Gas purge control for coolant in a fuel cell
10096852 ยท 2018-10-09
Assignee
Inventors
Cpc classification
H01M8/04291
ELECTRICITY
Y02E60/50
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
H01M8/0267
ELECTRICITY
International classification
H01M8/06
ELECTRICITY
H01M8/04119
ELECTRICITY
H01M8/0267
ELECTRICITY
Abstract
A fuel cell includes a water transport plate providing a water flow field. The water flow field permits a flow of water having an entrained gas. A vent is in fluid communication with the water flow field. At least some of the gas is released from fuel cell by opening a vent. In a disclosed example, a valve is opened in response to conditions indicative of an undesired amount of gas. For example, the valve is actuated in response to a signal from a water level sensor. In another example, the valve is opened based upon a schedule.
Claims
1. A fuel cell, comprising: a fluid transport plate having a closed coolant flow field in fluid communication with a vent opening; a coolant manifold coupled to the vent opening of the fluid transport plate and including a passageway, the vent opening being positioned in the passageway; a sensor positioned in the passageway of the coolant manifold, the sensor configured to detect a level of a coolant in the fluid transport plate; and a valve positioned in the passageway of the coolant manifold and coupled to the sensor, the valve being configured to seal and unseal the vent opening in response to a signal from the sensor, the valve being configured to open to release excess gas from the fluid transport plate.
2. The fuel cell of claim 1 wherein the closed coolant flow field includes a plurality of parallel channels that extend from the vent opening to a sealed end.
3. The fuel cell of claim 1, further comprising a cathode exhaust loop in fluid communication with the coolant flow field.
4. The fuel cell of claim 3 wherein the cathode exhaust loop includes a condenser, a separator, and a return line configured to supply liquid water to the coolant flow field.
5. The fuel cell of claim 1 wherein the closed coolant flow field is dead-ended.
6. A system, comprising: an anode; a cathode adjacent to the anode; a fluid transport plate in fluid communication with the anode and the cathode, the fluid transport plate having a closed coolant flow field in fluid communication with a vent opening; a coolant manifold coupled to the vent opening of the fluid transport plate and including a passageway, the vent opening being positioned in the passageway; a sensor positioned in the passageway of the coolant manifold; a valve positioned in the passageway of the coolant manifold; and a controller coupled to the valve, the controller configured to control the valve to seal and unseal the vent opening to release excess gas from the fluid transport plate.
7. The system of claim 6 wherein the controller is configured to open the valve periodically.
8. The system of claim 6 wherein the controller is configured to open the valve in response to a signal from a sensor.
9. The system of claim 8 wherein the fluid transport plate includes a plurality of parallel channels.
10. A system, comprising: an anode; a cathode; a fluid transport plate in fluid communication with the anode and the cathode, the fluid transport plate having a closed coolant flow field in fluid communication with a vent opening; a coolant manifold coupled to the vent opening of the fluid transport plate and including a passageway, the vent opening being positioned in the passageway; a valve positioned in the passageway of the coolant manifold; a sensor positioned in the passageway of the coolant manifold and coupled to the valve; and a cathode exhaust loop coupled to the cathode.
11. The system of claim 10 wherein the cathode exhaust loop includes a condenser coupled between the cathode and the fluid transport plate.
12. The system of claim 11 wherein the cathode exhaust loop includes a separator coupled to the condenser, the separator configured to collect fluid from the condenser.
13. The system of claim 12 wherein the separator is coupled to the fluid transport plate and is configured to provide fluid from the separator to the flow field.
14. The fuel cell of claim 1, further comprising: an actuator positioned in the coolant manifold and operably coupled to the valve, the actuator configured to open and close the valve, the opening and closing of the valve respectively sealing and unsealing the vent opening.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENT
(5)
(6) A separator plate 44 configured as a water transport plate comprises a water flow field 24 (
(7) In another example, the water flow field is replaced by a coolant flow field 24 wherein the coolant contains a percentage of water in a low vapor pressure carrier, and the percentage of water is sufficient to evaporatively cool the cell.
(8) In yet another example, one of the separator plates is solid. One side of the solid separator plate has reactant flow fields; the other side has a coolant flow field allowing water to humidify the adjacent reactant flow field through the adjacent porous plate.
(9) Water passes through the water transport plate 44, humidifies the reactant stream, and hydrates the membrane in the electrode assembly 16. Water formed by the electrochemical reaction on the cathode side of the electrode assembly 16, as well as water passing through the membrane by osmotic drag, is evaporated into the cathode reactant stream of the cathode 14 on the opposite side of the water flow field 24. Oxidant pumped through the reactant flow field increases in temperature and becomes saturated as it receives the evaporated water vapor. A cathode exhaust loop 28 receives cathode exhaust (substantially depleted of oxygen) with water vapor, and the water vapor is condensed with a condenser 30 and fan 32, or a similar arrangement. Liquid water 36 is collected in a separator 34 and some of the gases are vented through an exit 40 in the separator 34. A return line 38 supplies the liquid water 36 back to the water flow field 24 of the fuel cell 10.
(10) Referring to
(11) Referring to
(12) Another example embodiment is shown in
(13) Although several example embodiments have been disclosed, a worker of ordinary skill in this art would recognize that certain modifications would come within the scope of the claims. For that reason, the following claims should be studied to determine their true scope and content.