Unit 6: High speed flow over airfoils and wings - Subjective Questions

ASE204 — Aerodynamics-Ii • Practice Questions with Detailed Answers

20 questions

1

Define shock stall and explain how it occurs on an airfoil in transonic flow.

2

Describe the aerodynamic consequences of shock stall and discuss methods used to delay its onset.

3

Explain the geometrical and aerodynamic characteristics of a supercritical airfoil.

4

Discuss the factors governing the selection of a supercritical airfoil for a transonic aircraft.

5

Using linearized supersonic-flow theory, derive the pressure coefficient on a surface inclined through a small angle to a uniform supersonic stream.

6

Derive the lift and wave-drag coefficients of a thin, symmetric airfoil at a small angle of attack in supersonic flow.

7

Explain how the pitching moment and centre of pressure of a thin supersonic airfoil are determined. State the result for a flat plate.

8

State and explain the transonic area rule. Why does it reduce wave drag?

9

Describe how the transonic area rule is applied during aircraft configuration design.

10

Compare the principal airfoil sections used for supersonic flow, including flat-plate, wedge, double-wedge, and biconvex profiles.

11

Explain shock-expansion theory and outline the procedure for applying it to a two-dimensional supersonic airfoil.

12

Describe the oblique-shock and Prandtl-Meyer relations used in shock-expansion theory.

13

Using shock-expansion theory, explain the flow pattern and force production on a symmetric double-wedge airfoil at supersonic speed.

14

Explain the significance of Mach cones, wing sweep, and leading-edge classification in the aerodynamics of supersonic wings.

15

Discuss the aerodynamic characteristics of finite wings in supersonic flow and compare delta and highly swept wings.

16

Derive the lift coefficient of a thin flat plate in supersonic flow and comment on the influence of Mach number.

17

Discuss the major aerodynamic and configuration-design considerations for a supersonic aircraft.

18

Explain the changes in stability, control, and centre of pressure that may occur as an aircraft accelerates from subsonic to supersonic speed.

19

Explain aerodynamic heating in high-speed flight and derive the expression for stagnation temperature in a calorically perfect gas.

20

Describe the distribution, effects, and mitigation of aerodynamic heating on a supersonic aircraft.