Unit 6: THERMOACOUSTIC INSTABILITY - Subjective Questions

ASE417 — Aeroacoustics • Practice Questions with Detailed Answers

20 questions

1

Define thermoacoustic instability and explain the feedback mechanism responsible for its occurrence in an aeroengine combustor.

2

State and derive Rayleigh's criterion for thermoacoustic instability. Explain its physical significance.

3

Classify the principal types of thermoacoustic instabilities found in gas-turbine combustors and distinguish their modal characteristics.

4

Explain the physical mechanisms through which combustion responds to acoustic disturbances and drives thermoacoustic instability.

5

Discuss the effects of thermoacoustic instability on aeroengine combustor operation and overall engine performance.

6

Describe the assumptions and computational steps used in a one-dimensional thermoacoustic stability calculation.

7

Derive the one-dimensional acoustic wave solution and the transfer matrix for a uniform duct without mean flow.

8

Explain the flame transfer function and formulate the time-delay or - model used in linear stability analysis.

9

Explain how acoustic boundary conditions and impedance are incorporated into a one-dimensional thermoacoustic model.

10

Describe how complex eigenfrequencies are obtained from a one-dimensional thermoacoustic network and explain how they determine stability.

11

Compare one-dimensional and three-dimensional methods for linear combustion-instability analysis.

12

Derive the three-dimensional inhomogeneous acoustic wave equation with unsteady heat release as a source term.

13

Describe the formulation and solution procedure of a three-dimensional linear combustion-instability eigenvalue analysis.

14

Explain how a spatially distributed flame response is represented in three-dimensional linear stability analysis.

15

Explain how mode shapes, growth rates, and the local Rayleigh index are used to interpret three-dimensional instability predictions.

16

Describe passive methods for controlling thermoacoustic instability and explain their operating principles.

17

Explain the principle, components, advantages, and limitations of active thermoacoustic instability control.

18

Discuss how changes in combustor geometry, fuel staging, and operating conditions can suppress thermoacoustic instability.

19

Describe an experimental procedure for detecting and characterizing thermoacoustic instability in an aeroengine combustor.

20

Propose an integrated workflow for predicting, validating, and controlling thermoacoustic instability in a modern annular aeroengine combustor.