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Citation link: https://doi.org/10.26092/elib/3450
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The transitional regime of pulsatile pipe flow


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Authors: Morón Montesdeoca, Daniel  
Supervisor: Avila, Marc  
1. Expert: Avila, Marc  
Experts: Schlatter, Philipp  
Abstract: 
The presence of turbulence in the circulatory system is thought to lead to cardiovascular diseases. Despite its importance, turbulence transition in cardiovascular flows is not well understood. In particular, it is unclear which one of the numerous complex features of blood flow (unsteady driving, rheology, flexible walls, complex geometry...) is the dominant one in terms of turbulence transition. The main aim of this thesis is to single out the effects of one of these features: the unsteady driving of the flow.
Specifically, the case of a pulsatile driven, Newtonian fluid, in a rigid smooth pipe of circular cross-section is considered, referred to as pulsatile pipe flow. Two main questions are investigated: whether and how laminar pulsatile pipe flows transition to turbulence, and how turbulence behaves once triggered. Pulsatile pipe flows in the transitional regime, with a mean 1000By combining linear transient growth and stability analyses, it is demonstrated that, at intermediate pulsation frequencies (4The turbulence behavior in this broad parametric space is studied with the use of a large number of direct numerical simulations. As part of this thesis a new C-CUDA code was developed in order to perform fast direct numerical simulations. The code outperforms state-of-the-art CPU codes in terms of computing time and computing resources. With the use of a causal analysis, it is shown that turbulence production increases due to the same mechanisms that render the flow susceptible to transition. Finally, a reduced-order model is developed to approximate the behavior of turbulence in pulsatile pipe flow reasonably well.
In sum, this thesis describes the way the flow is more likely to transition to turbulence in this
parametric regime, and the behavior of turbulence once triggered. The results presented here suggest that blood flow in the larger arteries is susceptible to transition due to the pulsatile beating of our hearts alone.
Keywords: unsteady shear flow; instabilities; turbulence transition; numerical methods
Issue Date: 2-Sep-2024
Type: Dissertation
DOI: 10.26092/elib/3450
URN: urn:nbn:de:gbv:46-elib84168
Institution: Universität Bremen 
Faculty: Fachbereich 04: Produktionstechnik, Maschinenbau & Verfahrenstechnik (FB 04) 
Appears in Collections:Dissertationen

  

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