Unit 3: Study of Fly vehicle nomenclature - Subjective Questions

ASE103 — Fly Against Gravity • Practice Questions with Detailed Answers

20 questions

1

Define aircraft nomenclature and describe the major structural components of a conventional fixed-wing aircraft.

2

Explain the reference lines, stations, and directional terms used to identify locations on an aircraft.

3

Compare the anatomy and lift-generation mechanisms of fixed-wing aircraft, rotary-wing aircraft, and lighter-than-air vehicles.

4

Describe the three principal aircraft axes and explain the control surface associated with motion about each axis.

5

Describe the principal geometrical terms used in wing nomenclature.

6

Derive the expressions for wing aspect ratio and taper ratio, and explain their aerodynamic significance.

7

Explain airfoil nomenclature, including camber, thickness, chord line, and angle of attack.

8

Explain the construction and aerodynamic functions of ailerons, flaps, slats, spoilers, and trim tabs.

9

Compare conventional-tail, T-tail, cruciform-tail, V-tail, and canard configurations.

10

Describe common aircraft power-plant arrangements and explain how their location affects aircraft design.

11

Distinguish between high-wing, mid-wing, and low-wing aircraft configurations.

12

Explain how sweep, dihedral, anhedral, and geometric twist influence wing aerodynamic behavior.

13

Develop the basic aerodynamic force and moment model used to represent a fixed-wing aircraft.

14

Why are nondimensional aerodynamic coefficients used in aircraft modeling? Explain the major coefficients.

15

Compare common levels of wing aerodynamic modeling, from analytical methods to computational fluid dynamics.

16

Describe the functions and principal components of an aircraft landing-gear system.

17

Compare tricycle and conventional tailwheel landing-gear configurations.

18

Distinguish between fixed, retractable, and partially retractable landing gear, including their major design trade-offs.

19

Explain bicycle, tandem, quadricycle, and outrigger landing-gear arrangements and identify suitable applications.

20

Explain the major geometric parameters used in landing-gear layout and how they affect ground stability.