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Insights into the fluid dynamics of the Bach impeller

Publication ,  Journal Article
Wyrobnik, TA; Oh, S; Micheletti, M; Ducci, A
Published in: Chemical Engineering Research and Design
June 1, 2024

The Bach impeller is a novel impeller that was purposefully designed to reduce power consumption as well as shear stress levels in stirred bioreactors. Contrary to conventional impellers where stirring is achieved by the pushing action of the blades, the Bach impeller relies on a central spiral element which induces an up-pumping central vortex and discharges the flow in the tangential direction through vanes. This feature is new and relevant to the field of biochemical engineering where cell culture and microbial fermentation often make use of shear-sensitive, living organisms to produce biopharmaceuticals and medicines. This article offers a thorough characterisation of the fluid mechanics of this impeller by means of 2D phased- and time-resolved particle image velocimetry (PIV) experiments. Key flow dynamics parameters including velocity magnitudes, kinetic energy, and shear stresses were estimated for different combinations of impeller size, clearance, and speed. The standard impeller size, D/T=0.52, performed most promisingly in combination with an off-bottom clearance of C=0.6 T, as the elevated impeller height allowed to pull high momentum fluid to the upper part of the tank and therefore improved overall transport phenomena in the entire reactor volume. For this impeller diameter-clearance combination peak ensemble-averaged shear stresses at the vessel base were lower due to the impeller greater distance from the bottom. A distinctive feature of the Bach impeller was its “smooth operation” mode, where velocity fluctuations due to the vane passages are nearly negligible (∼5 % of ensemble-averaged kinetic energy). These aspects make of the Bach impeller an appealing option in the context of stem cell bioprocess applications.

Duke Scholars

Published In

Chemical Engineering Research and Design

DOI

ISSN

0263-8762

Publication Date

June 1, 2024

Volume

206

Start / End Page

511 / 523

Related Subject Headings

  • Strategic, Defence & Security Studies
  • Chemical Engineering
  • 4019 Resources engineering and extractive metallurgy
  • 4011 Environmental engineering
  • 4004 Chemical engineering
  • 0914 Resources Engineering and Extractive Metallurgy
  • 0911 Maritime Engineering
  • 0904 Chemical Engineering
  • 0102 Applied Mathematics
 

Citation

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Wyrobnik, T. A., Oh, S., Micheletti, M., & Ducci, A. (2024). Insights into the fluid dynamics of the Bach impeller. Chemical Engineering Research and Design, 206, 511–523. https://doi.org/10.1016/j.cherd.2024.05.026
Wyrobnik, T. A., S. Oh, M. Micheletti, and A. Ducci. “Insights into the fluid dynamics of the Bach impeller.” Chemical Engineering Research and Design 206 (June 1, 2024): 511–23. https://doi.org/10.1016/j.cherd.2024.05.026.
Wyrobnik TA, Oh S, Micheletti M, Ducci A. Insights into the fluid dynamics of the Bach impeller. Chemical Engineering Research and Design. 2024 Jun 1;206:511–23.
Wyrobnik, T. A., et al. “Insights into the fluid dynamics of the Bach impeller.” Chemical Engineering Research and Design, vol. 206, June 2024, pp. 511–23. Scopus, doi:10.1016/j.cherd.2024.05.026.
Wyrobnik TA, Oh S, Micheletti M, Ducci A. Insights into the fluid dynamics of the Bach impeller. Chemical Engineering Research and Design. 2024 Jun 1;206:511–523.
Journal cover image

Published In

Chemical Engineering Research and Design

DOI

ISSN

0263-8762

Publication Date

June 1, 2024

Volume

206

Start / End Page

511 / 523

Related Subject Headings

  • Strategic, Defence & Security Studies
  • Chemical Engineering
  • 4019 Resources engineering and extractive metallurgy
  • 4011 Environmental engineering
  • 4004 Chemical engineering
  • 0914 Resources Engineering and Extractive Metallurgy
  • 0911 Maritime Engineering
  • 0904 Chemical Engineering
  • 0102 Applied Mathematics