IP Library Granted Patent US 10,164,276
Granted Patent B2
US 10,164,276 · App. 13/387,499 · Granted Dec 25, 2018

Fuel cell device

Inventors: Ono Takashi (Kirishima, JP); Mitsuhiro Nakamura (Kirishima, JP); Naruto Takahashi (Kirishima, JP)
Assignee: KYOCERA CORPORATION
H01M8/04805H01M8/0491H01M8/0494H01M8/04619H01M8/04731H01M8/04753H01M8/0618H01M8/04589H01M2008/1293H01M2250/405Y02B90/16
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Quick Facts
Patent No.
US 10,164,276
App. No.
13/387,499
Granted
Dec 25, 2018
Kind
B2
Abstract

A fuel cell device is improved for operating conditions during a partial load operation. The fuel cell device comprises a cell stack formed by electrically connecting fuel cells for generating power by fuel gas and oxygen-containing gas; a fuel gas supply unit for supplying the fuel gas to the fuel cells; and a power adjustment unit for adjusting the amount of current that is supplied to an external load and a controller for controlling the fuel gas supply unit and the power adjustment unit. The controller adjusts, during the partial load operation of the fuel cell device and when the fuel gas supplied to the cell stack is at low flow rate. The a relationship between a fuel utilization rate of the cell stack and the amount of power generated by the cell stack can be nonlinear.

Claims (36)

1. A method of operating a fuel cell device comprising fuel cells, the method comprising:

supplying a fuel gas to the fuel cells;

supplying an oxygen-containing gas to the fuel cells;

generating an electric current at the fuel cells by a reaction of the fuel gas and the oxygen-containing gas;

linearly increasing a rate of fuel utilization of the fuel cells with increasing the electric current when the fuel gas flow is below a minimum fuel gas flow necessary to maintain a temperature of the fuel cells above a predetermined temperature;

non-linearly increasing the rate of fuel utilization from a point of minimum fuel gas flow with increasing the electric current during a partial load operation; and

maintaining during a rated operation the rate of fuel utilization constant with increasing the electric current.

2. The method according to claim 1 , further comprising:

decreasing during the partial load operation a gradient of the rate of fuel utilization over the electric current with increasing the electrical current.

3. The method according to claim 1 , further comprising:

increasing during the partial load operation a gradient of the rate of fuel utilization over the electric current with increasing the electrical current.

4. A method of operating a fuel cell device comprising fuel cells, the method comprising:

supplying a fuel gas to the fuel cells;

supplying an oxygen-containing gas to the fuel cells;

generating, by operating a controller, an electric current at the fuel cells by a reaction of the fuel gas and the oxygen-containing gas;

operating the controller to:

1) linearly increase a rate of fuel utilization (Uf (%)) of the fuel cells with increasing the electric current when the fuel gas flow is below a minimum fuel gas flow necessary to maintain a temperature of the fuel cells above a predetermined temperature;

2) non-linearly increase the rate of fuel utilization (Uf (%)) from a point of minimum fuel gas flow with increasing the electric current during a partial load operation; and

3) maintain the rate of fuel utilization (Uf (%)) constant with increasing the electric current during a rated operation.

5. The method according to claim 4 , further comprising:

decreasing during the partial load operation a gradient of the rate of fuel utilization over the electric current with increasing the electrical current.

6. The method according to claim 4 , further comprising:

increasing during the partial load operation a gradient of the rate of fuel utilization over the electric current with increasing the electrical current.

7. A method of operating a fuel cell device comprising fuel cells, the method comprising:

supplying a fuel gas to the fuel cells from a raw fuel supply unit at a fuel gas flow rate;

supplying an oxygen-containing gas to the fuel cells;

generating, at the fuel cells, an electric current (I) in one of at least a first range defining a partial load operation and a second range defining a rated operation, by controlling a reaction of the fuel gas and the oxygen-containing gas by a controller;

operating the controller to control the fuel gas flow rate to:

1) linearly vary a rate of fuel utilization (Uf (%)) of the fuel cells in direct proportion to the electric current when the fuel gas flow is below a minimum fuel gas flow, wherein the minimum fuel gas flow is defined as a minimum fuel gas flow sufficient to maintain a temperature of the fuel cells above a predetermined temperature;

2) non-linearly vary the rate of fuel utilization (Uf (%)) as a function of the current when the fuel gas flow is above the minimum fuel gas flow and the current is in the first range; and

3) maintain the rate of fuel utilization (Uf (%)) constant when the current is in the second range.

8. The method of claim 7 wherein the current produced during the rated operation is higher than the current produced during the partial load operation.

9. The method according to claim 8 , further comprising:

decreasing, during the partial load operation, a gradient of the rate of fuel utilization over the electric current with increasing the electrical current within the first range.

10. The method according to claim 8 , further comprising:

increasing, during the partial load operation, a gradient of the rate of fuel utilization over the electric current with increasing the electrical current within the first range.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 16, 2012
From: ONO, TAKASHI; NAKAMURA, MITSUHIRO; TAKAHASHI, NARUTO
To: KYOCERA CORPORATION
Reel/Frame 027716/0887 →
Priority Claims (1)
JP 2009-176296 · Jul 29, 2009 · national
Continuity (1)
Related Publication 20120148933A1 · Jun 14, 2012