Denitration catalyst and denitration device
10814309 ยท 2020-10-27
Assignee
Inventors
- Nobuki Oka (Tokyo, JP)
- Toshinobu Yasutake (Tokyo, JP)
- Noriko Watari (Tokyo, JP)
- Hidemasa Kakigami (Tokyo, JP)
- Syuji Fujii (Tokyo, JP)
- Akihiro Sawata (Tokyo, JP)
Cpc classification
B01J2523/00
PERFORMING OPERATIONS; TRANSPORTING
B01D53/8628
PERFORMING OPERATIONS; TRANSPORTING
B01J2523/00
PERFORMING OPERATIONS; TRANSPORTING
B01D53/9413
PERFORMING OPERATIONS; TRANSPORTING
B01J35/40
PERFORMING OPERATIONS; TRANSPORTING
B01J35/50
PERFORMING OPERATIONS; TRANSPORTING
B01J23/02
PERFORMING OPERATIONS; TRANSPORTING
B01J21/063
PERFORMING OPERATIONS; TRANSPORTING
B01J21/02
PERFORMING OPERATIONS; TRANSPORTING
International classification
B01J21/02
PERFORMING OPERATIONS; TRANSPORTING
B01J23/02
PERFORMING OPERATIONS; TRANSPORTING
B01J21/06
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A denitration catalyst for removing nitrogen oxide in an exhaust gas is represented by the following chemical formula: Ba.sub.3Y.sub.(4-x)A.sub.xO.sub.9, wherein A is an element selected from the group consisting of Bi, Sn, Ga, Mn, Ti, and Al; and X is 0.4 or more and 2 or less. A denitration device has the denitration catalyst for removing nitrogen oxide in an exhaust gas discharged from an exhaust gas generation source including a gas engine, a gas turbine, a melting furnace, or a boiler.
Claims
1. A denitration catalyst for removing nitrogen oxide in an exhaust gas, represented by the following chemical formula:
Ba.sub.3Y.sub.(4-x)A.sub.xO.sub.9, wherein A is an element selected from the group consisting of Bi, Sn, Ga, Mn, Ti, and Al and X is 0.4 or more and 2 or less.
2. The denitration catalyst according to claim 1, wherein A in the chemical formula is Bi, Ti, or Al.
3. A denitration device comprising the denitration catalyst according to claim 1 for removing nitrogen oxide in an exhaust gas discharged from an exhaust gas generation source including a gas engine, a gas turbine, a melting furnace, or a boiler.
Description
BRIEF DESCRIPTION OF DRAWINGS
(1)
(2)
(3)
DETAILED DESCRIPTION
(4) Embodiments of the present invention will now be described in detail with reference to the accompanying drawings. It is intended, however, that unless particularly identified, dimensions, materials, shapes, relative positions and the like of components described in the embodiments shall be interpreted as illustrative only and not intended to limit the scope of the present invention.
(5) For instance, an expression of relative or absolute arrangement such as in a direction, along a direction, parallel, orthogonal, centered, concentric and coaxial shall not be construed as indicating only the arrangement in a strict literal sense, but also includes a state where the arrangement is relatively displaced by a tolerance, or by an angle or a distance whereby it is possible to achieve the same function.
(6) For instance, an expression of an equal state such as same equal and uniform shall not be construed as indicating only the state in which the feature is strictly equal, but also includes a state in which there is a tolerance or a difference that can still achieve the same function.
(7) Further, for instance, an expression of a shape such as a rectangular shape or a cylindrical shape shall not be construed as only the geometrically strict shape, but also includes a shape with unevenness or chamfered corners within the range in which the same effect can be achieved.
(8) On the other hand, an expression such as comprise, include, have, contain and constitute are not intended to be exclusive of other components.
(9)
(10) The denitration catalyst 1 directly decomposes (catalytically cracks) nitrogen oxide in exhaust gas G into nitrogen (N.sub.2) and oxygen (O.sub.2) and thereby removes nitrogen oxide from exhaust gas G. The denitration catalyst 1 may have a honeycomb structure (honeycomb catalyst) or other structures such as a plate-like structure (plate catalyst). The denitration device 3 in the embodiment shown in
(11) The denitration catalyst 1 used as descried above has a chemical formula of Ba.sub.3Y.sub.(4-x)A.sub.xO.sub.9. In the chemical formula, A is an element selected from the group consisting of Bi (bismuth), Sn (tin), Ga (gallium), Mn (manganese), Ti (titanium), and Al (aluminum). In other words, the denitration catalyst 1 has a chemical formula in which Y (yttrium) sites are partially substituted with any of the six elements. In the chemical formula, X is mole ratio of the element represented by A.
(12)
(13) From experimental results shown in
(14) Moreover, direct NO decomposition rate using Ba.sub.3Y.sub.3.6Bi.sub.0.4O.sub.9 as a catalyst was 76% or more at a temperature of exhaust gas (reaction temperature at denitration) of 700 C. This indicates that when NH.sub.3 usage in a desulfurization device using SCR of a conventional gas engine is 1, NH.sub.3 usage is reduced by 76% or more. When the direct decomposition rate is increased to this extent, it is possible to provide the denitration device 3 that does not require supply of the reducing agent to the denitration catalyst 1 (see
(15) The experimental values shown in
(16)
(17) With the above configuration, the denitration catalyst 1 has a chemical formula of Ba.sub.3Y.sub.(4-x)Bi.sub.xO.sub.9, Ba.sub.3Y.sub.(4-x)Sn.sub.xO.sub.9, Ba.sub.3Y.sub.(4-x)Ga.sub.xO.sub.9, Ba.sub.3Y.sub.(4-x)Mn.sub.xO.sub.9, Ba.sub.3Y.sub.(4-x)Ti.sub.xO.sub.9, or Ba.sub.3Y.sub.(4-x) Al.sub.xO.sub.9. Thus, it is possible to provide a catalyst enabling direct decomposition of NO (2NO.fwdarw.N.sub.2+O.sub.2) in exhaust gas at lower temperature without high temperature process at 800 C. or higher, and suitable for removing nitrogen oxide (NOx).
(18) Although the denitration catalyst 1 in the embodiment shown in
(19) The tendency of change in N.sub.2 yield with X value is considered to be the same even if the substitution element is other than Sc. Therefore, when X in the chemical formula Ba.sub.3Y.sub.(4-x)A.sub.XO.sub.9 satisfies 0.4X2, it is possible to provide a denitration catalyst having a high nitrogen oxide removal performance.
Example 1
(20) Details of the steps of the solid-state reaction method used for obtaining the above-described experimental values of N.sub.2 yield will be specifically described with the flowchart of
Example 2
(21) The preparation by the mechanochemical method was performed by requesting Hokko Chemical Industry Co., Ltd. For instance, Ba.sub.3Y.sub.3.6Sn.sub.0.4O.sub.9 can be prepared by a method of producing composite oxide powder disclosed in JP5462639B.
(22) The present invention is not limited to the embodiments described above, but includes modifications to the embodiments described above, and embodiments composed of combinations of those embodiments.