IP Library › Granted Patent US 11,684,909
Granted Patent B2
US 11,684,909 · App. 16/698,527 · Granted Jun 27, 2023

Structured catalyst for methanol reforming, methanol reforming device, method for producing structured catalyst for methanol reforming, and method for producing at least one of olefin or aromatic hydrocarbon

Inventors: Takao Masuda (Sapporo, JP); Yuta Nakasaka (Sapporo, JP); Takuya Yoshikawa (Sapporo, JP); Sadahiro Kato (Tokyo, JP); Masayuki Fukushima (Tokyo, JP); Hiroko Takahashi (Tokyo, JP); Yuichiro Banba (Tokyo, JP); Kaori Sekine (Tokyo, JP)
Assignee: FURUKAWA ELECTRIC CO., LTD.
B01J29/041B01J23/06B01J23/10B01J23/16B01J23/32B01J23/34B01J23/36B01J23/745B01J29/035B01J29/0308B01J29/0352B01J29/0354B01J29/0356B01J29/0358B01J29/043B01J29/044B01J29/064B01J29/072B01J29/076B01J29/085B01J29/10B01J29/12B01J29/14B01J29/16B01J29/185B01J29/20B01J29/22B01J29/24B01J29/26B01J29/405B01J29/42B01J29/44B01J29/46B01J29/48B01J29/605B01J29/61B01J29/62B01J29/63B01J29/64B01J29/65B01J29/655B01J29/66B01J29/67B01J29/68B01J29/69B01J29/70B01J29/7007B01J29/7038B01J29/7057B01J29/7088B01J29/7215B01J29/7276B01J29/7415B01J29/7476B01J29/7676B01J29/7815B01J29/7876B01J35/023B01J35/1057B01J37/0207B01J37/08B01J2229/126B01J2229/20B01J2229/22B01J2229/32B01J2229/34B01J2229/38B01J2229/40
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Quick Facts
Patent No.
US 11,684,909
App. No.
16/698,527
Granted
Jun 27, 2023
Kind
B2
Abstract

To provide a highly active structured catalyst for methanol reforming that suppresses the decline in catalytic function and has excellent catalytic function, and a methanol reforming device. A structured catalyst for methanol reforming, including: a support of a porous structure composed of a zeolite-type compound; and a catalytic substance present in the support, in which the support has channels communicating with each other, and the catalytic substance is present at least in the channels of the support.

Claims (27)

1. A structured catalyst for methanol reforming, comprising:

a support of a porous structure composed of a zeolite-type compound; and

a catalytic substance present in the support,

wherein

the zeolite-type compound is selected from the group consisting of zeolites, cation exchanged zeolites and silicalites,

a framework of the zeolite-type compound is selected from the group consisting of EAU type (Y type or X type), MTW type, MFI type (ZSM-5), FER type (ferrierite), LTA type (A type), MWW type (MCM-22), MOR type (mordenite), LTL type (L type), and BEA type (beta type),

the support comprises channels connecting with each other,

the catalytic substance is a solid acid and is present at least in the channels of the support,

the solid acid is selected from the group consisting of iron oxide (FeO x ), zinc oxide (ZnO), aluminum oxide (Al 2 O 3 ), zirconium oxide (ZrO 2 ), titanium oxide (TiO 2 ), selenium trioxide (SeO 3 ), selenium dioxide (SeO 2 ), tellurium trioxide (TeO 3 ), tellurium dioxide (TeO 2 ), tin dioxide (SnO 2 ), manganese oxide (Mn 2 O 7 ), technetium oxide (Tc 2 O 7 ), and rhenium oxide (Re 2 O 7 ),

the channels comprise any one of a one-dimensional pore, a two-dimensional pore, and a three-dimensional pore defined by a framework of the zeolite-type compound and an enlarged pore portion that is greater than any one of the one-dimensional pore, the two-dimensional pore, and the three-dimensional pore and is not defined by the framework of the zeolite-type compound, wherein the enlarged pore portion is greater than or equal to a diameter of the catalytic substance,

a particle size of the catalytic substance is greater than an inner diameter of any one of the one-dimensional pore, the two-dimensional pore, and the three-dimensional pore,

the catalytic substance is at least embedded in the enlarged pore portion, and

the solid acid is nanoparticles.

2. The structured catalyst for methanol reforming according to claim 1 , wherein the enlarged pore portion connects with a plurality of pores constituting any one of the one-dimensional pore, the two-dimensional pore, and the three-dimensional pore.

3. The structured catalyst fir methanol reforming according to claim 1 , wherein an average particle size of the nanoparticles is greater than an average inner diameter of the channels and is less than or equal to an inner diameter of the enlarged pore portion.

4. The structured catalyst for methanol reforming according to claim 1 , wherein an average particle size of the nanoparticles is from 0.1 nm to 50 nm.

5. The structured catalyst for methanol reforming according to claim 3 , wherein a ratio of the average particle size of the nanoparticles to the average inner diameter of the channels is from 0.06 to 500.

6. The structured catalyst for methanol reforming according to claim 5 , wherein the ratio of the average particle size of the nanoparticles to the average inner diameter of the channels is from 0.1 to 36.

7. The structured catalyst for methanol reforming according to claim 5 , wherein the ratio of the average particle size of the nanoparticles to the average inner diameter of the channels is from 1.7 to 4.5.

8. The structured catalyst for methanol reforming according to claim 1 , wherein a metal of the solid oxide nanoparticles is present in an amount of from 0.5 to 2.5 mass % relative to the structured catalyst for methanol reforming.

9. The structured catalyst for methanol reforming according to claim 1 , wherein

an average inner diameter of the channels is from 0.1 nm to 1.5 nm, and

an inner diameter of the enlarged pore portion is from 0.5 nm to 50 nm.

10. The structured catalyst for methanol reforming according to claim 1 , further comprising at least one other catalytic substance held on an outer surface of the support.

11. The structured catalyst for methanol reforming according to claim 10 , wherein a content of the catalytic substance present in the support is greater than a content of the at least one other catalytic substance held on the outer surface of the support.

12. A methanol reforming device including the structured catalyst for methanol reforming described in claim 1 .

13. The structured catalyst for methanol reforming according to claim 1 , wherein the zeolite-type compound comprises a plurality of pores less than 1 nm in diameter.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 29, 2021
From: MASUDA, TAKAO; NAKASAKA, YUTA; YOSHIKAWA, TAKUYA; KATO, SADAHIRO; FUKUSHIMA, MASAYUKI; TAKAHASHI, HIROKO; BANBA, YUICHIRO; SEKINE, KAORI
To: FURUKAWA ELECTRIC CO., LTD.
Reel/Frame 057020/0774 →
Priority Claims (1)
JP 2017-108613 · May 31, 2017 · national
Continuity (2)
Continuation PCTJP2018021094 · May 31, 2018
Related Publication 20200114335A1 · Apr 16, 2020
Cited By (1)
US 12,654,158