 650℃
, test time = 200 hours.

又、試験片は20 mm X 50 mm X 5 m
mのS TBA24機を用い、耐熱型防食被膜は50w
t%の珪酸すトリウム水溶液を50 wt%、炭酸カル
シウム粉末を50wt%とじた溶液を試験片に塗布し。
Also, the test piece is 20 mm x 50 mm x 5 m
Using 24 m S TBA machines, the heat-resistant anti-corrosion coating is 50W.
A solution containing 50 wt % of thorium silicate aqueous solution and 50 wt % of calcium carbonate powder was applied to the test piece.

付着成形させたものを用いた。Adhesive molding was used.

第1表  腐食試験片 第2表  腐食試験結果 この結果、第2表の様に9本発明によるCa等アルカリ
土類金属炭酸塩を珪酸塩系バインダーによって付着成形
せしめた耐熱型防食被膜(N3)は従来の無機質塗料の
被膜(隘2)に比して1/4前後の腐食減量であり、耐
食性が著しく向」ニする事が判る。
Table 1 Corrosion test piece Table 2 Corrosion test results The results are as shown in Table 2.9Heat-resistant anti-corrosion coating (N3) in which alkaline earth metal carbonate such as Ca is adhered and molded with a silicate binder according to the present invention It can be seen that the corrosion weight loss is about 1/4 compared to the conventional inorganic paint film (No. 2), and the corrosion resistance is significantly improved.

【図面の簡単な説明】[Brief explanation of the drawing]

第1図は本発明の概念図である。 1・・・金属、2・・・耐熱型防食被膜、2a・・・2
の内部に存在する空隙、3・・・スケール。
FIG. 1 is a conceptual diagram of the present invention. 1...Metal, 2...Heat-resistant anti-corrosion coating, 2a...2
The void that exists inside the 3... scale.

Claims (1)

【特許請求の範囲】 ボイラ等の高温部伝熱器管表面に、 Mg、 Oa、 
Ba。 I3e等のアルカリ土類金属炭酸塩の1m以」二を含有
した混合物を、珪酸塩系バインダーにて付着形成させた
。ことを特徴とする耐熱型防食被膜。
[Claims] Mg, Oa,
Ba. A mixture containing 1 m or more of an alkaline earth metal carbonate such as I3e was deposited using a silicate binder. A heat-resistant anti-corrosion coating characterized by:
JP11456882A 1982-07-01 1982-07-01 Heat-resistant type anti-corrosive film Pending JPS594661A (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
JP11456882A JPS594661A (en) 1982-07-01 1982-07-01 Heat-resistant type anti-corrosive film

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
JP11456882A JPS594661A (en) 1982-07-01 1982-07-01 Heat-resistant type anti-corrosive film

Publications (1)

Publication Number Publication Date
JPS594661A true JPS594661A (en) 1984-01-11

Family

ID=14641073

Family Applications (1)

Application Number Title Priority Date Filing Date
JP11456882A Pending JPS594661A (en) 1982-07-01 1982-07-01 Heat-resistant type anti-corrosive film

Country Status (1)

Country Link
JP (1) JPS594661A (en)

Cited By (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JPS63314284A (en) * 1987-06-17 1988-12-22 Mitsubishi Heavy Ind Ltd Heat-resistant anticorrosive coating film
JPH01108274A (en) * 1987-10-20 1989-04-25 Mitsubishi Heavy Ind Ltd Heat-resistant corrosion-preventive coating film
CN109824157A (en) * 2019-03-07 2019-05-31 浙江沁园水处理科技有限公司 A kind of equipment for cleaning membrane component in water purifier
JP2019529166A (en) * 2016-09-20 2019-10-17 ユーエスジー・インテリアズ・エルエルシー Silicate coating for improved sound absorbing panel performance and method of manufacturing the same

Cited By (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JPS63314284A (en) * 1987-06-17 1988-12-22 Mitsubishi Heavy Ind Ltd Heat-resistant anticorrosive coating film
JPH01108274A (en) * 1987-10-20 1989-04-25 Mitsubishi Heavy Ind Ltd Heat-resistant corrosion-preventive coating film
JP2019529166A (en) * 2016-09-20 2019-10-17 ユーエスジー・インテリアズ・エルエルシー Silicate coating for improved sound absorbing panel performance and method of manufacturing the same
CN109824157A (en) * 2019-03-07 2019-05-31 浙江沁园水处理科技有限公司 A kind of equipment for cleaning membrane component in water purifier
CN109824157B (en) * 2019-03-07 2023-12-26 浙江沁园水处理科技有限公司 Equipment for cleaning inner membrane element of water purifier

Similar Documents

Publication Publication Date Title
CA1152733A (en) Composition for preventing cold end corrosion in boilers
CN107236580B (en) High-efficiency sulfur fixation catalytic composition for coal
US6613110B2 (en) Inhibition of reflective ash build-up in coal-fired furnaces
GB2252966A (en) Removal of effluents from combusted gases with an aerosol sorbent
US7189289B2 (en) Cleaning agent and method for cleaning heater tubes
JPS594661A (en) Heat-resistant type anti-corrosive film
CN102277219A (en) Efficient environment-friendly coal-saving deslagging agent for boiler
US6289827B1 (en) Process for the control of ash accumulation and corrosivity associated with selective catalytic reduction technology
CN102131562B (en) Process and composition for removing heavy metal from combustion gas
JPS62131074A (en) Heat-presistant corrosionproof coating
JP3202484B2 (en) Heat and water resistant anticorrosion coating
JP2019155339A (en) Scale removal method and composition for scale removal
CA1066058A (en) Sodium aluminate to reduce flue gas corrosion
CN1227339C (en) Composition and process for improving combustibles combustion, process and device for obtaining such composition
JP2615167B2 (en) Heat resistant anticorrosion coating
US4486472A (en) Method of preventing a combustion furnace from corrosion
JPH01108274A (en) Heat-resistant corrosion-preventive coating film
JPH01167382A (en) Heat-resistant type anticorrosive film
JPS6139991B2 (en)
JPS63289076A (en) Heat-resistant corrosion-inhibiting film
JPS63314284A (en) Heat-resistant anticorrosive coating film
US3886872A (en) Method and composition for removal of soot and deposits from heat exchange surfaces of combustion units
JPH0882499A (en) Heat resistant corrosion-resistant film
JP2002273159A (en) Method for neutralizing combustion exhaust gas of fossil fuel containing sulfur
JPS6327598A (en) Combustion of emulsion fuel composed of ultra-heavy oil and water