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An Automatic Method for Generation of CFD-Based 3D Compartment Models: Towards Real-Time Mixing Simulations
Johan Le Nepvou De Carfort1, Tiago Pinto2, Ulrich Krühne1
1Process and System Engineering Center, Department of Chemical and Biochemical Engineering, 2800 Kongens Lyngby, Denmark.
This study introduces a method to automatically create compartment models from computational fluid dynamics (CFD) data for large reactors. These models simplify mixing and accurately predict fermentation processes in real-time.
Area of Science:
- Chemical Engineering
- Bioprocess Engineering
- Computational Fluid Dynamics (CFD)
Background:
- Accurate modeling of large-scale reactors is crucial for optimizing bioprocesses.
- Simplifying complex mixing phenomena while retaining key interactions is a significant challenge.
- Computational Fluid Dynamics (CFD) provides detailed but computationally intensive simulations.
Purpose of the Study:
- To develop an automated method for generating compartment models from CFD data.
- To simplify complex mixing and reaction dynamics in large-scale bioreactors.
- To enable real-time prediction capabilities for bioprocesses.
Main Methods:
- Converting CFD simulation results into mass balance equations for compartment models.
- Applying a compartmentalization technique to different bioreactor geometries.
- Coupling the generated compartment models with Monod-type biokinetic models.
Main Results:
- The generated compartment models successfully replicated CFD-simulated tracer mixing profiles.
- Substrate gradients were shown to significantly impact biokinetics, especially at larger scales.
- The coupled model achieved faster-than-real-time simulation speeds for fermentation processes.
Conclusions:
- The automated generation of CFD-based compartment models offers a viable simplification strategy.
- These models accurately capture essential reactor dynamics and are scalable.
- The real-time simulation capability is vital for digital twin and predictive applications in bioprocessing.
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