Journal of Power Sources, Vol.195, No.1, 214-222, 2010
Kinetics of (reversible) internal reforming of methane in solid oxide fuel cells under stationary and APU conditions
The internal reforming of methane in a solid oxide fuel cell (SOFC) is investigated and modeled for flow conditions relevant to operation. To this end, measurements are performed on anode-supported cells (ASC), thereby varying gas composition (y(CO) = 4-15%, y(H2) = 5-17%, y(CO2) = 6-18%, y(H2O) = 2-30%, y(CH4) = 0.1-20%) and temperature (600-850 degrees C). In this way, operating conditions for both stationary applications (methane-rich pre-reformate) as well as for auxiliary power unit (APU) applications (diesel-POX reformate) are represented. The reforming reaction is monitored in five different positions alongside the anodic gas channel by means of gas chromatography. It is shown that methane is converted in the flow field for methane-rich gas compositions, whereas under operation with diesel reformate the direction of the reaction is reversed for temperatures below 675 degrees C, i.e. (exothermic) methanation occurs along the anode. Using a reaction model, a rate equation for reforming could be derived which is also valid in the case of methanation. By introducing this equation into the reaction model the methane conversion along a catalytically active Ni-YSZ cermet SOFC anode can be simulated for the operating conditions specified above. (C) 2009 Elsevier B.V. All rights reserved.