JP7195094B2 - Exhaust gas purification catalyst structure - Google Patents

Exhaust gas purification catalyst structure Download PDF

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JP7195094B2
JP7195094B2 JP2018176029A JP2018176029A JP7195094B2 JP 7195094 B2 JP7195094 B2 JP 7195094B2 JP 2018176029 A JP2018176029 A JP 2018176029A JP 2018176029 A JP2018176029 A JP 2018176029A JP 7195094 B2 JP7195094 B2 JP 7195094B2
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catalyst
plate
exhaust gas
flat
purifying
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JP2020044509A (en
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啓一郎 甲斐
尚美 今田
清司 池本
泰良 加藤
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Mitsubishi Heavy Industries Ltd
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    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01DSEPARATION
    • B01D53/00Separation of gases or vapours; Recovering vapours of volatile solvents from gases; Chemical or biological purification of waste gases, e.g. engine exhaust gases, smoke, fumes, flue gases, aerosols
    • B01D53/34Chemical or biological purification of waste gases
    • B01D53/74General processes for purification of waste gases; Apparatus or devices specially adapted therefor
    • B01D53/86Catalytic processes
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01JCHEMICAL OR PHYSICAL PROCESSES, e.g. CATALYSIS OR COLLOID CHEMISTRY; THEIR RELEVANT APPARATUS
    • B01J23/00Catalysts comprising metals or metal oxides or hydroxides, not provided for in group B01J21/00
    • B01J23/16Catalysts comprising metals or metal oxides or hydroxides, not provided for in group B01J21/00 of arsenic, antimony, bismuth, vanadium, niobium, tantalum, polonium, chromium, molybdenum, tungsten, manganese, technetium or rhenium
    • B01J23/24Chromium, molybdenum or tungsten
    • B01J23/28Molybdenum
    • B01J35/56

Description

本発明は、排ガス浄化用板状触媒エレメントおよび排ガス浄化用触媒ユニットに関する。より詳細に、本発明は、低い圧力損失で且つ高い脱硝効率を有する排ガス浄化用板状触媒エレメント、および該エレメントをガス流路が確保されるように重ね合わせてなる排ガス浄化用触媒ユニットに関する。 TECHNICAL FIELD The present invention relates to an exhaust gas purifying plate-like catalyst element and an exhaust gas purifying catalyst unit. More specifically, the present invention relates to an exhaust gas purifying plate-like catalyst element having low pressure loss and high denitrification efficiency, and an exhaust gas purifying catalyst unit formed by stacking the elements so as to secure a gas flow path.

火力発電所、各種工場に在るボイラ等の火炉から排出されるガス中の窒素酸化物を脱硝触媒の存在下で分解させて排ガスを浄化することが行われている。排ガス中の窒素酸化物を高効率で分解するために種々の脱硝触媒構造体が提案されている。 2. Description of the Related Art In the presence of a denitrification catalyst, nitrogen oxides in gas emitted from furnaces such as boilers in thermal power plants and various factories are decomposed to purify exhaust gas. Various denitrification catalyst structures have been proposed to decompose nitrogen oxides in exhaust gas with high efficiency.

例えば、特許文献1は、燃焼によって硫黄酸化物を含有する排ガスを生成する設備に使用される排煙脱硝装置において、ガス流れ方向に設置される複数の触媒層のうち少なくとも1層の触媒層に、帯状の突起からなる突条部と平板部とを交互に所定の間隔で有する触媒エレメントを、互いに隣接する触媒エレメントの突条部を直交するように複数枚積層して得られる触媒構造体を開示している。 For example, in Patent Document 1, in a flue gas denitrification device used in a facility for generating exhaust gas containing sulfur oxides by combustion, at least one of a plurality of catalyst layers installed in the gas flow direction A catalyst structure obtained by stacking a plurality of catalyst elements having strip-shaped projections and flat plate portions alternately at predetermined intervals so that the ridges of adjacent catalyst elements are perpendicular to each other. disclosed.

特許文献2は、平板上に山状部及び谷状部からなるスペーサ部が一定間隔でガス流れ方向に線条に形成された平板状触媒エレメントを多数積層してなる触媒構造体であって、山状部及び谷状部に凹部が所定間隔で形成され、かつ該凹部に棒状のガス攪拌体が、前記スペーサ間に形成される流路の中心に位置するように配置されていることを特徴とする排ガス浄化用触媒構造体を開示している。 Patent Document 2 discloses a catalyst structure formed by laminating a large number of flat catalyst elements each having a flat plate on which spacer portions each having a mountain-like portion and a valley-like portion are formed in the form of filaments at regular intervals in the direction of gas flow, Concave portions are formed at predetermined intervals in the peak-shaped portion and the valley-shaped portion, and a rod-shaped gas stirrer is arranged in the concave portion so as to be positioned at the center of the flow path formed between the spacers. and a catalyst structure for exhaust gas purification.

特許文献3は、排ガス流路に適合する枠体内に配置される排ガス浄化用触媒構造体であって、該触媒構造体は、平板状の触媒を所定間隔で交互に逆方向に曲げて形成した突起部、または山部と谷部を多数有する板状触媒と、表裏に貫通する孔を多数有する金属、セラミックまたはガラス製の網状物からなるガス分散体とを、交互に積層したものからなる排ガス浄化用触媒構造体を開示している。 Patent document 3 discloses a catalyst structure for purifying exhaust gas which is arranged in a frame suitable for an exhaust gas flow path, and the catalyst structure is formed by bending flat catalysts alternately in opposite directions at predetermined intervals. Exhaust gas consisting of alternately layered plate-shaped catalysts having a large number of protrusions or peaks and valleys and gas dispersion bodies made of metal, ceramic or glass nets having a large number of holes penetrating from front to back. A purification catalyst structure is disclosed.

特許文献4は、主構成部である平坦部と、凸条および凹条からなる線状のスペーサ部とからなる平板状触媒エレメントを、スペーサ部の長手方向に沿ってガス流路が確保されるように重ね合せてなる排ガス浄化用触媒構造体であって、前記平坦部は、平坦部を基準にしたスペーサ部の高さよりも低い高さで平坦部に立設された脚板と該脚板の上辺から平坦部に略平行に設置された天板とからなるバッフル部を少なくとも1つ有し、前記ガス流路に流れるガスを前記バッフル部で乱すことができる排ガス浄化用触媒構造体を開示している。 Patent Document 4 discloses a flat plate-like catalyst element composed of a flat portion, which is a main component, and a linear spacer portion composed of ridges and grooves. wherein the flat portion comprises a leg plate erected at a height lower than the height of the spacer portion with respect to the flat portion, and an upper side of the leg plate Disclosed is a catalyst structure for purifying exhaust gas, which has at least one baffle part consisting of a flat part and a top plate installed substantially parallel to the flat part, and the baffle part can disturb the gas flowing in the gas flow path. there is

特開平9-239243号公報JP-A-9-239243 特開2013-107046号公報JP 2013-107046 A WO00/13775A1WO00/13775A1 WO2014/076938A1(特開2014-97438号公報)WO2014/076938A1 (Japanese Unexamined Patent Application Publication No. 2014-97438)

本発明の課題は、低い圧力損失で且つ高い脱硝効率を有する排ガス浄化用板状触媒エレメント、および該エレメントをガス流路が確保されるように重ね合わせてなる排ガス浄化用触媒ユニットを提供することである。 An object of the present invention is to provide an exhaust gas purifying plate-like catalyst element having low pressure loss and high denitrification efficiency, and an exhaust gas purifying catalyst unit formed by stacking the elements so as to secure a gas flow path. is.

上記課題を解決すべく検討した結果、以下のような態様を包含する本発明を完成するに至った。 As a result of studies to solve the above problems, the present invention including the following aspects was completed.

〔1〕 平坦部と凸条からなるスペーサ部とを交互に配してなる板状触媒、および
平坦部を基準にした凸条の高さよりも低い高さレベルで、凸条に対して平行でない向きに、平坦部の上方に張り渡された帯状のバッフル部
を有し、
バッフル部は、板状触媒に在る凸条を受け容れることができるように折り曲げられた部分を有する帯部材からなる、排ガス浄化用板状触媒エレメント。
〔2〕バッフル部は、ステンレス鋼製板若しくはこれに触媒が担持されてなるもの、またはステンレス鋼エキスパンドメタル若しくはこれに触媒が担持されてなるものからなる、〔1〕に記載の排ガス浄化用板状触媒エレメント。
[1] A plate-shaped catalyst in which flat portions and spacer portions composed of ridges are alternately arranged, and a height level lower than the height of the ridges based on the flat portions and not parallel to the ridges has a strip-shaped baffle part stretched over the flat part in the direction,
A plate-shaped catalyst element for purifying exhaust gas , wherein the baffle portion is formed of a strip member having a portion bent so as to receive a ridge on the plate-shaped catalyst.
[2] The exhaust gas purifying device according to [1 ], wherein the baffle portion is made of a stainless steel plate or a catalyst-supported stainless steel plate, or a stainless steel expanded metal or a catalyst-supported stainless steel plate. Plate-shaped catalyst element.

〕前記〔1〕または〔2〕に記載の排ガス浄化用板状触媒エレメントを、少なくとも2枚、ガス流路が確保されるように重ね合わせてなる、排ガス浄化用触媒ユニット。

[ 3 ] A catalyst unit for exhaust gas purification, comprising at least two of the plate-shaped catalyst elements for exhaust gas purification according to [1] or [2] , which are stacked so as to secure a gas flow path.

本発明の排ガス浄化用板状触媒エレメントおよび排ガス浄化用触媒ユニットは、低い圧力損失で、ダストが堆積し難く、且つガス流れを効率的に乱すことができ、その結果として、触媒重量当たりの脱硝率が高い。
本発明の排ガス浄化用板状触媒エレメントおよび排ガス浄化用触媒ユニットは、同一触媒量での脱硝性能が従来品に比べて高いので、触媒の使用量を大幅に低減することが可能である。また、実機の排ガス処理条件に応じて、バッフル部の設置条件を任意に変更することが可能であるため、広範の排ガスに対処することが可能である。本発明の排ガス浄化用板状触媒エレメントおよび排ガス浄化用触媒ユニットは、特に、石炭焚きのボイラから排出されるダストを比較的に多く含むガスの処理に好ましく使用できる。
The exhaust gas purifying plate catalyst element and the exhaust gas purifying catalyst unit of the present invention have a low pressure loss, are resistant to dust accumulation, and can efficiently disturb the gas flow. high rate.
The exhaust gas purifying plate catalyst element and the exhaust gas purifying catalyst unit of the present invention have higher denitrification performance than conventional products with the same amount of catalyst, so that the amount of catalyst used can be greatly reduced. In addition, since it is possible to arbitrarily change the installation conditions of the baffle part according to the exhaust gas treatment conditions of the actual machine, it is possible to deal with a wide range of exhaust gases. The exhaust gas purifying plate-shaped catalyst element and the exhaust gas purifying catalyst unit of the present invention can be preferably used particularly for treating gas containing a relatively large amount of dust discharged from a coal-fired boiler.

本発明の排ガス浄化用板状触媒エレメントの一例を示す斜視図である。1 is a perspective view showing an example of a plate-like catalyst element for purifying exhaust gas of the present invention; FIG. 図1に示した排ガス浄化用板状触媒エレメントを構成するバッフル部4を示す斜視図である。2 is a perspective view showing a baffle portion 4 that constitutes the plate-like catalyst element for purifying exhaust gas shown in FIG. 1. FIG. 図1に示した排ガス浄化用板状触媒エレメントを構成する板状触媒1を示す斜視図である。2 is a perspective view showing a plate-like catalyst 1 that constitutes the plate-like catalyst element for purifying exhaust gas shown in FIG. 1. FIG. 図1に示した排ガス浄化用板状触媒エレメントの重ね合わせの位置関係を説明するための斜視図である。FIG. 2 is a perspective view for explaining the positional relationship of superimposition of the exhaust gas purifying plate-like catalyst elements shown in FIG. 1 ; 図1に示した排ガス浄化用板状触媒エレメントを重ね合わせ状態を示す断面図である。FIG. 2 is a cross-sectional view showing a state in which the plate-like catalyst elements for purifying exhaust gas shown in FIG. 1 are superimposed; 本発明の排ガス浄化用触媒ユニットの一例を示す斜視図である。1 is a perspective view showing an example of an exhaust gas purifying catalyst unit of the present invention; FIG. 重ね合わせた排ガス浄化用板状触媒エレメント間のガス流れの状態を示す概念図である。FIG. 3 is a conceptual diagram showing a state of gas flow between superimposed plate-like catalyst elements for purifying exhaust gas.

本発明の実施形態を図面に基づいて具体的に説明する。なお、以下の実施形態によって本発明の範囲は制限されない。 An embodiment of the present invention will be specifically described based on the drawings. In addition, the scope of the present invention is not limited by the following embodiments.

〔排ガス浄化用板状触媒エレメント〕
本発明の排ガス浄化用板状触媒エレメントは、板状触媒1とバッフル部4とを有する。板状触媒1は、図3に示すような、スペーサ部2と平坦部3とを交互に配してなるものである。
[Plate catalyst element for purification of exhaust gas]
The plate-like catalyst element for purifying exhaust gas of the present invention has a plate-like catalyst 1 and a baffle portion 4 . The plate-like catalyst 1 is formed by alternately arranging spacer portions 2 and flat portions 3 as shown in FIG.

平坦部3およびスペーサ部2には、触媒が担持されている。触媒は脱硝反応に使用されるものであれば特に限定されない。例えば、Ti、Mo、W、Vなどの元素を含む触媒成分を含有する触媒、Cuなどの貴金属元素やFeなどの卑金属元素が担持されていてもよいゼオライトまたはアルミノケイ酸塩を含有する触媒、前記Tiなどの元素を含む触媒成分を含有する触媒と前記ゼオライトまたはアルミノケイ酸塩を含有する触媒との混合触媒などを挙げることができる。触媒を担持させる基材として、金属平板、織金網、パンチングメタル、エキスパンドメタル(別名:ラスメタル、メタルラス)、ワイヤメッシュ、ガラス織布、ガラス不織布などの平面状のものを挙げることができる。基材にはステンレス鋼が好ましく用いられる。平面状基材は、型曲げ加工(プレス曲げ加工)などによって、容易に、平坦部とスペーサ部の形を作ることができる。触媒を担持させる平面状基材の厚さは特に制限されないが、好ましくは0.1mm~0.3mmである。 A catalyst is supported on the flat portion 3 and the spacer portion 2 . The catalyst is not particularly limited as long as it is used for the denitration reaction. For example, catalysts containing catalyst components containing elements such as Ti, Mo, W, and V; catalysts containing zeolite or aluminosilicate on which noble metal elements such as Cu and base metal elements such as Fe may be supported; A mixed catalyst of a catalyst containing a catalyst component containing an element such as Ti and a catalyst containing the zeolite or aluminosilicate can be mentioned. Examples of substrates for supporting the catalyst include planar substrates such as flat metal plates, woven wire meshes, punched metals, expanded metals (also known as lath metals and metal laths), wire meshes, woven glass fabrics, and non-woven glass fabrics. Stainless steel is preferably used for the base material. The planar base material can be easily shaped into flat portions and spacer portions by die bending (press bending) or the like. Although the thickness of the planar substrate on which the catalyst is supported is not particularly limited, it is preferably 0.1 mm to 0.3 mm.

基材への触媒の担持は、例えば、触媒成分を含有するペースト状組成物(以下、触媒ペーストという。)を平板状のラスメタル基材の一面に載せ、ロール等で圧し挟み、次いで乾燥、必要に応じて焼成することを含む方法、ガラス繊維製織布からなる平らな基材の一面に触媒ペーストを塗り、ガラス繊維製織布からなる別の平らな基材を塗布面に載せて、該触媒ペーストを2枚の基材で挟み込むように重ね、必要に応じて重ね合わせた基材の両面に触媒ペーストを塗布し、これをロール等で強く圧し潰して触媒ペーストを基材に浸み込ませ、次いで乾燥、必要に応じて焼成することを含む方法などによって行うことができる。このようにして、平らな基材の両面に触媒層が積層される。基材の網目間も触媒ペーストで埋まっていることが好ましい。基材に触媒を担持させたものの厚さは、特に制限されないが、好ましくは0.2~2mmである。 Supporting of the catalyst on the base material can be carried out, for example, by placing a paste-like composition containing a catalyst component (hereinafter referred to as catalyst paste) on one surface of a flat plate-like lath metal base material, sandwiching it under pressure with rolls or the like, and then drying. a catalyst paste is applied to one side of a flat substrate made of a woven glass fiber cloth, another flat substrate made of a woven glass fiber cloth is placed on the coated surface, and the The catalyst paste is layered so as to be sandwiched between two substrates, and if necessary, the catalyst paste is applied to both sides of the layered substrates, and then strongly crushed with a roll or the like to allow the catalyst paste to permeate into the substrates. It can be carried out by a method including drying, followed by drying and, if necessary, baking. In this way, catalyst layers are laminated on both sides of the flat substrate. It is preferable that the spaces between the meshes of the substrate are also filled with the catalyst paste. The thickness of the catalyst supported on the substrate is not particularly limited, but is preferably 0.2 to 2 mm.

スペーサ部は、排ガス浄化用板状触媒エレメントを複数枚重ねたときにエレメント間にガスが通り抜けることができる空間、すなわち、ガス流路を確保するためのスペーサの役割をなす。スペーサ部は、触媒が担持された凸条からなる。凸条の断面形状は特に制限されない。例えば、上向き凸条からなる断面山形のスペーサ部、上向き凸条と下向き凸条とからなる断面波形のスペーサ部2などを挙げることができる。上向き凸条と下向き凸条とからなる断面波形のスペーサ部2を有する板状触媒エレメントを重ね合わせたときに、下に在る排ガス浄化用板状触媒エレメントの上向き凸条と上に在る排ガス浄化用板状触媒エレメントの下向き凸条とが間にある排ガス浄化用板状触媒エレメントの平坦部3を挟持する配置になるので、重ね合わせた方向に対する剛性を高くすることができ、さらに枠体によって横方向を固定することによって、排ガス浄化用触媒ユニット内で排ガス浄化用板状触媒エレメントが安定に重ね合わせられた構造を維持できる。スペーサ部2は平面状基材を型曲げ加工することによって形成することができる。凸条間の間隔は、好ましくは20~200mmである。一つの凸条の幅は、好ましくは10~20mmである。図1に示すスペーサ部2において下向き凸条と上向き凸条とを合わせた幅は、好ましくは20~40mmである。平坦部を基準にした凸条の高さは、好ましくは4~10mmである。 The spacer portion serves as a spacer for securing a space through which gas can pass between the stacked plate-shaped catalyst elements for purifying exhaust gas, that is, a gas flow path. The spacer portion is composed of ridges on which a catalyst is supported. The cross-sectional shape of the ridges is not particularly limited. For example, a spacer portion having a chevron-shaped cross section composed of upward ridges, and a spacer portion 2 having a wavy cross-section composed of upward ridges and downward ridges can be used. When plate-like catalyst elements having a spacer part 2 with a corrugated cross-section consisting of upward ridges and downward ridges are superimposed, the upward ridges of the underlying plate-like catalyst element for purifying exhaust gas and the upper ridges of the exhaust gas Since the flat portion 3 of the plate-shaped catalyst element for exhaust gas purification is sandwiched between the downward ridges of the plate-shaped catalyst element for purification, the rigidity in the overlapping direction can be increased, and furthermore, the frame body By fixing the horizontal direction by , it is possible to maintain the structure in which the exhaust gas purifying plate-like catalyst elements are stably superimposed in the exhaust gas purifying catalyst unit. The spacer portion 2 can be formed by bending a planar substrate. The distance between the ridges is preferably 20-200 mm. The width of one ridge is preferably 10 to 20 mm. The total width of the downward ridges and upward ridges in the spacer portion 2 shown in FIG. 1 is preferably 20 to 40 mm. The height of the ridge with respect to the flat portion is preferably 4 to 10 mm.

バッフル部4は、帯部材からなる。該帯部材は、平坦部を基準にした凸条の高さよりも低い高さレベルで、凸条に対して平行でない向き、好ましくは直角な方向に、平坦部の上方に張り渡されている。バッフル部の高さレベルは、平坦部を基準にした凸条の高さの2/5~3/5であることが好ましい。バッフル部の厚さは、好ましくは0.2~2mmである。 The baffle portion 4 is made of a belt member. The strip is stretched over the flat portion at a height level lower than the height of the ridge relative to the flat portion and in a non-parallel orientation, preferably at right angles to the ridge. It is preferable that the height level of the baffle portion is 2/5 to 3/5 of the height of the ridge with respect to the flat portion. The thickness of the baffle portion is preferably 0.2-2 mm.

バッフル部4は、その面が、平坦部に対してほぼ平行に配されることによって、ガス流が衝突する面積を帯部材の厚さ分だけにすることができる。バッフル部4を板状触媒の重ね合わせで形成されるガス流路の中央部に配することによって、図7に示す矢印のような流れが生じる。ガス流路の中央部は板状触媒から離れているので板状触媒の近傍に比べて脱硝反応が進行し難くNOx濃度が高い。ガス流路の中央部に配されたバッフル部がNOx濃度の高いガス流れを乱し、板状触媒にNOxが接触しやすくする。乱されたガス流れは、細いガス流路を十数cm~数十cm流れるだけで整流される。乱されたガス流れが整流されてしまう前の位置にバッフル部4をさらに配することで、ガス流れの乱れを持続させて、NOxの板状触媒への接触頻度を高めることができる。 By arranging the surface of the baffle portion 4 substantially parallel to the flat portion, the area with which the gas flow collides can be reduced to the thickness of the belt member. By arranging the baffle portion 4 in the central portion of the gas flow path formed by stacking the plate-like catalysts, a flow as indicated by the arrows in FIG. 7 is generated. Since the central portion of the gas flow path is away from the plate-like catalyst, the denitrification reaction is more difficult to proceed than in the vicinity of the plate-like catalyst, and the NOx concentration is high. A baffle portion arranged in the central portion of the gas flow path disturbs the flow of gas with a high NOx concentration, making it easier for NOx to come into contact with the plate-like catalyst. The turbulent gas flow is rectified only by flowing through a thin gas channel for ten and several centimeters to several tens of centimeters. By further arranging the baffle part 4 at a position before the turbulent gas flow is rectified, the turbulence of the gas flow can be maintained and the contact frequency of NOx with the plate-like catalyst can be increased.

バッフル部は、排ガス浄化用板状触媒エレメントに在る凸条を受け容れることができるように折り曲げられた部分を有する帯部材からなるものであってもよい。折り曲げ部分の形状は、凸条を受け容れることができるものであれば特に制限されない。例えば、図2に示すバッフル部4において、上向き凸条を受け容れることができる折り曲げ部分5は、上向き突条の頂部形状と同じ形に折り曲げられており、下向き凸条を受け容れることができる折り曲げ部分6は、凸条の幅よりも大きい幅で矩形に折り曲げられている。図2中の折り曲げ部分6の幅は好ましくは10~20mmである。このような幅で矩形に折り曲げることによって、製造上のバラツキによる凸条の位置のズレに対処できる。バッフル部4の平坦部分7の長さは、排ガス浄化用板状触媒エレメントを重ね合わせたときに形成されるガス流路の幅に応じて、適宜選択できる。 The baffle portion may be made of a belt member having a portion bent so as to receive the ridges present on the plate-like catalyst element for purifying exhaust gas. The shape of the bent portion is not particularly limited as long as it can accommodate the ridges. For example, in the baffle portion 4 shown in FIG. 2, the bent portion 5 capable of receiving the upward ridges is bent in the same shape as the top portion of the upward ridges, and is bent to receive the downward ridges. The portion 6 is bent into a rectangle with a width larger than the width of the ridge. The width of the folded portion 6 in FIG. 2 is preferably 10-20 mm. By bending into a rectangle with such a width, it is possible to deal with deviations in the positions of the ridges due to manufacturing variations. The length of the flat portion 7 of the baffle portion 4 can be appropriately selected according to the width of the gas flow path formed when the exhaust gas purifying plate catalyst elements are superimposed.

帯部材は、金属平板、織金網、パンチングメタル、エキスパンドメタル(別名:ラスメタル、メタルラス)、ワイヤメッシュ、ガラス織布、ガラス不織布などの平面状のもので構成できる。帯部材には触媒が担持されていてもよい。担持される触媒は、平坦部またはスペーサ部に担持される触媒として挙げたものと同じものであってもよい。バッフル部は、ステンレス鋼製板若しくはこれに触媒が担持されてなるもの、またはステンレス鋼エキスパンドメタル若しくはこれに触媒が担持されてなるものからなることが好ましい。バッフル部は、帯幅Dが、好ましくは10~30mmである。 The belt member can be composed of a flat metal plate, a woven wire mesh, a punching metal, an expanded metal (another name: lath metal, metal lath), a wire mesh, a woven glass cloth, a non-woven glass cloth, or the like. A catalyst may be carried on the belt member. The supported catalyst may be the same as listed for the catalyst supported on the plateaus or spacers. The baffle portion is preferably made of a stainless steel plate or a catalyst-supported material, or stainless steel expanded metal or a catalyst-supported material. The baffle part preferably has a band width D of 10 to 30 mm.

第一のバッフル部を排ガス浄化用板状触媒エレメントの前縁から、好ましくは100~300mm、より好ましくは150~200mm離れた後方に設置し、第二のバッフル部を、第一のバッフル部から、好ましくは30~200mm離れた後方に設置することができる。さらに第三以降のバッフル部を、好ましくは30~200mmの間隔で設けてもよい。
一つの排ガス浄化用板状触媒エレメントに在るバッフル部は、重ね合せたときに、隣りの排ガス浄化用板状触媒エレメントに在るバッフル部と、平坦部法線方向から見て、同じ位置に設置してもよいし、異なる位置に設置してもよい。
The first baffle part is preferably 100 to 300 mm, more preferably 150 to 200 mm away from the front edge of the plate-shaped catalyst element for purifying exhaust gas, and the second baffle part is installed behind the first baffle part. , preferably 30 to 200 mm away. Furthermore, the third and subsequent baffle portions may be provided preferably at intervals of 30 to 200 mm.
The baffle portion of one exhaust gas purifying plate-shaped catalyst element is located at the same position as the baffle portion of the adjacent exhaust gas purifying plate-shaped catalyst element when viewed from the normal direction of the flat portion when superimposed. You may install it, and you may install it in a different position.

排ガス浄化用板状触媒エレメントのスペーサ部およびバッフル部は、形成方法において特に制限されず、例えば、次のようにして形成することができる。触媒ペーストが担持されてなる平らな面状基材をプレス曲げ加工することによって断面波形のスペーサ部を有する板状触媒1を形成することができる。一方で、触媒ペーストが担持されてなる平らな帯状基材をプレス曲げ加工することによってスペーサ部の突条を受け容れることができるように折り曲げられた部分を有する帯部材を形成することができる。帯部材4を図1のように板状触媒1に嵌め合わせることによって、本発明の排ガス浄化用板状触媒エレメントを得ることができる。このような方法などで得られた排ガス浄化用板状触媒エレメントは枠体10内に収容できる大きさに適宜カットすることができる。 The forming method of the spacer portion and the baffle portion of the exhaust gas purifying plate-shaped catalyst element is not particularly limited, and can be formed, for example, as follows. A plate-like catalyst 1 having spacer portions with a corrugated cross-section can be formed by press-bending a flat planar substrate on which a catalyst paste is supported. On the other hand, it is possible to form a strip member having a bent portion so as to receive the ridges of the spacer portion by press-bending a flat strip-shaped base material on which the catalyst paste is carried. By fitting the belt member 4 to the plate-like catalyst 1 as shown in FIG. 1, the plate-like catalyst element for exhaust gas purification of the present invention can be obtained. The exhaust gas purifying plate-like catalyst element obtained by such a method can be appropriately cut into a size that can be accommodated in the frame 10 .

〔排ガス浄化用触媒ユニット〕
本発明の排ガス浄化用触媒ユニットは、本発明の排ガス浄化用板状触媒エレメントを、少なくとも2枚、ガス流路が確保されるように重ね合わせて成るものである。重ね合わせた排ガス浄化用板状触媒エレメントが崩れないようにするために枠体10に収容することができる。排ガス浄化用板状触媒エレメントの重ね方は、排ガス浄化用板状触媒エレメント間にガスが通過できる空間を確保できる形態であれば特に制限されない。断面波形のスペーサ部が相互に平行になるように重ねてもよいし、相互に直角になるように重ねてもよいし、または平行と直角の中間の角度になるように重ねてもよい。本発明では図4に示すようにスペーサ部が相互に平行になるように重ねるのが好ましい。また、スペーサ部が嵌め合わないように重ねること、すなわち一つの排ガス浄化用板状触媒エレメントに在るスペーサ部が隣りの排ガス浄化用板状触媒エレメントに在る平坦部に接するように重ねることが高い開口率および高い脱硝効率を得る観点から好ましい。重ねる枚数は枠体の大きさと排ガス浄化用板状触媒エレメントの大きさに応じて適宜設定することができる。通常は20~40枚程度の排ガス浄化用板状触媒エレメントを重ねる。枠体は、重ねられた排ガス浄化用板状触媒エレメント間にガスを導くことができる構造のものであれば特に制限されない。例えば、枠体10は4枚の金属製平板で構成した四角筒状のものが挙げられる。
[Catalyst unit for purifying exhaust gas]
The exhaust gas purifying catalyst unit of the present invention is formed by stacking at least two of the exhaust gas purifying plate catalyst elements of the present invention so as to secure a gas flow path. In order to prevent the overlapped exhaust gas purifying plate-like catalyst elements from collapsing, they can be accommodated in the frame 10 . The stacking method of the exhaust gas purifying plate-like catalyst elements is not particularly limited as long as it is possible to secure a space through which gas can pass between the exhaust gas purifying plate-like catalyst elements. The spacer portions having corrugated cross-sections may be stacked parallel to each other, may be stacked perpendicular to each other, or may be stacked at an angle intermediate between parallel and right angles. In the present invention, as shown in FIG. 4, it is preferable to stack the spacer portions so that they are parallel to each other. Moreover, it is possible to stack the spacer portions so that they do not fit together, that is, to stack the spacer portions of one exhaust gas-purifying plate-like catalyst element so that they are in contact with the flat portion of the adjacent exhaust gas-purifying plate-like catalyst element. It is preferable from the viewpoint of obtaining a high aperture ratio and high denitrification efficiency. The number of sheets to be stacked can be appropriately set according to the size of the frame and the size of the plate-like catalyst element for purification of exhaust gas. Usually, about 20 to 40 plate catalyst elements for purifying exhaust gas are stacked. The frame body is not particularly limited as long as it has a structure capable of guiding gas between the stacked plate-like catalyst elements for purifying exhaust gas. For example, the frame 10 may have a rectangular tubular shape made up of four metal flat plates.

次に、実施例を示して、本発明をより詳細に説明する。但し、本発明はこれらの実施例によって何ら限定されるものではない。 EXAMPLES Next, the present invention will be described in more detail with reference to examples. However, the present invention is by no means limited by these examples.

実施例1
酸化チタン10kg、モリブデン酸アンモニウム四水和物2kg、メタバナジン酸アンモニウム1kg、および蓚酸1kgを混合し、これに水を加えながらニーダで1時間混練してペースト状にした。これに、シリカ・アルミナ系無機繊維2kgを加えて、さらに30分間混練して水分約30%の触媒ペーストを得た。
この触媒ペーストを、一対の圧延ローラを用いて、SUS430ステンレス鋼エキスパンドメタルからなる幅500mmで且つ長尺の面状基材のラス目間及び表面に圧し付けて厚さ0.7mmの長尺の平板触媒を得た。この長尺の平板触媒をプレス機に用いて型曲げ加工して断面波形のスペーサ部(平坦部を基準にした凸条の高さ=7mm)を形成させた。その後、長さ600mmに切断し,平坦部3とスペーサ部2とを有する板状触媒1を得た。
一方、厚さ1mm、長さ500mm,幅(D)10mmのSUS430ステンレス鋼板製の帯部材を、プレス機を用いて、型曲げ加工して、折り曲げ部分6を形成させた。次いで、折り曲げ部分6が板状触媒1の平坦部のほぼ真ん中で且つ板状触媒1の前縁から200mm及び400mm離れた位置になるように帯部材2本を凸条に対してほぼ直角な向きで置き、プレス機を用いて、型曲げ加工して、折り曲げ部分5を形成させると同時に板状触媒1の上向き凸条にかしめて、バッフル部4を有する板状触媒エレメントaを得た。バッフル部4は、平坦部を基準にして3.5mmの高さレベルで平坦部の上方に張り渡された。
板状触媒エレメントaを図5のように重ね合わせ、枠体10で保持した。これを24時間通風乾燥させ、ついで空気中500℃で2時間焼成して、触媒ユニットAを得た。
Example 1
10 kg of titanium oxide, 2 kg of ammonium molybdate tetrahydrate, 1 kg of ammonium metavanadate, and 1 kg of oxalic acid were mixed and kneaded with a kneader for 1 hour while adding water to form a paste. To this, 2 kg of silica-alumina inorganic fibers were added and kneaded for another 30 minutes to obtain a catalyst paste with a water content of about 30%.
Using a pair of rolling rollers, this catalyst paste was pressed against the surface and between the laths of a long planar substrate made of SUS430 stainless steel expanded metal with a width of 500 mm to form a long strip with a thickness of 0.7 mm. A flat plate catalyst was obtained. This long flat plate catalyst was subjected to die bending using a pressing machine to form a spacer portion having a corrugated cross section (the height of the ridges based on the flat portion=7 mm). After that, it was cut to a length of 600 mm to obtain a plate-like catalyst 1 having flat portions 3 and spacer portions 2 .
On the other hand, a band member made of SUS430 stainless steel plate having a thickness of 1 mm, a length of 500 mm, and a width (D) of 10 mm was subjected to die bending using a pressing machine to form a bent portion 6 . Next, the two belt members were oriented substantially perpendicularly to the ridges so that the bent portion 6 was positioned approximately in the center of the flat portion of the plate-shaped catalyst 1 and at positions 200 mm and 400 mm apart from the front edge of the plate-shaped catalyst 1 . Then, using a pressing machine, the bent portion 5 was formed by forming the bent portion 5, and at the same time, the upward protruding strip of the plate-like catalyst 1 was crimped to obtain a plate-like catalyst element a having the baffle portion 4. The baffle part 4 was stretched over the flat part at a height level of 3.5 mm on the basis of the flat part.
The plate-like catalyst elements a were superimposed and held by a frame 10 as shown in FIG. This was air-dried for 24 hours and then calcined in the air at 500° C. for 2 hours to obtain a catalyst unit A.

実施例2
SUS430ステンレス鋼板製の帯部材の厚さを0.5mmに変更した以外は実施例1と同じ方法で板状触媒エレメントbおよび触媒ユニットBを得た。
Example 2
A plate-like catalyst element b and a catalyst unit B were obtained in the same manner as in Example 1, except that the thickness of the strip member made of SUS430 stainless steel plate was changed to 0.5 mm.

実施例3
SUS430ステンレス鋼板製の帯部材の厚さを2mmに変更した以外は実施例1と同じ方法で板状触媒エレメントcおよび触媒ユニットCを得た。
Example 3
A plate-like catalyst element c and a catalyst unit C were obtained in the same manner as in Example 1, except that the thickness of the strip member made of SUS430 stainless steel plate was changed to 2 mm.

実施例4
SUS430ステンレス鋼板製の帯部材の幅(D)を20mmに変更した以外は実施例1と同じ方法で板状触媒エレメントdおよび触媒ユニットDを得た。
Example 4
A plate-like catalyst element d and a catalyst unit D were obtained in the same manner as in Example 1, except that the width (D) of the strip member made of SUS430 stainless steel plate was changed to 20 mm.

実施例5
SUS430ステンレス鋼板製の帯部材を、SUS430ステンレス鋼エキスパンドメタル製の帯部材に変更した以外は実施例1と同じ方法で板状触媒エレメントeおよび触媒ユニットEを得た。
Example 5
A plate-like catalyst element e and a catalyst unit E were obtained in the same manner as in Example 1, except that the strip member made of SUS430 stainless steel plate was changed to a strip member made of SUS430 stainless steel expanded metal.

実施例6
SUS430ステンレス鋼エキスパンドメタル製の帯部材に実施例1で得られた触媒ペーストをローラで圧し付け、触媒の担持された帯部材(厚さ0.7mm)を得た。
SUS430ステンレス鋼板製の帯部材を、触媒の担持された帯部材に変更した以外は実施例1と同じ方法で板状触媒エレメントfおよび触媒ユニットFを得た。
Example 6
The catalyst paste obtained in Example 1 was pressed against a belt member made of SUS430 stainless steel expanded metal with a roller to obtain a belt member (thickness: 0.7 mm) supporting the catalyst.
A plate-like catalyst element f and a catalyst unit F were obtained in the same manner as in Example 1, except that the belt member made of SUS430 stainless steel plate was changed to a catalyst-supported belt member.

比較例1
板状触媒エレメントの代わりに実施例1で得られた板状触媒1を用いた以外は実施例1と同じ方法で触媒ユニットGを得た。
Comparative example 1
A catalyst unit G was obtained in the same manner as in Example 1, except that the plate-like catalyst 1 obtained in Example 1 was used instead of the plate-like catalyst element.

触媒ユニットA~Gについて,表1に記載の条件で脱硝反応を行い、反応速度比と圧力損失を測定した。その結果を表2に示す。
表2から分かるように、本発明の板状触媒エレメントa~fを重ね合わせてなる触媒ユニットA~Fは、触媒ユニットGに比べて、高い脱硝性能を有している。触媒ユニットA~Dの結果から、バッフル部の厚さ及び幅(D)が大きいほど脱硝性能が高いことがわかる。バッフル部の厚さまたは幅(D)が大きくなるほど圧力損失が高くなるが、その上昇は小さいことがわかる。触媒が担持されたバッフル部を設けると脱硝効率がさらに高まる。本発明の触媒ユニットは、圧力損失が低く、排ガスにダストが含まれていてもダストの堆積が起こりにくい。石炭焚きボイラなどから排出されるダストを多く含む排ガスの浄化処理に好適であり、従来の触媒ユニットよりも環境負荷を大幅に低減できる。
For the catalyst units A to G, the denitrification reaction was performed under the conditions shown in Table 1, and the reaction rate ratio and pressure loss were measured. Table 2 shows the results.
As can be seen from Table 2, catalyst units A to F obtained by laminating plate-shaped catalyst elements a to f of the present invention have higher denitration performance than catalyst unit G. From the results of catalyst units A to D, it can be seen that the greater the thickness and width (D) of the baffle portion, the higher the denitration performance. It can be seen that the greater the thickness or width (D) of the baffle portion, the higher the pressure loss, but the increase is small. The denitrification efficiency is further enhanced by providing a baffle section on which a catalyst is supported. The catalyst unit of the present invention has a low pressure loss, and even if the exhaust gas contains dust, it is difficult for dust to accumulate. It is suitable for purifying exhaust gas containing a large amount of dust discharged from coal-fired boilers, etc., and can greatly reduce the environmental load compared to conventional catalyst units.

Figure 0007195094000001
Figure 0007195094000001

Figure 0007195094000002
Figure 0007195094000002

1:板状触媒
2:スペーサ部
3:平坦部
4:バッフル部
5:バッフル部の上向き凸条を受け容れる折り曲げ部分
6:バッフル部の下向き凸条を受け容れる折り曲げ部分
7:バッフル部の平坦部分
8:排ガス
9:触媒ユニット
10:枠体
1: Plate-shaped catalyst 2: Spacer portion 3: Flat portion 4: Baffle portion 5: Bent portion for receiving upward ridges of baffle portion 6: Bent portion for receiving downward ridges of baffle portion 7: Flat portion of baffle portion 8: exhaust gas 9: catalyst unit 10: frame

Claims (3)

平坦部と凸条からなるスペーサ部とを交互に配してなる板状触媒、および
平坦部を基準にした凸条の高さよりも低い高さレベルで、凸条に対して平行でない向きに、平坦部の上方に張り渡された帯状のバッフル部
を有し、
バッフル部は、板状触媒に在る凸条を受け容れることができるように折り曲げられた部分を有する帯部材からなる、排ガス浄化用板状触媒エレメント。
A plate-like catalyst in which flat portions and spacer portions composed of ridges are alternately arranged; Having a strip-shaped baffle part stretched over the flat part ,
A plate-shaped catalyst element for purifying exhaust gas , wherein the baffle portion is formed of a strip member having a portion bent so as to receive a ridge on the plate-shaped catalyst.
バッフル部は、ステンレス鋼製板若しくはこれに触媒が担持されてなるもの、またはステンレス鋼エキスパンドメタル若しくはこれに触媒が担持されてなるものからなる、請求項に記載の排ガス浄化用板状触媒エレメント。 2. The plate-like catalyst element for purifying exhaust gas according to claim 1 , wherein the baffle portion is made of a stainless steel plate or a catalyst-supported stainless steel plate, or a stainless steel expanded metal or a catalyst-supported stainless steel plate. . 請求項1または2に記載の排ガス浄化用板状触媒エレメントを、少なくとも2枚、ガス流路が確保されるように、重ね合わせてなる、排ガス浄化用触媒ユニット。 3. A catalytic unit for purifying exhaust gas, comprising at least two plate-like catalyst elements for purifying exhaust gas according to claim 1 or 2 , which are stacked so as to secure a gas flow path.
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JP2006015344A (en) 1994-11-15 2006-01-19 Babcock Hitachi Kk Catalyst structure and apparatus for purifying treatment gas
JP2008280864A (en) 2007-05-08 2008-11-20 Nichidai Filter Corp Exhaust gas filter device
JP2013107046A (en) 2011-11-22 2013-06-06 Babcock Hitachi Kk Exhaust emission control catalyst structure and method for producing the same

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EP0869844B1 (en) * 1995-12-13 2002-03-20 Kemira Metalkat Oy Turbulence inducer in chemical reactor
DE19922355A1 (en) * 1999-05-14 2000-11-23 Helmut Swars Catalyst carrier for treating IC engine exhaust gases has a number of continuous flow paths for a fluid medium and carrier elements for a catalyst material extending in the longitudinal direction of the paths

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Publication number Priority date Publication date Assignee Title
JP2006015344A (en) 1994-11-15 2006-01-19 Babcock Hitachi Kk Catalyst structure and apparatus for purifying treatment gas
JP2008280864A (en) 2007-05-08 2008-11-20 Nichidai Filter Corp Exhaust gas filter device
JP2013107046A (en) 2011-11-22 2013-06-06 Babcock Hitachi Kk Exhaust emission control catalyst structure and method for producing the same

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