IP Library Granted Patent US 9,040,206
Granted Patent B2
US 9,040,206 · App. 14/282,337 · Granted May 26, 2015

Indirect internal reforming solid oxide fuel cell and method for shutting down the same

Inventor: Susumu Hatada (Kanagawa, JP)
Assignee: JX NIPPON OIL & ENERGY CORPORATION
H01M8/04089C01B3/38C01B3/382C01B3/386H01M8/04223H01M8/0432H01M8/04328H01M8/04388H01M8/04425H01M8/04776H01M8/04955H01M8/0618H01M8/12C01B2203/0233C01B2203/0244C01B2203/0261C01B2203/066C01B2203/1058C01B2203/1064C01B2203/107C01B2203/1609H01M2008/1293Y02E60/521Y02E60/525
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Quick Facts
Patent No.
US 9,040,206
App. No.
14/282,337
Granted
May 26, 2015
Kind
B2
Abstract

Provided is a method for shutting down an indirect internal reforming SOFC, in which a hydrocarbon-based fuel is reliably reformed, and the oxidative degradation of the anode can be prevented by a reformed gas. A method for shutting down an indirect internal reforming SOFC including a reformer; an SOFC; a combustion region for combusting the anode off-gas of the SOFC; and an enclosure for housing the reformer, the SOFC, and the combustion region, wherein the method includes causing the flow rate of a fuel supplied to the reformer to become FE from FS; and stopping the supply of the fuel to the reformer when an anode temperature becomes lower than the oxidative degradation temperature, where FE represents a flow rate of the fuel supplied to the reformer in a state in which the anode temperature is steady and lower than the oxidative degradation temperature, in which in the reformer the fuel is reformed and a reformed gas with a composition suitable to be supplied to an anode is produced, and in which an amount of the reformed gas produced is equal to or more than the requisite minimum flow rate for preventing the oxidative degradation of the anode when the anode temperature is a temperature equal to or higher than the oxidative degradation temperature, and FS represents a flow rate of the fuel supplied to the reformer at the start of the shutdown method. Also provided is an indirect internal reforming SOFC appropriate for this method.

Claims (14)

1. An indirect internal reforming solid oxide fuel cell comprising:

a reformer having a reforming catalyst layer, for reforming a hydrocarbon-based fuel to produce a reformed gas;

a solid oxide fuel cell for generating electric power using the reformed gas;

a combustion region for combusting an anode off-gas discharged from the solid oxide fuel cell; and

an enclosure for housing the reformer, the solid oxide fuel cell, and the combustion region,

wherein the indirect internal reforming solid oxide fuel cell further comprises:

I) means for causing a flow rate of the hydrocarbon-based fuel supplied to the reformer to become FE from FS; and

II) means for stopping supply of the hydrocarbon-based fuel to the reformer when an anode temperature becomes lower than an oxidative degradation temperature,

where FE represents a flow rate of the hydrocarbon-based fuel supplied to the reformer in a state in which the following conditions i to iv are all satisfied,

i) the anode temperature of the solid oxide fuel cell is steady,

ii) the anode temperature is lower than the oxidative degradation temperature,

iii) in the reformer, the hydrocarbon-based fuel is reformed, and a reformed gas with a composition suitable to be supplied to an anode is produced, and

iv) an amount of the reformed gas produced is equal to or more than the requisite minimum flow rate for preventing oxidative degradation of the anode when the anode temperature of the solid oxide fuel cell is a temperature equal to or higher than the oxidative degradation temperature, and

FS represents a flow rate of the hydrocarbon-based fuel supplied to the reformer at a point of time of start of the shutdown method.

Priority Claims (1)
JP 2008-016346 · Jan 28, 2008 · national
Continuity (2)
Division 12864963
Related Publication 20140255809A1 · Sep 11, 2014