With positive dynamic stability, disturbances or oscillations gradually decay with time.
Incorrect! Try again.
7Longitudinal stability is primarily associated with motion about which aircraft axis?
Longitudinal stability
Easy
A.The thrust axis
B.The vertical axis
C.The lateral axis
D.The longitudinal axis
Correct Answer: The lateral axis
Explanation:
Longitudinal stability concerns pitching motion, which occurs about the aircraft's lateral axis.
Incorrect! Try again.
8Lateral stability is mainly concerned with which motion?
Lateral stability
Easy
A.Rolling motion
B.Heaving motion
C.Yawing motion
D.Pitching motion
Correct Answer: Rolling motion
Explanation:
Lateral stability concerns rolling motion about the aircraft's longitudinal axis.
Incorrect! Try again.
9Directional stability is primarily associated with motion about which axis?
Directional stability
Easy
A.The longitudinal axis
B.The vertical axis
C.The wing axis
D.The lateral axis
Correct Answer: The vertical axis
Explanation:
Directional stability concerns yawing motion about the aircraft's vertical axis.
Incorrect! Try again.
10In a control-fixed stability analysis, the primary flight controls are assumed to be:
Control-fixed stability
Easy
A.Free to move aerodynamically
B.Removed from the aircraft
C.Held at fixed positions
D.Moved continuously by the pilot
Correct Answer: Held at fixed positions
Explanation:
Control-fixed stability assumes that the relevant control surfaces remain fixed at their set positions.
Incorrect! Try again.
11In a control-free stability analysis, a control surface is allowed to:
Control-free stability
Easy
A.Float under aerodynamic forces
B.Remain mechanically locked
C.Rotate the entire tail assembly
D.Produce constant engine thrust
Correct Answer: Float under aerodynamic forces
Explanation:
Control-free analysis allows the control surface to move or float in response to aerodynamic hinge moments.
Incorrect! Try again.
12What is meant by rudder lock?
Rudder lock
Easy
A.The rudder remains deflected because of aerodynamic hinge moments
B.The rudder is mechanically removed before flight
C.The rudder becomes ineffective only at zero airspeed
D.The rudder automatically centers during every sideslip
Correct Answer: The rudder remains deflected because of aerodynamic hinge moments
Explanation:
Rudder lock is a condition in which aerodynamic hinge moments hold the rudder in a deflected position.
Incorrect! Try again.
13What is the main stability purpose of a dorsal fin?
Dorsal fin
Easy
A.To eliminate elevator forces
B.To improve directional stability
C.To reduce longitudinal stability
D.To increase aileron effectiveness
Correct Answer: To improve directional stability
Explanation:
A dorsal fin adds vertical surface area near the tail and improves directional stability, especially at larger sideslip angles.
Incorrect! Try again.
14In a conventional twin-engine aircraft, failure of one engine initially tends to yaw the aircraft:
One-engine-inoperative condition
Easy
A.Without any preferred direction
B.Directly upward
C.Toward the failed engine
D.Toward the operating engine
Correct Answer: Toward the failed engine
Explanation:
The operating engine produces unbalanced thrust, causing the aircraft to yaw toward the failed engine.
Incorrect! Try again.
15The weathercocking effect tends to turn an aircraft's nose:
Weathercocking effect
Easy
A.Toward the lower wing
B.Away from the horizon
C.Toward the relative wind
D.Away from the relative wind
Correct Answer: Toward the relative wind
Explanation:
Like a weather vane, a directionally stable aircraft tends to align its nose with the relative wind.
Incorrect! Try again.
16During an aileron-induced roll, adverse yaw turns the nose:
Adverse yaw effects
Easy
A.Downward relative to the horizon
B.In the direction of the intended roll
C.Opposite the direction of the intended roll
D.Upward relative to the horizon
Correct Answer: Opposite the direction of the intended roll
Explanation:
Unequal drag on the wings causes the nose initially to yaw opposite the intended direction of roll.
Incorrect! Try again.
17What occurs during aileron reversal?
Aileron reversal
Easy
A.The elevator moves opposite to the control input
B.The aircraft rolls opposite to the commanded direction
C.The rudder becomes the primary pitch control
D.The aircraft maintains a constant bank angle
Correct Answer: The aircraft rolls opposite to the commanded direction
Explanation:
At sufficiently high dynamic pressure, wing twisting can make the ailerons produce roll opposite to the commanded direction.
Incorrect! Try again.
18A phugoid motion mainly involves a slow exchange between:
Long-period or phugoid motion
Easy
A.Kinetic and potential energy
B.Rolling and yawing moments
C.Lift and structural weight
D.Engine power and fuel mass
Correct Answer: Kinetic and potential energy
Explanation:
In a phugoid, airspeed and altitude vary slowly as kinetic and potential energy are exchanged.
Incorrect! Try again.
19Compared with short-period motion, phugoid motion generally has:
Long-period or phugoid motion
Easy
A.A higher frequency and shorter period
B.Only rolling and yawing motion
C.A lower frequency and longer period
D.No variation in speed or altitude
Correct Answer: A lower frequency and longer period
Explanation:
The phugoid is a slow longitudinal oscillation with a relatively long period.
Incorrect! Try again.
20Short-period motion is best described as:
Short-period motion
Easy
A.A rapid longitudinal oscillation in pitch
B.A steady lateral motion in roll
C.A slow directional oscillation in yaw
D.A gradual change in engine speed
Correct Answer: A rapid longitudinal oscillation in pitch
Explanation:
The short-period mode is a rapid longitudinal oscillation involving pitch rate and angle of attack.
Incorrect! Try again.
21An aircraft returns toward its trimmed attitude after a small disturbance but requires unusually large control forces to initiate a maneuver. Which description best fits the aircraft?
Basic concepts of stability and control
Medium
A.Dynamically unstable and uncontrollable
B.Stable but not highly controllable
C.Unstable but highly controllable
D.Neutrally stable and uncontrollable
Correct Answer: Stable but not highly controllable
Explanation:
Stability describes the response to a disturbance, while controllability describes the ability to change the aircraft's motion using control inputs.
Incorrect! Try again.
22For longitudinal static stability, which condition should hold near the trim angle of attack?
Static stability
Medium
A.
B.
C.
D.
Correct Answer:
Explanation:
A negative pitching-moment slope means that an increase in angle of attack produces a restoring nose-down moment.
Incorrect! Try again.
23Following a disturbance, an aircraft oscillates about equilibrium with each successive peak becoming larger. How should this response be classified?
Dynamic stability
Medium
A.Statically stable and dynamically stable
B.Statically stable and dynamically unstable
C.Statically neutral and dynamically neutral
D.Statically unstable and dynamically stable
Correct Answer: Statically stable and dynamically unstable
Explanation:
The initial motion toward equilibrium indicates static stability, but increasing oscillation amplitude indicates dynamic instability.
Incorrect! Try again.
24What is the most likely effect of moving an aircraft's center of gravity aft while keeping it ahead of the neutral point?
Longitudinal stability
Medium
A.Lateral stability increases while static margin remains constant
B.Directional stability decreases without changing pitch response
C.Static margin decreases and pitch response becomes more sensitive
D.Static margin increases and pitch response becomes less sensitive
Correct Answer: Static margin decreases and pitch response becomes more sensitive
Explanation:
Moving the center of gravity toward the neutral point reduces static margin and weakens the restoring pitching moment.
Incorrect! Try again.
25An aircraft designer increases the horizontal-tail area without changing its moment arm. What is the primary expected effect?
A larger horizontal tail generally produces a stronger restoring pitching moment when angle of attack changes.
Incorrect! Try again.
26A positively dihedral wing experiences a sideslip with the relative wind coming from the right. What restoring response is expected?
Lateral stability
Medium
A.A yawing moment toward the left
B.A rolling moment toward the left
C.A pitching moment nose upward
D.A rolling moment toward the right
Correct Answer: A rolling moment toward the left
Explanation:
In a right sideslip, dihedral causes the right wing to develop more lift, producing a restoring roll to the left.
Incorrect! Try again.
27Using the usual stability-axis sign convention, which derivative indicates positive directional static stability?
Directional stability
Medium
A.
B.
C.
D.
Correct Answer:
Explanation:
Positive directional stability requires a restoring yawing moment that increases appropriately with sideslip, represented by .
Incorrect! Try again.
28During a control-fixed longitudinal stability test, what condition is imposed on the elevator?
Control-fixed stability
Medium
A.Its hinge moment is held at zero
B.Its deflection is held constant
C.It follows the stabilizer automatically
D.It floats to an equilibrium angle
Correct Answer: Its deflection is held constant
Explanation:
Control-fixed stability assumes that the elevator is restrained at a specified deflection rather than allowed to float.
Incorrect! Try again.
29Why is control-free longitudinal stability commonly lower than control-fixed stability?
Control-free stability
Medium
A.The locked elevator eliminates aerodynamic damping
B.Elevator float increases the wing's lift-curve slope
C.The free elevator moves the neutral point forward
D.Elevator float reduces the tail's restoring contribution
Correct Answer: Elevator float reduces the tail's restoring contribution
Explanation:
When the elevator floats under aerodynamic hinge moments, it tends to reduce the change in tail force that provides longitudinal stability.
Incorrect! Try again.
30At a large sideslip angle, nonlinear hinge moments drive the rudder toward a high-deflection position and make recovery difficult. This condition is called:
Rudder lock
Medium
A.Elevator float
B.Aileron reversal
C.Spiral divergence
D.Rudder lock
Correct Answer: Rudder lock
Explanation:
Rudder lock occurs when aerodynamic hinge-moment behavior at large sideslip tends to hold or drive the rudder into an undesirable deflected position.
Incorrect! Try again.
31Why is a dorsal fin often added ahead of the vertical tail on an aircraft that shows poor behavior at large sideslip angles?
Dorsal fin
Medium
A.It reduces wing bending during roll
B.It eliminates induced drag in turns
C.It delays directional instability at high sideslip
D.It increases elevator power at low speed
Correct Answer: It delays directional instability at high sideslip
Explanation:
A dorsal fin helps maintain useful directional stability when the main vertical tail approaches separated-flow conditions at large sideslip.
Incorrect! Try again.
32On a conventional twin-engine aircraft, the left engine suddenly fails while the right engine continues producing thrust. What is the immediate primary yawing tendency?
One-engine-inoperative condition
Medium
A.Roll right without yaw
B.Yaw toward the operating right engine
C.Yaw toward the failed left engine
D.Pitch downward without yaw
Correct Answer: Yaw toward the failed left engine
Explanation:
The operating right engine produces an asymmetric thrust moment that yaws the nose toward the failed left engine.
Incorrect! Try again.
33After the left engine fails on a twin-engine aircraft, which steady control input is primarily required to oppose the resulting yaw?
One-engine-inoperative condition
Medium
A.Symmetric aileron
B.Right rudder
C.Elevator down
D.Left rudder
Correct Answer: Right rudder
Explanation:
The aircraft tends to yaw left toward the failed engine, so right rudder supplies the opposing yawing moment.
Incorrect! Try again.
34A gust creates a sideslip on an aircraft with a large vertical tail located behind the center of gravity. What does the weathercocking effect tend to do?
Weathercocking effect
Medium
A.Hold the yaw angle unchanged
B.Turn the tail into the relative wind
C.Turn the nose into the relative wind
D.Create only a pitching response
Correct Answer: Turn the nose into the relative wind
Explanation:
Side force on the aft vertical tail yaws the aircraft so that its nose aligns with the incoming relative wind.
Incorrect! Try again.
35A pilot commands a roll to the right using conventional ailerons. Before rudder correction, which yaw response is typically produced by adverse yaw?
Adverse yaw effects
Medium
A.The nose initially yaws left
B.The nose pitches sharply upward
C.The nose remains directionally fixed
D.The nose initially yaws right
Correct Answer: The nose initially yaws left
Explanation:
The down-going left aileron increases lift and drag on the left wing, causing the nose to yaw opposite the commanded right roll.
Incorrect! Try again.
36Which design feature most directly reduces adverse yaw by creating more drag on the wing with the upward-deflected aileron?
Adverse yaw effects
Medium
A.Plain flaps
B.All-moving tails
C.Dorsal fins
D.Frise ailerons
Correct Answer: Frise ailerons
Explanation:
A Frise aileron's leading edge projects into the airflow when raised, adding drag that helps counter the adverse yaw from the opposite wing.
Incorrect! Try again.
37At high dynamic pressure, a right-roll command twists a flexible wing enough that the aerodynamic twist overwhelms the direct aileron effect. What is the result?
Aileron reversal
Medium
A.The aircraft yaws right without rolling
B.The aircraft rolls left instead of right
C.The aircraft pitches down instead of rolling
D.The aircraft rolls right at a higher rate
Correct Answer: The aircraft rolls left instead of right
Explanation:
Above the aileron-reversal speed, wing twist can produce a rolling moment opposite to that commanded by the ailerons.
Incorrect! Try again.
38During a lightly damped phugoid oscillation, which energy exchange is most characteristic?
Long-period or phugoid motion
Medium
A.Kinetic energy exchanges with gravitational potential energy
B.Engine energy exchanges with rudder hinge energy
C.Rotational energy exchanges with elastic wing energy
D.Lateral energy exchanges with directional energy
Correct Answer: Kinetic energy exchanges with gravitational potential energy
Explanation:
The phugoid mainly involves slow exchanges between airspeed and altitude, corresponding to kinetic and gravitational potential energy.
Incorrect! Try again.
39Which combination best describes the short-period longitudinal mode?
Short-period motion
Medium
A.Slow changes in altitude and airspeed
B.Rapid changes in angle of attack and pitch rate
C.Slow changes in bank angle and heading
D.Rapid changes in sideslip and yaw rate
Correct Answer: Rapid changes in angle of attack and pitch rate
Explanation:
The short-period mode is a relatively fast longitudinal oscillation dominated by angle of attack and pitch-rate variations, with little speed change.
Incorrect! Try again.
40A linear aircraft mode has eigenvalues . What response does this mode represent?
Dynamic stability
Medium
A.A divergent oscillation
B.A non-oscillatory divergence
C.A damped oscillation
D.A constant-amplitude oscillation
Correct Answer: A damped oscillation
Explanation:
The imaginary part produces oscillation, while the negative real part causes the oscillation amplitude to decay with time.
Incorrect! Try again.
41An aircraft is trimmed at a forward center-of-gravity position and has , but the elevator reaches its deflection limit before the required lift coefficient is attained during landing. Which conclusion is correct?
Basic concepts of stability and control
Hard
A.The aircraft is statically stable but lacks sufficient control authority for the maneuver
B.The aircraft is neutrally stable because stability and elevator authority cancel each other
C.The aircraft is dynamically unstable because the elevator reaches its deflection limit
D.The aircraft is statically unstable because the elevator cannot generate the required lift
Correct Answer: The aircraft is statically stable but lacks sufficient control authority for the maneuver
Explanation:
Stability describes the response to a disturbance near equilibrium, whereas control authority determines whether a required equilibrium or maneuver can be achieved.
Incorrect! Try again.
42Near several possible pitch equilibria, the pitching-moment coefficient is , where is an angle-of-attack perturbation. Which statement correctly classifies the equilibria?
Static stability
Hard
A. is unstable, while are stable
B. is stable, while are unstable
C.All three equilibria are statically stable
D.All three equilibria are statically unstable
Correct Answer: is stable, while are unstable
Explanation:
Equilibria occur at . Since , its value is negative at zero but positive at .
Incorrect! Try again.
43A longitudinal mode has eigenvalues , although the aircraft has . How should the motion be classified?
Dynamic stability
Hard
A.Statically and dynamically stable, with a period of about s
B.Statically stable but dynamically unstable, with amplitude doubling in about s
C.Statically unstable but dynamically stable, with amplitude halving in about s
D.Statically and dynamically unstable, with a period of about s
Correct Answer: Statically stable but dynamically unstable, with amplitude doubling in about s
Explanation:
The positive real part produces growing oscillations. Their envelope doubles after s, showing that static stability alone does not ensure dynamic stability.
Incorrect! Try again.
44Neglecting fuselage and propulsion effects, an aircraft has , , , and . If the center of gravity is at , what is the control-fixed static margin?
Longitudinal stability
Hard
A. mean aerodynamic chord
B. mean aerodynamic chord
C. mean aerodynamic chord
D. mean aerodynamic chord
Correct Answer: mean aerodynamic chord
Explanation:
The neutral point is . Thus the static margin is .
Incorrect! Try again.
45For an approximate spiral-mode criterion, stability requires . An aircraft has , , , and . What happens if is increased to with all other derivatives fixed?
Lateral stability
Hard
A.The spiral mode remains stable with greater damping
B.The spiral mode remains unstable with lower frequency
C.The spiral mode changes from stable to unstable
D.The spiral mode changes from unstable to stable
Correct Answer: The spiral mode changes from stable to unstable
Explanation:
Initially the criterion is . After the change it becomes , so excessive directional stability relative to dihedral effect destabilizes the spiral mode.
Incorrect! Try again.
46The fuselage contributes and the vertical tail initially contributes . If tail effectiveness is multiplied by a factor , at what value of is directional static stability neutral?
Directional stability
Hard
A.
B.
C.
D.
Correct Answer:
Explanation:
Neutral directional stability requires , giving . Smaller values produce and directional instability.
Incorrect! Try again.
47An aircraft is initially control-fixed stable. Its center of gravity is moved aft while elevator deflection remains fixed and the aerodynamic derivatives are otherwise unchanged. Which sequence is expected?
Control-fixed stability
Hard
A.The static margin increases and becomes zero at the aerodynamic center
B.The control-free neutral point moves aft by the same center-of-gravity shift
C.The elevator hinge moment vanishes before the static margin changes
D.The static margin decreases and becomes zero at the control-fixed neutral point
Correct Answer: The static margin decreases and becomes zero at the control-fixed neutral point
Explanation:
Moving the center of gravity aft reduces the distance to the control-fixed neutral point. At that point and control-fixed longitudinal stability is neutral.
Incorrect! Try again.
48For a freely floating elevator, . Given , , , and , what is with the control free?
Control-free stability
Hard
A.
B.
C.
D.
Correct Answer:
Explanation:
The floating gradient is . Hence .
Incorrect! Try again.
49With the rudder free, its equilibrium satisfies . What most directly indicates an approach to rudder lock as aerodynamic balance is increased?
Rudder lock
Hard
A. approaches zero, causing a very large restoring yawing moment
B. approaches zero, causing directional stability to increase
C. approaches infinity, causing the pedals to return rapidly
D. approaches zero, causing a very large free-rudder deflection
Correct Answer: approaches zero, causing a very large free-rudder deflection
Explanation:
Because , loss of restoring hinge-moment stiffness can drive the rudder toward a stop, producing rudder lock.
Incorrect! Try again.
50A vertical tail provides adequate small-sideslip stability but stalls during large-sideslip engine-out tests. What is the principal benefit of adding a dorsal fin ahead of the vertical tail?
Dorsal fin
Hard
A.It increases elevator effectiveness and preserves pitching moment at large incidence
B.It eliminates vertical-tail side force and reduces all fuselage yawing moments
C.It delays directional-surface stall and preserves yawing moment at large sideslip
D.It suppresses wing torsion and delays aileron reversal at high dynamic pressure
Correct Answer: It delays directional-surface stall and preserves yawing moment at large sideslip
Explanation:
A dorsal fin generates stabilizing forces and favorable vortex flow at high sideslip, delaying vertical-tail separation and retaining directional effectiveness.
Incorrect! Try again.
51In an engine-out condition, a small bank toward the operating engine reduces the yawing moment that must be balanced aerodynamically to of its original value. If available rudder moment is proportional to dynamic pressure, how does the minimum control speed change?
One-engine-inoperative condition
Hard
A.It increases to of its original value
B.It decreases to of its original value
C.It remains equal to its original value
D.It decreases to of its original value
Correct Answer: It decreases to of its original value
Explanation:
Since rudder moment varies as , the required speed ratio is . Banking toward the operating engine therefore reduces minimum control speed.
Incorrect! Try again.
52A vertical-fin side force acts behind the center of gravity after a crosswind disturbance. Under the standard convention in which directional stability requires , what is the resulting tendency?
Weathercocking effect
Hard
A.The aircraft rolls into the wind without producing a yawing moment
B.The aircraft pitches toward the wind while sideslip remains unchanged
C.The nose yaws away from the relative wind, increasing the sideslip
D.The nose yaws into the relative wind, reducing the sideslip
Correct Answer: The nose yaws into the relative wind, reducing the sideslip
Explanation:
The aft-mounted vertical surface produces a restoring yawing moment, aligning the aircraft with the relative wind like a weathercock.
Incorrect! Try again.
53To initiate a right roll with conventional ailerons, the left aileron moves down and the right aileron moves up. If the left-wing drag increase exceeds the right-wing drag change, what initial motion occurs?
Adverse yaw effects
Hard
A.The aircraft rolls left but initially yaws right
B.The aircraft rolls right but initially yaws left
C.The aircraft rolls right and initially yaws right
D.The aircraft rolls left and initially yaws left
Correct Answer: The aircraft rolls right but initially yaws left
Explanation:
The down-going left aileron increases lift and usually drag. The excess drag on the left wing yaws the nose opposite the commanded right roll, producing adverse yaw.
Incorrect! Try again.
54A simplified aeroelastic model gives normalized aileron effectiveness as , where is reversal dynamic pressure. What effectiveness is predicted at ?
Aileron reversal
Hard
A., so the rolling response strengthens
B., so the rolling response reverses
C., so the rolling response weakens
D., so the rolling response doubles
Correct Answer: , so the rolling response reverses
Explanation:
Substitution gives . Above reversal pressure, wing twist overcomes the direct aileron rolling moment and changes its sign.
Incorrect! Try again.
55Using the approximation for a lightly damped phugoid, estimate its period at with .
Long-period or phugoid motion
Hard
A.Approximately
B.Approximately
C.Approximately
D.Approximately
Correct Answer: Approximately
Explanation:
The frequency is , so .
Incorrect! Try again.
56For a fixed-thrust aircraft, the local drag slope is at the trim speed. Other damping contributions are small. What is the likely consequence for the phugoid?
Long-period or phugoid motion
Hard
A.Its damping must increase because a speed increase always dissipates more energy
B.Its angle of attack diverges rapidly while speed and altitude remain constant
C.Its damping can become negative because a speed increase reduces resisting drag
D.Its frequency becomes zero because drag no longer balances aircraft weight
Correct Answer: Its damping can become negative because a speed increase reduces resisting drag
Explanation:
A negative drag slope supplies negative axial damping: a positive speed perturbation encounters less drag rather than more, which can amplify the long-period energy exchange.
Incorrect! Try again.
57A short-period mode has eigenvalues . Which set of modal properties is closest?
Short-period motion
Hard
A., , and
B., , and
C., , and
D., , and
Correct Answer: , , and
Explanation:
Here , , and the damped period is s.
Incorrect! Try again.
58Under conventional short-period approximations, which derivative changes most directly increase natural frequency and damping, respectively?
Short-period motion
Hard
A.A more positive and a more positive
B.A more negative and a more negative
C.A more positive and a more positive
D.A more negative and a more negative
Correct Answer: A more negative and a more negative
Explanation:
Stronger restoring pitch stiffness from negative generally raises short-period frequency, while stronger negative pitch-rate feedback from increases damping.
Incorrect! Try again.
59An aircraft has strong directional stability but weak dihedral effect. After a small bank disturbance, sideslip produces a yawing response faster than the restoring rolling response. Which slow-mode behavior is most plausible?
Lateral stability
Hard
A.A phugoid divergence despite a stable roll-subsidence mode
B.A roll subsidence divergence despite a stable spiral mode
C.A spiral divergence despite a stable high-frequency Dutch-roll mode
D.A pitch divergence despite a stable short-period mode
Correct Answer: A spiral divergence despite a stable high-frequency Dutch-roll mode
Explanation:
Strong weathercock stability relative to dihedral effect can sustain an inward yaw and tightening bank, destabilizing the slow spiral mode even when Dutch roll remains stable.
Incorrect! Try again.
60A reduced flight-dynamics model has characteristic polynomial . Using the cubic Routh-Hurwitz condition, how is the system classified?
Dynamic stability
Hard
A.Unstable, with two roots in the right half-plane
B.Stable, because every polynomial coefficient is positive
C.Marginally stable, with one conjugate pair on the imaginary axis
D.Unstable, with three roots in the right half-plane
Correct Answer: Unstable, with two roots in the right half-plane
Explanation:
For a stable cubic, positive coefficients and are required. Here , and the Routh array has two sign changes.
Incorrect! Try again.
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