The present invention relates generally to the flow field board arrangement for membrane electrode assemblies (MEAs) in a fuel cell, and more particularly, to a flow field board arrangement that can provide fuel for each MEA and drain products of the MEA almost at the same time.
A conventional flow field board of a fuel cell includes a flowing field board arrangement like a trench, which is used to drift fuel into a membrane electrode assembly (MEA). However, it is difficult for conventional flow field board to supply fuel from the inlet for each MEA and drain products generated by the electrochemical reaction of MEA almost at the same time. Accordingly, each MEA performs the electrochemical reaction in different environment, resulting in poor electric quality of the fuel cell.
Therefore, an improved flow field board arrangement is provided to overcome the foresaid disadvantages, which can provide fuel for each MEA and drain products of the MEA almost at the same time.
It is an object of the invention to provide a flow field board arrangement for a fuel cell, which provides fuel for each MEA almost at the same time.
It is another object of the invention to provide a flow field board arrangement for a fuel cell, which drains products of the MEA almost at the same time.
In accordance with the aforesaid objects of the invention, a flow field board arrangement for a fuel cell is provided. The arrangement comprises a substrate including injection flow channels disposed on the surface thereof, exhaust flow channels disposed on the surface thereof and at least a concave portion disposed on the surface thereof; wherein each concave portion is connected to the corresponding injection flow channel and the corresponding exhaust flow channel. The arrangement also comprises an inlet disposed on a side of the substrate and connected to an end of the injection flow channel, and an outlet disposed on a side of the substrate and connected to an end of the exhaust flow channel. Each injection flow channel has the identical length from an influx end of the concave portion to the inlet and/or has an equivalent flow rate, and each exhaust flow channel has the identical length from an efflux end of the concave portion to the outlet and/or has an equivalent flow rate. Further, each injection flow channel has a length as same as each exhaust flow channel's and/or has a flow rate as same as each exhaust flow channel's.
The following detailed description of the embodiments of the present invention can be best understood when read in conjunction with the following drawings, where like structure is indicated with like reference numerals and in which:
With reference to FIGS. 1 to 3 to illustrate a flow field board arrangement for a fuel cell of the invention,
In currently preferred embodiments of the invention, it is noted that the length of each inject flow channel 12 from the influx end 14a of every concave portion 14 to the inlet 15 is identical in the flow field board arrangement 1. Furthermore, the flow rate of every inject flow channel 12 is equivalent. Preferably, shown in
As shown in
Besides, referring to
The substrate 11 may be an acid-resisting and anticorrosive metal substrate, which is mechanically fabricated or punch molded to be a flow field board arrangement 1. The substrate 11 is made of, for example, plastics, and is formed to be a flow field board arrangement 1 by injection molding. Besides, the substrate 11 may be an epoxy glass fiber substrate, a ceramic substrate or a polymer plastic substrate. Afterwards, mechanically fabricated or injection molded to be a flow field board arrangement 1. Additionally, the flow field board arrangement 1 may be a complex flow field board with two or more materials described above.
The inject flow channels 12, the exhaust flow channels 13, the concave portions 14, the inlet 15, and the outlet 17 may be disposed on a single surface of the flow field board arrangement 1 or on both the top and bottom surfaces of the flow field board arrangement 1, insomuch, a single-sided or two-sided flow field board arrangement 11 is manufactured.
Fuel can be supplied for each concave portion 14 almost at the same time, and products within each concave portion 14 can be drained out of the outlet 17 almost at the same time by the flow field board arrangement 1. Moreover, products are pushed against one another when drained out in the flow field board arrangement 1. Hence, if the MEAs 21 produce bubbles during the electrochemical reaction, the bubbles are also pushed out completely without leaving in the flow field board arrangement 1.
While the invention has been particularly shown and described with reference to the preferred embodiments thereof, these are, of course, merely examples to help clarify the invention and are not intended to limit the invention. It will be understood by those skilled in the art that various changes, modifications, and alterations in form and details may be made therein without departing from the spirit and scope of the invention, as set forth in the following claims.
Number | Date | Country | Kind |
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094202690 | Feb 2005 | TW | national |