Mixing Losses In Steady And Unsteady Simulations Of Turbomachinery Flows
2018
The aim of the present work is to facilitate insight into the
modeling errors in the context of blade row coupling approaches
which capture unsteady flow phenomena at different levels of de-
tail. The focus is on RANS-based steady mixing plane compu-
tations as well as time domain and frequency domain unsteady
computations. The concept of mixing loss is revisited to quan-
tify the amount of unsteadiness in a flow field. Following an idea
by Fritsch and Giles, we compute a second order approxima-
tion of the mixing losses which are generated at blade row inter-
faces. The resulting formula decomposes the entropy jump into
contributions of circumferential and temporal fluctuations. The
mathematical derivation, however, is based upon simpler argu-
ments. It is shown that Fritsch and Giles’ main result can be
extended to non-ideal gases. Moreover, the second order mixing
loss formula is applied to time and frequency domain unsteady
simulations. It is shown that an additional term has to be com-
puted which accounts for the interaction of evanescent acoustic
modes if the method is applied to unsteady flows. The method-
ology decomposes the overall mixing entropy into contributions
of single perturbation types and harmonics. This may be used
to assess whether unsteady flow phenomena of interest are ade-
quately resolved and, in particular, to quantify the unsteadiness
contained in the unresolved harmonics. A detailed investigation
of the transonic IGV-rotor configuration of DLR’s Rig 250 com-
pressor demonstrates the approach.
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