Unit 5: Brief introduction to the methods of characteristics - Practice Quiz

ASE204 — Aerodynamics-Ii 60 Questions
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1 The method of characteristics is especially useful for solving which type of flow equation?

Method of characteristics Easy
A. Hyperbolic flow equations
B. Elliptic flow equations
C. Parabolic heat equations
D. Algebraic balance equations

2 In a two-dimensional supersonic flow, characteristic lines are closely associated with which lines?

Method of characteristics Easy
A. Stagnation lines
B. Mach lines
C. Streamlines
D. Vortex lines

3 For a Mach number , the Mach angle is given by which relation?

Method of characteristics Easy
A.
B.
C.
D.

4 What is integrated along characteristic lines in the method of characteristics?

Method of characteristics Easy
A. Heat-balance relations
B. Chemical-rate relations
C. Compatibility relations
D. Viscous-stress relations

5 The Prandtl-Glauert rule is primarily used to estimate which effect?

Prandtl-Glauert and Goethert rules Easy
A. Subsonic compressibility
B. Surface roughness
C. Chemical dissociation
D. Boundary-layer transition

6 In the Prandtl-Glauert correction, the factor for subsonic flow is defined as:

Prandtl-Glauert and Goethert rules Easy
A.
B.
C.
D.

7 According to the Prandtl-Glauert rule, the compressible pressure coefficient is related to the incompressible value by:

Prandtl-Glauert and Goethert rules Easy
A.
B.
C.
D.

8 The Goethert rule is mainly associated with transforming which flow problem?

Prandtl-Glauert and Goethert rules Easy
A. Compressible three-dimensional flow
B. Unsteady wake flow
C. Viscous channel flow
D. Incompressible pipe flow

9 Ackeret's theory applies most directly to which type of airfoil flow?

Ackeret’s supersonic airfoil theory Easy
A. Thin airfoils in supersonic flow
B. Rotors in hovering flow
C. Thick airfoils in stalled flow
D. Cylinders in creeping flow

10 In Ackeret's theory, the pressure coefficient produced by a small surface turning angle is proportional to:

Ackeret’s supersonic airfoil theory Easy
A.
B.
C.
D.

11 According to linearized Ackeret theory, the lift-curve slope of a thin airfoil is:

Ackeret’s supersonic airfoil theory Easy
A.
B.
C.
D.

12 Which phenomenon contributes to drag in Ackeret's supersonic airfoil theory?

Ackeret’s supersonic airfoil theory Easy
A. Cavitation inception
B. Capillary action
C. Wave formation
D. Natural convection

13 The linear small-perturbation potential equation for two-dimensional compressible flow is commonly written as:

Small perturbation equations for subsonic, transonic, supersonic and hypersonic flow Easy
A.
B.
C.
D.

14 For , the linear small-perturbation equation is classified as:

Small perturbation equations for subsonic, transonic, supersonic and hypersonic flow Easy
A. Hyperbolic
B. Algebraic
C. Elliptic
D. Parabolic

15 For , the linear small-perturbation equation is classified as:

Small perturbation equations for subsonic, transonic, supersonic and hypersonic flow Easy
A. Algebraic
B. Hyperbolic
C. Parabolic
D. Elliptic

16 Why are nonlinear terms important in transonic small-perturbation theory?

Small perturbation equations for subsonic, transonic, supersonic and hypersonic flow Easy
A. The linear coefficient becomes small
B. The density remains constant
C. The viscosity becomes exactly zero
D. The velocity disturbance disappears

17 Which graph is commonly used to show how airfoil lift changes with angle of attack?

Experimental characteristics of airfoils in incompressible flow Easy
A. versus temperature
B. versus Mach angle
C. versus
D. versus Reynolds number

18 What usually happens to the lift coefficient when an airfoil exceeds its stall angle?

Experimental characteristics of airfoils in incompressible flow Easy
A. It changes sign immediately
B. It stays constant
C. It becomes infinite
D. It decreases

19 Which instrument is commonly used to measure aerodynamic forces on an airfoil in a wind tunnel?

Experimental characteristics of airfoils in incompressible flow Easy
A. Force balance
B. Thermocouple
C. Tachometer
D. Hygrometer

20 The pressure coefficient on an airfoil surface is obtained primarily from measurements of:

Experimental characteristics of airfoils in incompressible flow Easy
A. Airfoil vibration
B. Local static pressure
C. Surface temperature
D. Boundary-layer color

21 A two-dimensional supersonic flow has Mach number and local flow angle . What are the directions of the two characteristic lines relative to the horizontal?

Method of characteristics Medium
A. and
B. and
C. and
D. and

22 A uniform supersonic flow with Prandtl–Meyer angle passes around a convex corner that turns the flow through . What is the downstream Prandtl–Meyer angle?

Method of characteristics Medium
A.
B.
C.
D.

23 At the intersection of two characteristics, the compatibility invariants are and . What are the local values of and ?

Method of characteristics Medium
A. ,
B. ,
C. ,
D. ,

24 Why can a continuous compression region in a supersonic flow eventually develop into a shock wave?

Method of characteristics Medium
A. Expansion characteristics reverse the flow direction
B. Compression characteristics remain exactly parallel
C. The local Mach angle becomes identically zero
D. Compression characteristics converge and intersect

25 An incompressible calculation gives for an airfoil. Using the Prandtl–Glauert rule, what is at ?

Prandtl-Glauert and Goethert rules Medium
A.
B.
C.
D.

26 An airfoil has an incompressible lift coefficient of . What lift coefficient does the Prandtl–Glauert rule predict at ?

Prandtl-Glauert and Goethert rules Medium
A.
B.
C.
D.

27 Why should the Prandtl–Glauert and linearized Goethert rules not be applied very close to Mach 1?

Prandtl-Glauert and Goethert rules Medium
A. The fluid density becomes exactly constant
B. The Mach angle approaches ninety degrees
C. Their correction parameter approaches zero
D. The airfoil thickness becomes physically zero

28 For the same small panel inclination, linearized supersonic similarity gives . What is ?

Prandtl-Glauert and Goethert rules Medium
A.
B.
C.
D.

29 A panel in a Mach 2 flow turns the surface into the flow by . Using Ackeret's relation, what is the approximate pressure coefficient on the compression panel?

Ackeret’s supersonic airfoil theory Medium
A.
B.
C.
D.

30 According to Ackeret's thin-airfoil theory, what is the lift coefficient of a symmetric airfoil at and ?

Ackeret’s supersonic airfoil theory Medium
A.
B.
C.
D.

31 A symmetric double-wedge airfoil has a small panel angle of rad and flies at Mach 2 with zero angle of attack. Using , what is its wave-drag coefficient?

Ackeret’s supersonic airfoil theory Medium
A.
B.
C.
D.

32 For a thin symmetric airfoil in linearized supersonic flow, where is the aerodynamic center predicted to lie?

Ackeret’s supersonic airfoil theory Medium
A. At the trailing edge
B. At the quarter-chord
C. At the leading edge
D. At the mid-chord

33 The linearized two-dimensional potential equation is . How is this equation classified at ?

Small perturbation equations for subsonic, transonic, supersonic and hypersonic flow Medium
A. Elliptic
B. Hyperbolic
C. Ordinary
D. Parabolic

34 For , what is the coefficient of in , and what is the equation type?

Small perturbation equations for subsonic, transonic, supersonic and hypersonic flow Medium
A. , hyperbolic
B. , elliptic
C. , elliptic
D. , hyperbolic

35 Why must a nonlinear disturbance term be retained in the transonic small-disturbance equation?

Small perturbation equations for subsonic, transonic, supersonic and hypersonic flow Medium
A. The freestream velocity becomes exactly zero
B. The linear streamwise coefficient becomes small
C. The transverse velocity always becomes sonic
D. The gas loses its compressibility completely

36 Two geometrically related slender bodies obey hypersonic small-disturbance similarity with parameter . If one has and thickness ratio , what thickness ratio is required at ?

Small perturbation equations for subsonic, transonic, supersonic and hypersonic flow Medium
A.
B.
C.
D.

37 Pressure measurements over an airfoil show nearly constant values and along the chord. Neglecting surface-slope corrections, what lift coefficient is obtained by pressure integration?

Experimental characteristics of airfoils in incompressible flow Medium
A.
B.
C.
D.

38 Wind-tunnel data give at and at . What is the experimental lift-curve slope in the linear range?

Experimental characteristics of airfoils in incompressible flow Medium
A. per degree
B. per degree
C. per degree
D. per degree

39 Which combination of measured features most strongly indicates that an airfoil has entered stall?

Experimental characteristics of airfoils in incompressible flow Medium
A. Lift remains linear and drag decreases
B. Moment vanishes and pressure stays uniform
C. Lift decreases and separated flow expands
D. Drag remains fixed and lift slope increases

40 Wind-tunnel measurements show that the pitching-moment coefficient about the quarter-chord remains nearly constant as angle of attack changes within the linear range. What does this indicate?

Experimental characteristics of airfoils in incompressible flow Medium
A. The aerodynamic center is near the trailing edge
B. The zero-lift angle must be exactly zero
C. The center of pressure is fixed at the leading edge
D. The aerodynamic center is near the quarter-chord

41 In a two-dimensional, steady, irrotational supersonic flow, let be defined by , where is the flow angle and is the Mach angle. Which compatibility relation applies along ?

Method of characteristics Hard
A.
B.
C.
D.

42 At an interior point of a planar supersonic flow, an incoming characteristic carries , while an incoming characteristic carries . What are the local values of and ?

Method of characteristics Hard
A. ,
B. ,
C. ,
D. ,

43 Why can the planar invariants not be transferred unchanged to axisymmetric supersonic nozzle design?

Method of characteristics Hard
A. The Mach angle becomes independent of the local Mach number
B. Axisymmetry makes every characteristic coincide with a streamline
C. Radial convergence introduces source terms into the compatibility equations
D. Irrotational axisymmetric flow cannot remain continuously supersonic

44 A compression wave steepens into an oblique shock inside a characteristic mesh. What is the correct treatment of the shock?

Method of characteristics Hard
A. Replace the shock by a centered Prandtl-Meyer compression fan
B. Impose constant stagnation pressure along every intersecting characteristic
C. Fit the shock using Rankine-Hugoniot conditions and characteristic data
D. Continue both smooth-flow invariants unchanged across the shock

45 An incompressible linearized calculation gives at a point on a thin airfoil. Using the Prandtl-Glauert rule at , what is the predicted compressible value?

Prandtl-Glauert and Goethert rules Hard
A.
B.
C.
D.

46 For linearized subsonic flow, define . Which Goethert transformation correctly relates the compressible flow around to an incompressible flow around a transformed profile ?

Prandtl-Glauert and Goethert rules Hard
A. and
B. and
C. and
D. and

47 For the same thin airfoil and incidence, the Prandtl-Glauert rule is used at and . What ratio does it predict for the lift coefficients ?

Prandtl-Glauert and Goethert rules Hard
A.
B.
C.
D.

48 The Prandtl-Glauert correction diverges as . What is the physically appropriate interpretation of this singularity?

Prandtl-Glauert and Goethert rules Hard
A. The gas sound speed must vanish as the freestream reaches sonic speed
B. The exact pressure coefficient must become infinite at every surface point
C. The incompressible reference solution loses its circulation identically
D. The neglected nonlinear and transonic terms become leading-order effects

49 A surface turns a uniform flow through a small compression angle rad at . According to Ackeret's relation, what is the local pressure coefficient?

Ackeret’s supersonic airfoil theory Hard
A.
B.
C.
D.

50 A symmetric double-wedge airfoil has half-angle rad and incidence rad at . Using linearized supersonic theory, which pair is predicted?

Ackeret’s supersonic airfoil theory Hard
A.
B.
C.
D.

51 For a symmetric thin airfoil of arbitrary thickness distribution in linearized supersonic flow, which statement about incidence-generated lift is correct?

Ackeret’s supersonic airfoil theory Hard
A. The lift acts at quarter-chord and
B. The lift acts at mid-chord and
C. The lift acts at quarter-chord and
D. The lift acts at mid-chord and

52 At zero incidence, a thin airfoil has upper and lower surface slopes and . Which expression gives its wave-drag coefficient in Ackeret's theory?

Ackeret’s supersonic airfoil theory Hard
A.
B.
C.
D.

53 Consider the steady two-dimensional small-disturbance equation . Which classification and physical implication are correct?

Small perturbation equations for subsonic, transonic, supersonic and hypersonic flow Hard
A. Elliptic for all and parabolic at
B. Hyperbolic for and elliptic for
C. Parabolic for and elliptic for
D. Elliptic for and hyperbolic for

54 A transonic small-disturbance model is written as What condition identifies the local sonic line in this model?

Small perturbation equations for subsonic, transonic, supersonic and hypersonic flow Hard
A.
B.
C.
D.

55 For , what are the characteristic slopes of in the physical plane?

Small perturbation equations for subsonic, transonic, supersonic and hypersonic flow Hard
A.
B.
C.
D.

56 Two geometrically similar slender bodies satisfy hypersonic small-disturbance similarity with , where is a characteristic slope. For equal , what pressure-coefficient scaling follows?

Small perturbation equations for subsonic, transonic, supersonic and hypersonic flow Hard
A.
B.
C.
D.

57 A low-Reynolds-number airfoil has a laminar separation bubble near its suction peak. What is the most likely combined effect of adding a transition trip upstream of the bubble?

Experimental characteristics of airfoils in incompressible flow Hard
A. Higher low-angle drag but delayed separation and potentially higher
B. Unchanged profile drag but a doubled inviscid lift-curve slope
C. Lower low-angle drag and earlier separation with lower
D. Lower skin friction and unchanged transition over the complete polar

58 Why can profile drag near the minimum-drag condition be measured more reliably by a downstream wake survey than by integrating surface pressure taps alone?

Experimental characteristics of airfoils in incompressible flow Hard
A. The wake survey removes all tunnel-wall and streamline-curvature effects
B. Surface pressure integration includes friction but omits pressure drag
C. Pressure taps measure stagnation pressure instead of local static pressure
D. The wake momentum deficit includes skin-friction and pressure-drag effects

59 Two geometrically similar airfoil tests have the same Reynolds number and negligible Mach number, but their drag polars do not collapse. Which uncontrolled difference is most capable of causing this result?

Experimental characteristics of airfoils in incompressible flow Hard
A. Different dimensional chord while Reynolds number remains exactly equal
B. Different tunnel test duration after statistically steady flow is reached
C. Different freestream turbulence or surface roughness altering transition
D. Different freestream density with identical Reynolds and Mach numbers

60 During slow pitch-up and pitch-down tests near static stall, an airfoil shows different values at the same angle of attack despite negligible compressibility. What is the most defensible interpretation?

Experimental characteristics of airfoils in incompressible flow Hard
A. The discrepancy proves that the balance cannot resolve aerodynamic forces
B. The separated-flow state exhibits hysteresis and depends on its prior history
C. The incompressible lift coefficient must be single-valued at every incidence
D. The Prandtl-Glauert correction changes sign between pitch directions