Projects per year
Abstract
We present a novel approach for the fast modeling of exothermic chemical reactions in industrial‐scale fluidized bed reactors. It implicates a fast olefin polymerization process, accounting for the catalyst activity, the solubility of the reaction gases in polymer, the particles crystallinity and the reaction masses and heat transfer. We principally apply the transport‐based recurrence CFD (rCFD) model upon the base of a short‐term non‐reactive simulation performed by a coarse‐grained two‐fluid model (cgTFM). Following the captured recurrent flows, the methodology propagates rapidly passive scalars far beyond the recorded simulation. The reaction kinetics of production/consumption rates due to polymerization are locally embedded into the individual solid/gas species concentrations. These in turn are considered in transporting the enthalpy and the generated heat by reaction. By doing so, the significant computational effort required to couple the thermodynamic effects of polymerization with the cgTFM (hybrid model), is drastically reduced using rCFD with very reliable agreement.
Original language | English |
---|---|
Article number | e17161 |
Number of pages | 16 |
Journal | AIChE Journal |
Volume | 67 |
Issue number | 5 |
DOIs | |
Publication status | Published - May 2021 |
Fields of science
- 204 Chemical Process Engineering
- 103032 Fluid mechanics
JKU Focus areas
- Digital Transformation
Projects
- 1 Finished
-
Christian Doppler Laboratory for Multi-scale Modeling of Multiphase Processes
Schneiderbauer, S. (PI)
01.02.2016 → 31.01.2023
Project: Funded research › Other mainly public funds