Energy Budget Characterisation of the Optimal Disturbance in Stratified Shear Flow

Author:

Godwin Larry E.1ORCID,Trevelyan Philip M. J.1ORCID,Akinaga Takeshi2ORCID,Generalis Sotos C.1ORCID

Affiliation:

1. Applied Mathematics and Data Science, Aston University, Birmingham B4 7ET, UK

2. Department of Systems Design Engineering, Akita University, 1-1 Tegatagakuen-machi, Akita 010-8502, Japan

Abstract

Stratified Taylor–Couette flow (STCF) undergoes transient growth. Recent studies have shown that there exists transient amplification in the linear regime of counter-rotating STCF. The kinetic budget of the optimal transient perturbation is analysed numerically to simulate the interaction of the shear production (SP), buoyancy flux (BP), and other energy components that contributes to the total optimal transient kinetic energy. These contributions affect the total energy by influencing the perturbation to extract kinetic energy (KE) from the mean flow. The decay of the amplification factor resulted from the positive amplification of both BP and SP, while the growth is attributed to the negative and positive amplification of BP and SP, respectively. The optimal SP is positively amplified, implying that there is the possibility of constant linear growth. These findings agree with the linear growth rate for increasing values of Grashof number.

Funder

RISE Horizon 2020 ATM2BT, Atomistic to Molecular Turbulence

PTDF ED/PHD/GLE/826/16 scholarship

DTI EPSRC

Aston University sponsorship

Publisher

MDPI AG

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