A reduced order pseudochannelmodel accounting for flowmaldistribution in automotivecatalysis
Journal article, 2025
3D models are necessary. However, the computational cost associated with simulations based on such models prevents their application to long-time behaviors as well as in real-time control and diagnostics. While single-channel models (SCMs) are computationally efficient, they struggle to
provide accurate predictions during real-time operations with flow maldistribution. In this study, we propose a pseudochannel model derived using steady-state reactive 3D simulations and a nonlinear least squares optimization technique. We show that the performance of this pseudochannel model is superior to a conventional SCM in both transient and steady state test cases. At the same time, the computational cost of the pseudochannel model is equivalent to that of the SCM. These results imply that flow maldistribution effects can be well incorporated in SCMs via a pseudochannel approach that
relies on relatively inexpensive steady-state system data.
3D-CFD
Pseudochannel
1D-SCM
Reduced order model
Catalytic converter
Author
Pratheeba Chanda Nagarajan
Chalmers, Mechanics and Maritime Sciences (M2), Fluid Dynamics
Henrik Ström
Chalmers, Mechanics and Maritime Sciences (M2), Fluid Dynamics
Jonas Sjöblom
Chalmers, Mechanics and Maritime Sciences (M2), Energy Conversion and Propulsion Systems
Scientific Reports
2045-2322 (ISSN) 20452322 (eISSN)
Vol. 15 15:5082EATS modelling towards zero emissions
Combustion Engine Research Center, 2019-06-03 -- 2024-01-31.
Subject Categories (SSIF 2025)
Other Chemical Engineering
Energy Engineering
DOI
10.1038/s41598-025-89756-w