| Fachbereiche | |
|---|---|
| Buchreihen (99) |
1412
|
| Nachhaltigkeit |
3
|
| Gesundheitswesen |
3
|
| Geisteswissenschaften |
2402
|
| Naturwissenschaften |
5427
|
| Ingenieurwissenschaften |
1818
|
| Allgemeine Ingenieurwissenschaften | 292 |
| Maschinenbau und Verfahrenstechnik | 872 |
| Elektrotechnik | 697 |
| Bergbau- und Hüttenwesen | 30 |
| Architektur und Bauwesen | 76 |
| Allgemein |
97
|
|
Leitlinien Unfallchirurgie
5. Auflage bestellen |
|
Leseprobe, PDF (150 KB)
Inhaltsverzeichnis, PDF (33 KB)
Industrial-scale bioreactors expose cells to complex and continuously changing hydrodynamic conditions that are difficult to reproduce at laboratory scale. Conventional scale-down approaches are often developed under single-phase conditions and evaluated primarily using mixing times.
This work combines experiments and validated Lattice-Boltzmann Large-Eddy Simulations to characterise the multiphase hydrodynamics of a 15 m³ mammalian cell culture stirred tank reactor. A Lagrangian, cell-centred perspective is used to quantify the conditions experienced by cells through velocity distributions, circulation times, residence times, and lifelines. Finite-Time Lyapunov Exponent fields additionally reveal coherent flow structures and transport barriers.
The methodology is applied to evaluate the Single Multi-Compartment Bioreactor as a representative scale-down system. The results show that similarity achieved under single-phase conditions does not necessarily persist during aeration, highlighting the need to incorporate multiphase lifeline metrics into scale-down development and evaluation.
| ISBN-13 (Printausgabe) | 9783689525781 |
| ISBN-13 (E-Book) | 9783689525798 |
| DOI | 10.61061/ISBN_ 9783689525781 |
| Buchendformat | B5 |
| Sprache | Englisch |
| Seitenanzahl | 142 |
| Umschlagkaschierung | matt |
| Auflage | 1. |
| Buchreihe | Berichte aus dem Institut für Mehrphasenströmungen |
| Band | 18 |
| Erscheinungsort | Göttingen |
| Erscheinungsdatum | 24.07.2026 |
| Allgemeine Einordnung | Dissertation |
| Fachbereiche |
Ingenieurwissenschaften
|
| Schlagwörter | Rührkesselreaktor, CFD, computational fluid dynamics, Numerik, lifelines, scale-down, scale transfer, Bioprocess Engineering, Bioreactor Hydrodynamics, Numerical Simulation, Stirred Tank Reactor (STR), Single Multi-Compartment Bioreactor (SMCB), Cell-Bioreactor Interaction, Fermentation Technology, Industrial Biotechnology |