Unit 6: High speed flow over airfoils and wings - Practice Quiz

ASE204 — Aerodynamics-Ii 60 Questions
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1 What primarily causes shock stall on an airfoil?

Shock stall Easy
A. Reduced pressure behind the trailing edge
B. Laminar flow near the leading edge
C. Expansion waves over the lower surface
D. Flow separation induced by a shock wave

2 Which aerodynamic change commonly occurs during shock stall?

Shock stall Easy
A. Lift and drag both decrease
B. Lift and drag both remain constant
C. Lift increases and drag decreases
D. Lift decreases and drag increases

3 What is a major advantage of selecting a supercritical airfoil for transonic flight?

Supercritical airfoil selections Easy
A. It delays the onset of wave drag
B. It maintains fully laminar flow
C. It eliminates all skin-friction drag
D. It prevents every form of stall

4 Which shape is characteristic of a supercritical airfoil?

Supercritical airfoil selections Easy
A. A relatively flat upper surface
B. A deeply concave lower surface
C. A sharply curved upper surface
D. A perfectly circular cross-section

5 For a thin symmetric airfoil at zero angle of attack in ideal supersonic flow, what is the lift?

Lift, drag, pitching moment and centre of pressure for supersonic profiles Easy
A. Equal to the wave drag
B. A large negative value
C. A large positive value
D. Approximately zero

6 According to linearized supersonic theory, where is the aerodynamic center of a thin airfoil approximately located?

Lift, drag, pitching moment and centre of pressure for supersonic profiles Easy
A. At the quarter-chord point
B. At the trailing edge
C. At the leading edge
D. At the half-chord point

7 What does the transonic area rule seek to vary smoothly along an aircraft?

Transonic area rule Easy
A. Boundary-layer thickness
B. Total cross-sectional area
C. Engine rotational speed
D. Wing angle of attack

8 Why is an area-ruled fuselage often narrowed near the wings?

Transonic area rule Easy
A. To move engines forward
B. To increase fuselage volume
C. To compensate for wing area
D. To enlarge the tail surface

9 Which airfoil feature is generally preferred for reducing wave drag in supersonic flow?

Airfoils for supersonic flows Easy
A. A blunt leading edge
B. A thick profile
C. A thin profile
D. A large rounded nose

10 Which profile is commonly associated with basic supersonic airfoil design?

Airfoils for supersonic flows Easy
A. A flat-bottomed profile
B. A circular-arc cylinder
C. A double-wedge profile
D. A deeply cambered profile

11 What flow feature generally forms when supersonic flow turns around a convex corner?

Shock expansion theory Easy
A. A separated wake
B. A stagnation region
C. A normal shock
D. An expansion fan

12 What happens to static pressure as supersonic flow passes through an expansion fan?

Shock expansion theory Easy
A. It decreases
B. It first rises sharply
C. It increases
D. It remains constant

13 Which wing planform is widely used for supersonic aircraft?

Supersonic wings Easy
A. An unswept wing
B. A rectangular wing
C. A delta wing
D. An elliptical wing

14 What is a principal aerodynamic benefit of wing sweep at supersonic speeds?

Supersonic wings Easy
A. It reduces the normal Mach component
B. It makes air density constant
C. It eliminates induced drag completely
D. It prevents boundary-layer formation

15 Why are sharp leading edges often used on supersonic aircraft?

Design considerations for supersonic aircraft Easy
A. To increase cabin volume
B. To eliminate viscous drag
C. To reduce wave drag
D. To improve low-speed lift

16 Which design choice generally helps an aircraft achieve efficient supersonic cruise?

Design considerations for supersonic aircraft Easy
A. A large vertical cross-section
B. A thick unswept wing
C. A slender streamlined body
D. A wide blunt nose

17 What is the main physical cause of aerodynamic heating at high speed?

Aerodynamic heating Easy
A. Gravity and structural loading
B. Lift and induced downwash
C. Fuel expansion and evaporation
D. Compression and viscous effects

18 Where is aerodynamic heating commonly greatest on a high-speed aircraft?

Aerodynamic heating Easy
A. Behind the trailing wake
B. Near stagnation regions
C. Along sheltered cavities
D. Inside low-pressure tanks

19 What type of drag is directly associated with shock waves on a supersonic profile?

Lift, drag, pitching moment and centre of pressure for supersonic profiles Easy
A. Induced drag
B. Wave drag
C. Skin-friction drag
D. Interference drag

20 What happens to static pressure when supersonic flow passes through a compression shock?

Shock expansion theory Easy
A. It decreases
B. It remains unchanged
C. It becomes zero
D. It increases

21 An airfoil operating in transonic flow experiences a sudden loss of lift, a rapid drag rise, and strong buffet as its angle of attack increases. What is the most likely cause?

Shock stall Medium
A. Laminar separation confined to the leading edge
B. Boundary-layer separation induced by a strong shock
C. Expansion waves forming across the lower surface
D. Complete elimination of the upper-surface shock

22 As the angle of attack of a conventional airfoil is increased near its critical Mach number, which sequence most commonly leads to shock stall?

Shock stall Medium
A. The shock moves continuously to the trailing edge while the entire boundary layer remains attached at all operating conditions
B. The shock disappears, transition is delayed, and lift decreases
C. The shock strengthens, separation grows, and lift decreases
D. The shock weakens, circulation increases, and drag decreases

23 An aircraft is intended to cruise efficiently at a high-subsonic Mach number. Why would a supercritical airfoil be selected instead of a conventional airfoil?

Supercritical airfoil selections Medium
A. It delays drag divergence to a higher Mach number
B. It produces no pitching moment during cruise
C. It eliminates induced drag at the design lift
D. It maintains fully incompressible flow over the wing

24 Which geometric combination is most characteristic of a supercritical airfoil?

Supercritical airfoil selections Medium
A. A highly curved upper surface and zero aft camber
B. A sharp nose and symmetric circular-arc surfaces
C. A thick rounded profile designed to generate a strong normal shock near the leading edge throughout cruise
D. A flattened upper surface and aft-loaded camber

25 Using linearized supersonic theory, determine the lift coefficient of a thin flat plate at and . Use , with in radians.

Lift, drag, pitching moment and centre of pressure for supersonic profiles Medium
A.
B.
C.
D.

26 For the flat plate in the previous linearized-flow case, estimate the lift-dependent wave-drag coefficient using .

Lift, drag, pitching moment and centre of pressure for supersonic profiles Medium
A.
B.
C.
D.

27 Linearized supersonic theory predicts that the aerodynamic centre of a thin two-dimensional airfoil is located approximately at:

Lift, drag, pitching moment and centre of pressure for supersonic profiles Medium
A. The half-chord point
B. The leading edge
C. The quarter-chord point
D. The three-quarter-chord point

28 A thin symmetric supersonic profile has its resultant lift acting at mid-chord. Using the convention that positive pitching moment is nose-up, what is its pitching-moment coefficient about the quarter-chord point?

Lift, drag, pitching moment and centre of pressure for supersonic profiles Medium
A.
B.
C.
D.

29 According to the transonic area rule, which aircraft property should vary as smoothly as possible along the longitudinal axis?

Transonic area rule Medium
A. The wing chord alone
B. The fuselage width alone
C. The total cross-sectional area
D. The local skin-friction coefficient

30 Why is the fuselage of an area-ruled aircraft often narrowed near the wing?

Transonic area rule Medium
A. To offset the cross-sectional area added by the wing
B. To ensure that a strong normal shock remains fixed at the wing root across the complete flight envelope
C. To increase the local thickness ratio of the wing
D. To move the aerodynamic centre to the nose

31 Which airfoil is generally most suitable for reducing wave drag in fully supersonic flow?

Airfoils for supersonic flows Medium
A. A thin double-wedge airfoil with sharp edges
B. A thick flat-bottomed airfoil with maximum thickness near the leading edge
C. A deeply cambered airfoil with a blunt trailing edge
D. A thick airfoil with a highly rounded leading edge

32 Two geometrically similar double-wedge airfoils operate at the same supersonic Mach number and angle of attack. If one has a smaller thickness-to-chord ratio, what is the expected effect?

Airfoils for supersonic flows Medium
A. Its thickness wave drag is higher
B. Its pressure drag becomes entirely independent of Mach number and surface inclination
C. Its thickness wave drag is lower
D. Its wave drag is unchanged

33 In shock-expansion theory, how is supersonic flow around a convex corner treated?

Shock expansion theory Medium
A. As an attached normal shock
B. As an isentropic compression fan
C. As a constant-pressure slip surface
D. As a Prandtl-Meyer expansion fan

34 Ideal supersonic flow passes through a Prandtl-Meyer expansion fan. Which combination correctly describes the changes across the fan?

Shock expansion theory Medium
A. Mach number increases and static pressure decreases
B. Mach number increases and total pressure decreases
C. Mach number remains constant while static and total pressures both rise
D. Mach number decreases and static pressure increases

35 For a swept wing, the Mach number normal to the leading edge is approximated by . At and , how is the leading edge classified?

Supersonic wings Medium
A. Hypersonic, because
B. Subsonic, because
C. Sonic, because
D. Supersonic, because

36 Why are highly swept or delta wings commonly used on supersonic aircraft?

Supersonic wings Medium
A. They reduce the flow component normal to the leading edge
B. They keep the entire wing flow incompressible
C. They guarantee attached flow at every angle of attack and Mach number
D. They eliminate all wave drag at positive lift

37 A designer increases the fineness ratio of a supersonic aircraft fuselage while keeping its volume approximately constant. What is the main aerodynamic objective?

Design considerations for supersonic aircraft Medium
A. Eliminating skin-friction drag through favorable pressure
B. Reducing wave drag through more gradual area changes
C. Increasing wave drag to improve directional stability
D. Producing a strong detached bow shock that shields all downstream surfaces from aerodynamic loading

38 An aircraft must cruise supersonically but also take off at an acceptable speed. Which design compromise most directly addresses both requirements?

Design considerations for supersonic aircraft Medium
A. A thin swept wing with suitable high-lift devices
B. A thick unswept wing without movable surfaces
C. A spherical fuselage with a rectangular wing
D. A very sharp wing with no provision for increasing low-speed lift

39 A simplified stagnation-point heating relation is when other quantities remain fixed. If velocity increases by , by what factor does the heating rate increase?

Aerodynamic heating Medium
A. Approximately
B. Approximately
C. Approximately
D. Approximately

40 For stagnation-point heating, suppose , where is nose radius. If the nose radius is increased by a factor of four, what happens to the heating rate?

Aerodynamic heating Medium
A. It remains at its original value
B. It decreases to one-half
C. It increases by a factor of two
D. It decreases to one-quarter

41 An unswept wing section begins shock-induced separation when its local normal Mach number reaches approximately . Using the normal-flow approximation, estimate the free-stream Mach number at which the same section on a wing swept by would encounter this condition.

Shock stall Hard
A.
B.
C.
D.

42 Pressure measurements show a strong upper-surface shock followed by a nearly constant-pressure region extending to the trailing edge. Which interpretation best explains an accompanying abrupt loss of lift and rise in drag?

Shock stall Hard
A. The pressure plateau indicates attached flow with complete downstream pressure recovery.
B. The shock imposes an adverse pressure rise that separates the downstream boundary layer.
C. The shock moves the aerodynamic centre forward without altering boundary-layer momentum.
D. The shock eliminates circulation and makes the entire lower surface supersonic.

43 Use the approximate Korn relation . For a supercritical airfoil with , , and cruise , what drag-divergence Mach number is predicted?

Supercritical airfoil selections Hard
A.
B.
C.
D.

44 Four airfoils are evaluated at the design cruise condition. The minimum acceptable buffet-onset lift coefficient is , and must not exceed . Among qualifying sections, cruise drag must be minimized. Which airfoil should be selected?

Supercritical airfoil selections Hard
A. Airfoil C: , ,
B. Airfoil D: , ,
C. Airfoil A: , ,
D. Airfoil B: , ,

45 A two-dimensional flat plate operates at and . Under linearized supersonic theory, what are approximately its lift coefficient and leading-edge pitching-moment coefficient?

Lift, drag, pitching moment and centre of pressure for supersonic profiles Hard
A. ,
B. ,
C. ,
D. ,

46 A symmetric double-wedge airfoil has and operates at and . Using linearized theory, . What is ?

Lift, drag, pitching moment and centre of pressure for supersonic profiles Hard
A.
B.
C.
D.

47 A supersonic profile has and a leading-edge pitching-moment coefficient . Neglecting any free aerodynamic couple, where is its centre of pressure?

Lift, drag, pitching moment and centre of pressure for supersonic profiles Hard
A.
B.
C.
D.

48 Two wing-body configurations have the same maximum cross-sectional area. Configuration X has abrupt changes in total area near the wing roots, whereas configuration Y has a smooth, nearly Sears-Haack-like total-area distribution. Which conclusion follows from the transonic area rule?

Transonic area rule Hard
A. Both have equal wave drag because their maximum cross-sectional areas are equal.
B. Configuration X has lower wave drag because wing and body contributions remain distinct.
C. Configuration Y has lower wave drag because rapid longitudinal area curvature is reduced.
D. Configuration X has lower wave drag because abrupt area changes shorten the disturbance.

49 At a wing station, the target total cross-sectional area is . The unmodified fuselage contributes and the wing contributes . What local fuselage modification best satisfies the area rule?

Transonic area rule Hard
A. Decrease the fuselage area by .
B. Increase the fuselage area by .
C. Decrease the fuselage area by .
D. Increase the fuselage area by .

50 A symmetric double-wedge airfoil with flies at zero lift and . Using , estimate its wave-drag coefficient.

Airfoils for supersonic flows Hard
A.
B.
C.
D.

51 For a low-wave-drag supersonic cruise airfoil, which geometric choice is generally most appropriate when structural and low-speed constraints are temporarily ignored?

Airfoils for supersonic flows Hard
A. A thick section with a round nose and strong aft reflex curvature
B. A thin section with sharp edges and small surface turning angles
C. A highly cambered section with a blunt nose and rounded trailing edge
D. A thick section with maximum curvature concentrated near the leading edge

52 Flow expands isentropically from to through a Prandtl-Meyer fan. For , what is the static-pressure ratio ?

Shock expansion theory Hard
A.
B.
C.
D.

53 At , an attached oblique shock has wave angle and turns the flow through . For , use the normal-shock relation followed by . What is the downstream Mach number?

Shock expansion theory Hard
A.
B.
C.
D.

54 At , which leading-edge sweep angle, measured from the spanwise direction, makes the leading edge unambiguously subsonic according to ?

Supersonic wings Hard
A.
B.
C.
D.

55 Linearized supersonic theory places a wing's aerodynamic centre at approximately of mean aerodynamic chord. If the centre of gravity is at chord and , what lift-induced pitching-moment coefficient acts about the centre of gravity?

Supersonic wings Hard
A.
B.
C.
D.

56 A supersonic aircraft has the cruise drag polar . Ignoring propulsion variation, at what lift coefficient is maximized?

Design considerations for supersonic aircraft Hard
A.
B.
C.
D.

57 A designer can increase wing sweep enough to make the leading edge subsonic at cruise. Which system-level consequence must still be included before choosing still greater sweep?

Design considerations for supersonic aircraft Hard
A. Greater sweep eliminates induced drag but increases only the fuselage skin-friction drag.
B. Greater sweep always increases critical normal Mach number while improving takeoff lift.
C. Greater sweep removes trim changes because the aerodynamic centre remains at quarter-chord.
D. Greater sweep can reduce wave effects but penalize low-speed lift and structural efficiency.

58 Nacelles are added near the wing-body junction of an otherwise area-ruled aircraft. Which redesign most directly preserves low transonic wave drag?

Design considerations for supersonic aircraft Hard
A. Move all nacelle volume to the station of maximum total aircraft area.
B. Increase local fuselage area to shield the nacelles from the free-stream flow.
C. Re-waist the nearby fuselage using the combined wing-body-nacelle area distribution.
D. Maintain the fuselage shape because nacelle and body wave drags are independent.

59 For air at and , estimate the adiabatic-wall temperature using , with and .

Aerodynamic heating Hard
A.
B.
C.
D.

60 Approximate stagnation-point heating by . If velocity increases by while nose radius doubles, what is the ratio of new to original heating rate?

Aerodynamic heating Hard
A.
B.
C.
D.