IP Library Granted Patent US 7,132,178
Granted Patent B2
US 7,132,178 · App. 10/344,475 · Granted Nov 7, 2006

Hydrogen generator, fuel cell system and control method of hydrogen generator

Assignee: Matsushita Electric Industrial Co., Ltd.
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 7,132,178
App. No.
10/344,475
Granted
Nov 7, 2006
Kind
B2
Abstract

A hydrogen generator including a raw material supplying unit supplying a raw material containing a sulfur component and composed of an organic compound, a water supplying unit supplying water, a reformer producing hydrogen gas, the reformer provided with a reforming catalyst to make the raw material and water undergo a reaction, and a carbon monoxide removing unit reducing the content of carbon monoxide in hydrogen gas produced in the reformer, wherein the reforming catalyst is constituted by a carrier composed of platinum and a metal oxide is provided.

Claims (27)

1. A hydrogen generator comprising:

a reformer producing hydrogen gas, said reformer provided with a reforming catalyst body making a raw material react with water;

a raw material supplying unit supplying said raw material to said reformer;

a water supplying unit supplying said water to said reformer;

an oxidation gas supplying unit supplying an oxidation gas containing at least oxygen to said reforming catalyst body; and

a controlling unit for feed rate controlling the supply of said raw material, said water and said oxidation gas,

wherein the amount of oxidation gas supplied from said oxidation gas supplying unit to said reforming catalyst body is defined based on the content of sulfur component contained in said raw material.

2. The hydrogen generator according to claim 1 , wherein said amount of oxidation gas is defined as an amount allowing at least said sulfur component to be at least fully oxidized.

3. The hydrogen generator according to claim 1 , comprising a sulfur concentration detecting unit measuring the content of sulfur component contained in said raw material, wherein

the amount of oxidation gas supplied from said oxidation gas supplying unit to said reforming catalyst body is defined based on the content of sulfur component measured by said sulfur concentration detecting unit.

4. The hydrogen generator according to claim 1 , comprising a temperature detecting unit measuring the temperatures of said reforming catalyst body and/or a gas in said reforming catalyst body,

wherein said controlling unit for feed rate compares the detected temperature detected by said temperature detecting unit with a predetermined reference value determined in advance, and

a temperature equal to or higher than said reference value indicates that the content of said sulfur component increases at the time when said raw material, said water and said oxidation gas are supplied in predetermined reference amounts.

5. The hydrogen generator according to claim 4 , wherein said controlling unit for feed rate controls so that the oxidation gas is supplied in an amount larger than said reference amount if said detected temperature exceeds said reference value.

6. The hydrogen generator according to claim 4 , wherein if said detected temperature exceeds said reference value,

said controlling unit for feed rate controls so that at the time of stopping the generation of hydrogen gas, the oxidation gas is supplied in an amount larger than said predetermined reference amount, and thereafter the supply of said raw material, said water and said oxidation gas is stopped.

7. The hydrogen generator according to claim 4 , comprising a memory unit memorizing the fact that said detected temperature exceeds said reference value, wherein if said memory unit remembers the fact that said reference value has been exceeded at the time of starting the apparatus,

said controlling unit for feed rate controls so that the oxidation gas is supplied in an amount larger than said predetermined reference amount, and thereafter said raw material, said water and said oxidation gas are supplied in said predetermined reference amount.

8. The hydrogen generator according to claim 4 , wherein said temperature detecting unit is provided at a location allowing said temperature detecting unit to measure the temperatures of said reforming catalyst body and/or a gaseous body in said reforming catalyst body located from the midstream to the downstream with respect to the flow of said raw material in said reformer.

9. A method of controlling a hydrogen generator in which the supply of raw material, water and oxidation gas is controlled in a hydrogen generator comprising:

a reformer producing hydrogen gas, said reformer provided with a reforming catalyst body making said raw material react with said water;

a raw material supplying unit supplying said raw material to said reformer;

a water supplying unit supplying said water to said reformer; and

an oxidation gas supplying unit supplying said oxidation gas containing at least oxygen to said reforming catalyst body,

wherein the amount of oxidation gas to be supplied from said oxidation gas supplying unit to said reforming catalyst body is defined based on the content of sulfur component contained in said raw material.

10. A program of making a computer function as the whole or part of the controlling unit for feed rate controlling the supply of said raw material, said water and said oxidation gas in the hydrogen generator according to claim 1 .

11. A medium storing the program according to claim 10 , said medium capable of being processed by a computer.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 10, 2003
From: UKAI, KUNIHIRO; TAGUCHI, KIYOSHI; WAKITA, HIDENOBU; FUJIWARA, SEIJI
To: MATSUSHITA ELECTRIC INDUSTRIAL CO., LTD.
Reel/Frame 014311/0858 →
Priority Claims (3)
JP 2001-176570 · Jun 12, 2001 · national
JP 2001-204326 · Jul 5, 2001 · national
JP 2001-307284 · Oct 3, 2001 · national
Continuity (1)
Related Publication 20040013917A1 · Jan 22, 2004