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Quasi-continuous fermentation in a reverse-flow diafiltration bioreactor
Affiliation:1. RWTH Aachen, AVT – Biochemical Engineering, Worringer Weg 1, 52074 Aachen, Germany;2. RWTH Aachen, AVT – Chemical Product & Process Engineering, Turmstraße 46, 52064 Aachen, Germany;1. Faculty of Chemical and Food Technology, Slovak University of Technology, Radlinského 9, 81237 Bratislava, Slovakia;2. Process Dynamics and Operations Group, Technische Universität Dortmund, Germany;1. Design Manufacturing and Control Laboratory, EA 4495, ENSAM CER Metz, 4 rue Augustin Fresnel, 57078 Metz Cedex 3, France;2. National Engineering School of Metz, 1 route d’Ars Laquenexy, 57078 Metz Cedex 3, France
Abstract:Heterogeneities occur in various bioreactor designs including cell retention devices. Whereas in external devices changing environmental conditions cannot be prevented, cells are retained in their optimal environment in internal devices. Conventional reverse-flow diafiltration utilizes an internal membrane device, but pulsed feeding causes spatial heterogeneities. In this study, the influence of conventional reverse-flow diafiltration on the yeast Hansenula polymorpha is investigated. Alternating 180 s of feeding with 360 s of non-feeding at a dilution rate of 0.2 h−1 results in an oscillating DOT signal with an amplitude of 60%. Thereby, induced short-term oxygen limitations result in the formation of ethanol and a reduced product concentration of 25%. This effect is enforced at increased dilution rate. To overcome this cyclic problem, sequential operation of three membranes is introduced. Thus, quasi-continuous feeding is achieved reducing the oscillation of the DOT signal to an amplitude of 20% and 40% for a dilution rate of 0.2 h−1 and 0.5 h−1, respectively. Fermentation conditions characterized by complete absence of oxygen limitation and without formation of overflow metabolites could be obtained for dilution rates from 0.1 h−1 to 0.5 h−1. Thus, sequential operation of three membranes minimizes oscillations in the DOT signal providing a nearly homogenous culture over time.
Keywords:In situ product recovery  Hollow fibers  Membrane bioreactors  Dissolved Oxygen  Glucose pulse
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