IP Library Patent Application 18455014
Patent Application
App. No. 18/455,014

FUEL CELL SYSTEM AND AIR BLEEDING METHOD THEREOF

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Quick Facts
Patent No.
US None
App. No.
18/455,014
Abstract

A fuel cell system including a radiator disposed on an electronic part cooling line, the cooling line configured to pass through an electronic part and to circulate a coolant, the radiator being configured to cool the coolant, a coolant pump configured to pump the coolant to circulate the coolant in electronic part cooling line, and a controller configured to determine whether air bubbles are generated, based on a change in a current of the coolant pump while the coolant is circulating and control an air bleeding through the coolant pump.

Claims (67)

1 . A fuel cell system, comprising:

a radiator disposed on an electronic part cooling line, the cooling line configured to pass through an electronic part and to circulate a coolant, the radiator being configured to cool the coolant;

a coolant pump configured to pump the coolant to circulate the coolant in electronic part cooling line; and

a controller configured to:

determine whether air bubbles are generated, based on a change in a current of the coolant pump while the coolant is circulating; and

control an air bleeding through the coolant pump.

2 . The fuel cell system of claim 1 , wherein the controller is further configured to:

monitor the current of the coolant pump while controlling the coolant pump to a target duty.

3 . The fuel cell system of claim 2 , wherein the controller is further configured to:

control the target duty of the coolant pump through a sine wave in a range of 0% to 100%, when the change in the current of the coolant pump exceeds a target duty change.

4 . The fuel cell system of claim 3 , wherein the controller is further configured to:

determine whether a motor of the coolant pump is operating in an abnormal manner when the current of the coolant pump fails to follow the target duty, while the target duty of the coolant pump is controlled through the sine wave in the range of 0% to 100%; and

terminate an operation of the fuel cell system responsive to a determination of the abnormal manner.

5 . The fuel cell system of claim 3 , wherein the controller is further configured to:

determine whether the air bubbles are being generated in the electronic part cooling line, when the current of the coolant pump follows the target duty, while the target duty of the coolant pump is controlled through the sine wave in the range of 0% to 100%.

6 . The fuel cell system of claim 5 , wherein the controller is further configured to:

control the target duty of the coolant pump to a fixed value for one cycle to determine the change of the current of the coolant pump, responsive to a determination that the air bubbles are being generated in the electronic part cooling line.

7 . The fuel cell system of claim 6 , wherein the controller is further configured to:

determine whether the air bubbles are being removed from the electronic part cooling line, when the current of the coolant pump follows the target duty having the fixed value for one cycle.

8 . The fuel cell system of claim 6 , wherein the controller is further configured to:

perform the air bleeding by determining whether the air bubbles are not being removed from the electronic part cooling line, when the current of the coolant pump fails to follow the target duty having the fixed value for the one cycle.

9 . The fuel cell system of claim 8 , wherein the controller is further configured to:

control the target duty of the coolant pump through a (−) sine wave; and

perform the air bleeding responsive to a terminating sequence of the fuel cell system being commenced.

10 . The fuel cell system of claim 9 , wherein the controller is further configured to:

control the target duty of the coolant pump to the fixed value for the one cycle;

determine the change of the current of the coolant pump; and

perform the air bleeding until the current of the coolant pump follows the target duty having the fixed value.

11 . The fuel cell system of claim 1 , further comprising:

a reservoir installed on the electronic part cooling line and connected to the radiator, the reservoir being configured to store the coolant.

12 . The fuel cell system of claim 11 , wherein the reservoir includes:

a reservoir valve open to discharge air when the air bleeding is performed.

13 . The fuel cell system of claim 1 , wherein the coolant pump includes:

a motor; and

four switching devices, and

wherein the motor and the four switching devices comprise a full-bridge circuit to bi-directionally control a rotating operation of the motor.

14 . An air bleeding method, the method comprising:

circulating a coolant, which is cooled by a radiator, along an electronic part cooling line passing through an electronic part;

determining whether air bubbles are generated, based on change in a current of a coolant pump while the coolant is circulating along the electronic part cooling line; and

controlling an air bleeding through the coolant pump, when the air bubbles are generated.

15 . The air bleeding method of claim 14 , wherein the determining of whether the air bubbles are generated comprises:

monitoring the current of the coolant pump while controlling the coolant pump according to a target duty; and

controlling the target duty of the coolant pump through a sine wave in a range of 0% to 100%, when the change in the current of the coolant pump exceeds a target duty change.

16 . The air bleeding method of claim 15 , further comprising:

terminating the circulation responsive to determining whether a motor of the coolant pump as being in an abnormal state when the current of the coolant pump fails to follow the target duty, while the target duty of the coolant pump is controlled through the sine wave in the range of 0% to 100%.

17 . The air bleeding method of claim 15 , wherein the determining of whether the air bubbles are generated includes:

determining whether the bubbles as being generated on the electronic part cooling line, when the current of the coolant pump follows the target duty, while the target duty of the coolant pump is controlled through the sine wave in the range of 0% to 100%.

18 . The air bleeding method of claim 17 , further comprising:

controlling the target duty of the coolant pump to operate at a fixed value for one cycle to determine the change of the current of the coolant pump when the air bubbles are generated;

determining that the air bubbles have been removed from the electronic part cooling line responsive to the current of the coolant pump following the target duty having the fixed value for the one cycle; and

determining that the air bubbles have not been removed from the electronic part cooling line responsive to the current of the coolant pump failing to follow the target duty having the fixed value for the one cycle.

19 . The air bleeding method of claim 17 , wherein the controlling of the air bleeding includes:

performing a terminating sequence of a system, responsive to a determination that the air bubbles are not removed from the electronic part cooling line, wherein the terminating sequence comprises:

performing the air bleeding by controlling the target duty of the coolant pump through a (−) sine wave; and

opening a reservoir valve mounted on the electronic part cooling line to discharge air from a reservoir to store the coolant during the air bleeding.

20 . The air bleeding method of claim 19 , wherein the performing of the air bleeding comprises:

controlling the target duty of the coolant pump to the fixed value, for the one cycle and determining the current change of the coolant pump; and

performing air bleeding until the current of the coolant pump follows the target duty having the fixed value.

21 . A processor-implemented method, the method comprising:

detecting a presence of air bubbles within a coolant system based on a change in a current draw of a coolant pump during a circulation of coolant within the coolant system; and

initiating an air bleeding process through the coolant pump when the presence of air bubbles is detected.

22 . The method of claim 21 , further comprising:

monitoring the current draw of the coolant pump while operating the coolant pump at a predefined target duty.

23 . The method of claim 22 , wherein the predefined target duty of the coolant pump is modulated using a sine wave within a range of 0% to 100% when the change in current draw of the coolant pump exceeds a predefined target duty change.

24 . The method of claim 21 , further comprising:

configuring the coolant pump to operate at a fixed target duty having a fixed value for a single cycle responsive to the detection of the presence of air bubbles; and

monitoring if the current draw of the coolant pump follows the fixed target duty for the single cycle to determine whether the air bubbles have been removed from the electronic part cooling line.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 24, 2024
From: HYUNDAI MOBIS CO., LTD.
To: HYUNDAI MOTOR COMPANY; KIA CORPORATION
Reel/Frame 068672/0751 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 24, 2023
From: LEE, YONG HEE
To: HYUNDAI MOBIS CO., LTD.
Reel/Frame 064693/0083 →