IP Library Granted Patent US 11,123,716
Granted Patent B2
US 11,123,716 · App. 16/312,742 · Granted Sep 21, 2021

Denitrification catalyst for vessel, using ceramic nanotubes grown on porous metal structure, and preparation method thereof

Inventors: Dongha Lim (Busan, KR); Uoochang Jung (Busan, KR); Haeyoung Jeong (Busan, KR); Yunjang Gu (Changwon-si, KR)
Assignee: KOREA INSTITUTE OF INDUSTRIAL TECHNOLOGY
B01J23/847B01J23/16B01J23/22B01J23/70B01J35/002B01J35/0013B01J35/026B01J35/06B01J37/02B01J37/0226B01J37/08F01N3/2066F01N3/2803F01N3/2825B01J21/063B01J2523/15B01J2523/55B01J2523/56B01J2523/67B01J2523/84F01N2330/02F01N2610/02
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Quick Facts
Patent No.
US 11,123,716
App. No.
16/312,742
Granted
Sep 21, 2021
Kind
B2
Abstract

A denitrification catalyst using ceramic nanotubes grown on a porous metal structure, including: a porous metal structure having a plurality of pores formed between metal supports such that exhaust gas penetrates through the pores in multiple directions; ceramic nanotubes grown on the porous metal structure through anodic oxidation; and an active material uniformly and highly dispersed as a nano-thin film layer on inner and outer surfaces of the ceramic nanotubes through a deposition or supporting process.

Claims (10)

1. A denitrification catalyst using ceramic nanotubes grown on a porous metal structure, the denitrification catalyst comprising:

a porous metal structure having a plurality of pores formed between metal supports such that exhaust gas penetrates through the pores in multiple directions;

ceramic nanotubes grown on the porous metal structure through anodic oxidation; and

an active material uniformly and highly dispersed as a nano-thin film layer on inner and outer surfaces of the ceramic nanotubes through a deposition or supporting process.

2. The denitrification catalyst of claim 1 , wherein the porous metal structure is manufactured from titanium, aluminum, or an alloy thereof in the form of a mesh, a foil, or a wire.

3. The denitrification catalyst of claim 1 , wherein the porous metal structure has a porosity of 60% or more.

4. The denitrification catalyst of claim 1 , wherein the ceramic nanotubes are titania nanotubes or alumina nanotubes.

5. The denitrification catalyst of claim 1 , wherein the active material includes vanadium oxide as a main active material and one or more selected from the group consisting of tungsten oxide, molybdenum oxide, cobalt oxide, iron oxide, chromium oxide, copper oxide, manganese oxide, nickel oxide, cesium oxide, and niobium oxide as an auxiliary active material.

6. The denitrification catalyst of claim 1 , wherein the active material is included in an amount of 0.1 to 10.0 wt % with respect to 100 wt % of the ceramic nanotubes.

7. The denitrification catalyst of claim 1 , which is used in a vessel, a power plant, a vehicle, a railroad, or agriculture.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 21, 2018
From: LIM, DONGHA; JUNG, UOOCHANG; JEONG, HAEYOUNG; GU, YUNJANG
To: KOREA INSTITUTE OF INDUSTRIAL TECHNOLOGY
Reel/Frame 047844/0565 →
Priority Claims (1)
KR 10-2016-0077617 · Jun 21, 2016 · national
Continuity (1)
Related Publication 20190217279A1 · Jul 18, 2019