IP Library Patent Application 13814407
Patent Application
App. No. 13/814,407

POWER GENERATION SYSTEM AND METHOD OF OPERATING THE SAME

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 None
App. No.
13/814,407
Abstract

A power generation system according to the present invention includes: a fuel cell system ( 101 ) including a fuel cell ( 11 ) and a case ( 12 ); a ventilation fan ( 13 ); a controller ( 102 ); a combustion device ( 103 ); and a discharge passage ( 70 ) formed to cause the case ( 12 ) and an exhaust port ( 103 A) of the combustion device ( 103 ) to communicate with each other and configured to discharge an exhaust gas from the fuel cell system ( 101 ) and an exhaust gas from the combustion device ( 103 ) to the atmosphere through an opening of the discharge passage ( 70 ), the opening being open to the atmosphere, and the ventilation fan ( 13 ) is configured to discharge a gas in the case ( 12 ) to the discharge passage ( 70 ) to ventilate the inside of the case ( 12 ), and the controller ( 102 ) causes the ventilation fan ( 13 ) to generate predetermined pressure or higher when the fuel cell system ( 101 ) is in a power generation stop state and the combustion device ( 103 ) is operating.

Claims (43)

1 . A power generation system comprising:

a fuel cell system including a fuel cell configured to generate electric power using a fuel gas and an oxidizing gas and a case configured to house the fuel cell;

a ventilator;

a controller;

a combustion device; and

a discharge passage formed to cause the case and an exhaust port of the combustion device to communicate with each other and configured to discharge an exhaust gas from the fuel cell system and an exhaust gas from the combustion device to an atmosphere through an opening of the discharge passage, the opening being open to the atmosphere, wherein:

the ventilator is configured to discharge a gas in the case to the discharge passage to ventilate an inside of the case; and

the controller causes the ventilator to operate when the fuel cell system is in a power generation stop state and the combustion device is operating.

2 . The power generation system according to claim 1 , wherein the controller causes the ventilator to operate in a case where the combustion device is activated when the fuel cell system is in the power generation stop state.

3 . The power generation system according to claim 1 , wherein the controller causes the ventilator to operate when an activation command of the combustion device is input to the controller.

4 . The power generation system according to claim 2 , wherein the controller causes the ventilator to start operating and then causes the combustion device to start operating.

5 . The power generation system according to claim 1 , wherein the controller causes the ventilator to operate in a case where discharging of the exhaust gas from the combustion device is detected when the fuel cell system is in the power generation stop state.

6 . The power generation system according to claim 5 , further comprising

a first temperature detector provided at least one of on the discharge passage and in the case, wherein

the controller causes the ventilator to operate when a temperature detected by the first temperature detector is higher than a first temperature.

7 . The power generation system according to claim 1 , further comprising:

an air intake passage provided at an air supply port of the case and configured to supply air to the fuel cell system through an opening of the air intake passage, the opening being open to the atmosphere; and

a first temperature detector provided at least one of on the air intake passage, on the discharge passage, and in the case, wherein

the controller causes the ventilator to operate when a difference between temperatures detected by the first temperature detector before and after a predetermined time is increased by a predetermined temperature width.

8 . The power generation system according to claim 5 , further comprising

a pressure detector configured to detect pressure in the discharge passage, wherein the controller causes the ventilator to operate when the pressure detected by the pressure detector is higher than first pressure.

9 . The power generation system according to claim 5 , further comprising

a flow rate detector configured to detect a flow rate of a gas flowing through the discharge passage, wherein

the controller causes the ventilator to operate when the flow rate detected by the flow rate detector is higher than a first flow rate.

10 . The power generation system according to claim 1 , wherein:

the combustion device includes a combustion air supply unit configured to supply combustion air; and

the controller controls the ventilator such that static pressure of the ventilator becomes higher than discharge pressure of the combustion air supply unit.

11 . The power generation system according to claim 1 , further comprising

an air intake passage formed to cause the case and an air supply port of the combustion device to communicate with each other and configured to supply air to the fuel cell system and the combustion device through an opening of the air intake passage, the opening being open to the atmosphere, wherein

the air intake passage is formed so as to be heat-exchangeable with the exhaust passage.

12 . The power generation system according to claim 11 , further comprising

a second temperature detector provided on the air intake passage, wherein

the controller causes the ventilator to operate when a temperature detected by the second temperature detector is higher than a second temperature.

13 . The power generation system according to claim 11 , further comprising

a second temperature detector provided on the air intake passage, wherein

the controller causes the ventilator to operate when a difference between temperatures detected by the second temperature detector before and after a predetermined time is lower than a predetermined temperature width.

14 . The power generation system according to claim 1 , wherein the fuel cell system further includes a hydrogen generator including a reformer configured to generate a hydrogen-containing gas from a raw material and steam.

15 . A method of operating a power generation system,

the power generation system comprising:

a fuel cell system including a fuel cell configured to generate electric power using a fuel gas and an oxidizing gas, a case configured to house the fuel cell, and a ventilator;

a combustion device; and

a discharge passage formed to cause the case and an exhaust port of the combustion device to communicate with each other and configured to discharge an exhaust gas from the fuel cell system and an exhaust gas from the combustion device to an atmosphere through an opening of the discharge passage, the opening being open to the atmosphere, wherein

the ventilator is configured to discharge a gas in the case to the discharge passage to ventilate an inside of the case and is configured to generate predetermined pressure or higher when the fuel cell system is in a power generation stop state and the combustion device is operating.

Assignments (3)
CORRECTIVE ASSIGNMENT TO CORRECT THE ERRONEOUSLY FILED APPLICATION NUMBERS 13/384239, 13/498734, 14/116681 AND 14/301144 PREVIOUSLY RECORDED ON REEL 034194 FRAME 0143. ASSIGNOR(S) HEREBY CONFIRMS THE ASSIGNMENT. Recorded Dec 24, 2020
From: PANASONIC CORPORATION
To: PANASONIC INTELLECTUAL PROPERTY MANAGEMENT CO., LTD.
Reel/Frame 056788/0362 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 10, 2014
From: PANASONIC CORPORATION
To: PANASONIC INTELLECTUAL PROPERTY MANAGEMENT CO., LTD.
Reel/Frame 034194/0143 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 13, 2013
From: MORITA, JUNJI; TATSUI, HIROSHI; YASUDA, SHIGEKI; YUKIMASA, AKINORI; INOUE, ATSUTAKA
To: PANASONIC CORPORATION
Reel/Frame 030399/0255 →