Large substrate concentration gradients can exist in chemical or biochemical reactions, resulting from a large circulation time compared to the turnover time of substrates. The influence of such gradients on the microbial metabolism can significantly compromise optimal bioreactor performance. Lapin et al. (2004) proposed an Euler–Lagrange CFD method to study the impact of such gradients from the microbial point of view. The discrete representation of the biomass phase yields an advantageous perspective for studying the impact of extra-cellular variations on the metabolism, but at significant computational cost. In particular, the tracked number of particles, as well as the applied time resolution, have a large impact on both the accuracy of...
Successful scale-up of bioprocesses requires that laboratory-scale performance is equally achieved d...
Simulations are becoming an essential tool to design and improve processes in the field of biotechno...
Successful scale-up of bioprocesses requires that laboratory-scale performance is equally achieved d...
Large substrate concentration gradients can exist in chemical or biochemical reactions, resulting fr...
The trajectories, referred to as lifelines, of individual microorganisms in an industrial scale ferm...
Abstract Euler‐Lagrange CFD simulations, where the biotic phase is represented by computational part...
The trajectories, referred to as lifelines, of individual microorganisms in an industrial scale ferm...
The broth in industrial scale fermentors may contain significant gradients in, for example, substrat...
The traditional Eulerian view of biomass in bioprocess modelling results in issues when modelling la...
Euler-Lagrange CFD simulations, where the biotic phase is represented by computational particles (pa...
We assess the effect of substrate heterogeneity on the metabolic response of P. chrysogenum in indus...
The compartment model (CM) is a well-known approach for computationally affordable, spatially resolv...
We assess the effect of substrate heterogeneity on the metabolic response of P. chrysogenum in indus...
The compartment model (CM) is a well-known approach for computationally affordable, spatially resolv...
With reaction timescales equal to or shorter than the circulation time, the ideal mixing assumption ...
Successful scale-up of bioprocesses requires that laboratory-scale performance is equally achieved d...
Simulations are becoming an essential tool to design and improve processes in the field of biotechno...
Successful scale-up of bioprocesses requires that laboratory-scale performance is equally achieved d...
Large substrate concentration gradients can exist in chemical or biochemical reactions, resulting fr...
The trajectories, referred to as lifelines, of individual microorganisms in an industrial scale ferm...
Abstract Euler‐Lagrange CFD simulations, where the biotic phase is represented by computational part...
The trajectories, referred to as lifelines, of individual microorganisms in an industrial scale ferm...
The broth in industrial scale fermentors may contain significant gradients in, for example, substrat...
The traditional Eulerian view of biomass in bioprocess modelling results in issues when modelling la...
Euler-Lagrange CFD simulations, where the biotic phase is represented by computational particles (pa...
We assess the effect of substrate heterogeneity on the metabolic response of P. chrysogenum in indus...
The compartment model (CM) is a well-known approach for computationally affordable, spatially resolv...
We assess the effect of substrate heterogeneity on the metabolic response of P. chrysogenum in indus...
The compartment model (CM) is a well-known approach for computationally affordable, spatially resolv...
With reaction timescales equal to or shorter than the circulation time, the ideal mixing assumption ...
Successful scale-up of bioprocesses requires that laboratory-scale performance is equally achieved d...
Simulations are becoming an essential tool to design and improve processes in the field of biotechno...
Successful scale-up of bioprocesses requires that laboratory-scale performance is equally achieved d...