Fuel cell system
If a medium outlet temperature of a heat exchange medium is not less than a threshold temperature, the heat exchange medium is supplied to a medium flow field of a fuel cell stack at a predetermined flow rate, and if the medium outlet temperature is less than the threshold temperature, in correspondence with the decrease of a medium outlet temperature, the heat exchange medium is supplied to the medium flow field at a flow rate decreased from the predetermined flow rate so as to prevent increase in the differential pressure between an anode flow field and the medium flow field in the fuel cell stack.
1 . A fuel cell system comprising a fuel cell stack including a plurality of stacked power generation cells, the power generation cells each comprising a membrane electrode assembly and separators sandwiching the membrane electrode assembly, the membrane electrode assembly comprising a cathode, an anode, and a solid polymer electrolyte membrane interposed between the cathode and the anode,
wherein an anode flow field configured to allow a fuel gas to flow along the anode, a cathode flow field configured to allow an oxygen-containing gas to flow along the cathode, and a medium flow field configured to allow a heat exchange medium to flow adjacent to the anode flow field and the cathode flow field, are formed in the separators,
the fuel cell system further comprising:
a medium supply apparatus configured to supply the heat exchange medium to the medium flow field in the fuel cell stack through a medium inlet pipe, and collect and cool the heat exchange medium which flowed inside the fuel cell stack, through a medium outlet pipe;
a temperature acquisition unit configured to obtain a temperature of the heat exchange medium in the medium outlet pipe or a temperature correlated with the temperature of the heat exchange medium in the medium outlet pipe, as a medium outlet temperature; and
one or more processors that execute computer-executable instructions stored in a memory,
wherein the one or more processors execute the computer-executable instructions to cause the fuel cell system to:
control the medium supply apparatus;
if the medium outlet temperature is not less than a threshold temperature, supply the heat exchange medium to the medium flow field at a predetermined flow rate;
if the medium outlet temperature is less than the threshold temperature, decrease the predetermined flow rate in correspondence with a decrease of the medium outlet temperature and supply the heat exchange medium to the medium flow field at a flow rate decreased from the predetermined flow rate;
if the medium outlet temperature is not less than the threshold temperature, supply the heat exchange medium to the medium flow field at the predetermined flow rate;
if the medium outlet temperature is less than the threshold temperature, compare a first flow rate by a first flow rate control for decreasing a supply flow rate from the predetermined flow rate, in correspondence with the decrease of the medium outlet temperature, and a second flow rate by second flow rate control for increasing and decreasing the supply flow rate, in accordance with an increase and decrease of power generation electric power of the fuel cell stack; and
control the medium supply apparatus to control the supply flow rate to larger one of the first flow rate or the second flow rate.
2 . A fuel cell system comprising a fuel cell stack including a plurality of stacked power generation cells, the power generation cells each comprising a membrane electrode assembly and separators sandwiching the membrane electrode assembly, the membrane electrode assembly comprising a cathode, an anode, and a solid polymer electrolyte membrane interposed between the cathode and the anode,
wherein an anode flow field configured to allow a fuel gas to flow along the anode, a cathode flow field configured to allow an oxygen-containing gas to flow along the cathode, and a medium flow field configured to allow a heat exchange medium to flow adjacent to the anode flow field and the cathode flow field, are formed in the separators,
the fuel cell system further comprising:
a medium supply apparatus configured to supply the heat exchange medium to the medium flow field in the fuel cell stack through a medium inlet pipe, and collect and cool the heat exchange medium which flowed inside the fuel cell stack, through a medium outlet pipe;
a temperature acquisition unit configured to obtain a temperature of the heat exchange medium in the medium outlet pipe or a temperature correlated with the temperature of the heat exchange medium in the medium outlet pipe, as a medium outlet temperature; and
one or more processors that execute computer-executable instructions stored in a memory,
wherein the one or more processors execute the computer-executable instructions to cause the fuel cell system to:
control the medium supply apparatus;
if the medium outlet temperature is not less than a threshold temperature, supply the heat exchange medium to the medium flow field at a predetermined flow rate;
if the medium outlet temperature is less than the threshold temperature, decrease the predetermined flow rate in correspondence with a decrease of the medium outlet temperature and supply the heat exchange medium to the medium flow field at a flow rate decreased from the predetermined flow rate;
regulate the predetermined flow rate for supplying the heat exchange medium to the medium flow field, to a maximum flow rate; and
if an increase speed of inlet pressure in the anode flow field becomes not less than a predetermined speed or if the inlet pressure becomes not less than a predetermined pressure, allow the medium supply apparatus to supply the heat exchange medium at the maximum flow rate.