Matches in SemOpenAlex for { <https://semopenalex.org/work/W2611588873> ?p ?o ?g. }
Showing items 1 to 60 of
60
with 100 items per page.
- W2611588873 abstract "Linear stability theory has been intensively used over the past decades for the characterization of unsteady flow behaviors. While the existing approaches are numerous, none has the ability to address any general flow. Moreover, clear validity conditions for these techniques are often missing, and this raises the question of their general reliability.In this thesis, this question is addressed by first considering the classical stability approach, which focuses on the evolution of small disturbances about a steady solution -- a base flow -- of the Navier-Stokes equations.To this end, the screech phenomenon -- a tonal noise that is sometimes generated by underexpanded jets -- is studied from alinear stability point of view. The results reveal that the nonlinear dynamics of this phenomenon is well-predicted by a linear base flow stability analysis. A confrontation with other similar analyses from the literature shows that such a satisfactory result is not always observed. However, when a self-sustained oscillating flow is driven by an acoustic feedback loop, as it is the case for the screech phenomenon, cavity flows and impinging jets for instance, then the nonlinearities have a weak impact on the frequency selection process, explaining the ability of a linear analysis to characterize the flow, even in the nonlinear regime.Another alternative approach, based on a linearization about the mean flow, is known to be successful in some cases where a base flow analysis fails. This observation from the literature is explained in this thesis by outlining the role of the resolvent operator, arising from a linearization about the mean flow, in the dynamics of a flow. The main finding is that if this operator displays a clear separation of singular values, which relates to the existence of one strong convective instability mechanism, then the Fourier modes areproportional to the first resolvent modes. This result provides mathematical and physical conditions for the use and meaning of several mean flow stability techniques, such as a parabolised stability equations analysis of a mean flow.Moreover, it leads to a predictive model for the frequency spectrum of a flow field at any arbitrary location, from the sole knowledge of the mean flow and the frequency spectrum at one or more points. All these findings are illustrated and validated in the case of a turbulent backward facing step flow. Finally, these results are exploited in an experimental context, for the reconstruction of the unsteady behavior of a transitional round jet, from the sole knowledge of the mean flow and one point-wise measurement. The study shows that, after following a few experimental precautions, detailed in the manuscript, the reconstruction is very accurate and robust." @default.
- W2611588873 created "2017-05-12" @default.
- W2611588873 creator A5084874955 @default.
- W2611588873 date "2017-03-03" @default.
- W2611588873 modified "2023-09-28" @default.
- W2611588873 title "Characterization of unsteady flow behavior by linear stability analysis" @default.
- W2611588873 hasPublicationYear "2017" @default.
- W2611588873 type Work @default.
- W2611588873 sameAs 2611588873 @default.
- W2611588873 citedByCount "1" @default.
- W2611588873 countsByYear W26115888732020 @default.
- W2611588873 crossrefType "dissertation" @default.
- W2611588873 hasAuthorship W2611588873A5084874955 @default.
- W2611588873 hasConcept C11210021 @default.
- W2611588873 hasConcept C112972136 @default.
- W2611588873 hasConcept C119857082 @default.
- W2611588873 hasConcept C121332964 @default.
- W2611588873 hasConcept C158622935 @default.
- W2611588873 hasConcept C2524010 @default.
- W2611588873 hasConcept C33923547 @default.
- W2611588873 hasConcept C38349280 @default.
- W2611588873 hasConcept C41008148 @default.
- W2611588873 hasConcept C43466630 @default.
- W2611588873 hasConcept C62520636 @default.
- W2611588873 hasConceptScore W2611588873C11210021 @default.
- W2611588873 hasConceptScore W2611588873C112972136 @default.
- W2611588873 hasConceptScore W2611588873C119857082 @default.
- W2611588873 hasConceptScore W2611588873C121332964 @default.
- W2611588873 hasConceptScore W2611588873C158622935 @default.
- W2611588873 hasConceptScore W2611588873C2524010 @default.
- W2611588873 hasConceptScore W2611588873C33923547 @default.
- W2611588873 hasConceptScore W2611588873C38349280 @default.
- W2611588873 hasConceptScore W2611588873C41008148 @default.
- W2611588873 hasConceptScore W2611588873C43466630 @default.
- W2611588873 hasConceptScore W2611588873C62520636 @default.
- W2611588873 hasOpenAccess W2611588873 @default.
- W2611588873 hasRelatedWork W113792379 @default.
- W2611588873 hasRelatedWork W1543701270 @default.
- W2611588873 hasRelatedWork W1593898468 @default.
- W2611588873 hasRelatedWork W1968671051 @default.
- W2611588873 hasRelatedWork W2004070874 @default.
- W2611588873 hasRelatedWork W2062856798 @default.
- W2611588873 hasRelatedWork W2121775799 @default.
- W2611588873 hasRelatedWork W2129593884 @default.
- W2611588873 hasRelatedWork W2170105038 @default.
- W2611588873 hasRelatedWork W2177302443 @default.
- W2611588873 hasRelatedWork W2261074278 @default.
- W2611588873 hasRelatedWork W2312190834 @default.
- W2611588873 hasRelatedWork W2410265402 @default.
- W2611588873 hasRelatedWork W2606533888 @default.
- W2611588873 hasRelatedWork W2742316803 @default.
- W2611588873 hasRelatedWork W2970731706 @default.
- W2611588873 hasRelatedWork W3128621622 @default.
- W2611588873 hasRelatedWork W52268565 @default.
- W2611588873 hasRelatedWork W1874140607 @default.
- W2611588873 hasRelatedWork W2076835458 @default.
- W2611588873 isParatext "false" @default.
- W2611588873 isRetracted "false" @default.
- W2611588873 magId "2611588873" @default.
- W2611588873 workType "dissertation" @default.