Unit 4: LINEARIZED AERODYNAMICS FOR AEROACOUSTIC APPLICATIONS - Subjective Questions

ASE417 — Aeroacoustics • Practice Questions with Detailed Answers

20 questions

1

State the assumptions used in deriving the basic linearized unsteady aerodynamic equations.

2

Derive the linearized continuity and momentum equations for small perturbations about a uniform mean flow.

3

Derive the convected acoustic wave equation from the linearized aerodynamic equations and explain its physical meaning.

4

Distinguish between acoustic, vortical, and entropy perturbation modes in linearized flow.

5

Explain how vortex flow can generate sound even though an isolated incompressible vortex is largely non-radiating.

6

Describe the role of the Lamb vector in vortex sound theory and obtain the corresponding acoustic source term.

7

Compare hydrodynamic pressure fluctuations with acoustic pressure fluctuations in a vortex-flow field.

8

Explain why the interaction of a convected vortex with a solid edge is an efficient dipole sound source.

9

Describe the main assumptions and parameters used in the linearized analysis of a fan or compressor cascade.

10

Explain how a vortical gust interacting with a compressor cascade generates unsteady loading and sound.

11

Derive the blade-passing frequency and explain the origin of rotor-stator interaction tones in fans and compressors.

12

What are cut-on and cut-off acoustic modes in a fan duct, and why are they important in cascade-noise analysis?

13

Describe the vortex-sound model of trailing-edge noise.

14

Explain the frequency scaling and directivity characteristics of trailing-edge noise.

15

Define acoustic liner impedance and explain the significance of its resistance and reactance.

16

Explain how an impedance liner influences vortex-induced trailing-edge noise.

17

Derive a simple lumped acoustic impedance model for a perforated plate backed by a cavity.

18

Describe the physical processes involved when a vortex interacts with a perforated plate.

19

Compare the interaction of vortex disturbances with rigid, porous, and perforated plates.

20

Discuss the effects of porosity, hole diameter, plate thickness, and grazing flow on the acoustic impedance of a perforated plate.