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Vehicle Dynamics Flashcards

7 cards from real ACTAR practice questions. Tap to flip, then mark Knew It or Still Learning โ€” missed cards come back until you master them.

Read the first 7 Vehicle Dynamics flashcards as text
  1. What is 'friction circle' (or friction ellipse) concept and how does it apply to vehicle dynamics?

    Answer: The limit of combined longitudinal and lateral tire forces; the vector sum cannot exceed maximum available friction

    The friction circle represents the maximum combined force a tire can generate; if longitudinal (braking/acceleration) forces are high, less lateral force is available for cornering, and vice versa.

  2. What is the purpose of 'anti-lock braking system' (ABS) from a vehicle dynamics perspective in accident reconstruction?

    Answer: ABS modulates brake pressure to prevent wheel lockup, preserving steering control while optimizing braking force near peak friction

    ABS rapidly modulates brake pressure to keep wheels near peak slip ratio (typically 10-20%), maintaining tire cornering capability and directional control while achieving near-peak longitudinal deceleration.

  3. In reconstruction of a tripped rollover, what is the primary triggering mechanism?

    Answer: An external force or surface feature (curb, soft shoulder, guardrail) that arrests lateral tire motion while inertia continues to rotate the body

    A tripped rollover occurs when a wheel is caught by an external object or soft soil that stops lateral wheel movement while the vehicle's inertia causes the body to continue rotating over the tripped wheel.

  4. What is 'tire relaxation length' and why does it matter in high-speed maneuver analysis?

    Answer: The distance a tire must travel before lateral forces build to their steady-state value after a slip angle change

    Tire relaxation length is the travel distance required for lateral force to reach approximately 63% of its steady-state value after a step change in slip angle, causing a time delay in vehicle response to steering inputs.

  5. How does differential action affect vehicle yaw behavior during cornering?

    Answer: A locked differential promotes understeer by forcing both driven wheels to the same speed

    A locked or limited-slip differential forces the outside wheel (which needs to travel farther in a turn) to spin at the same rate as the inside wheel, creating scrub and understeer forces that resist turning.

  6. What is the significance of 'vehicle natural frequency' in suspension design as it relates to accident dynamics?

    Answer: Natural frequency determines how quickly a vehicle oscillates after a disturbance; 1-1.5 Hz is typical, affecting pitch/roll transient response in crash avoidance

    The suspension's natural frequency (typically 1-1.5 Hz for ride comfort) governs how quickly and for how long the vehicle oscillates in pitch and roll after a disturbance, affecting transient handling during emergency maneuvers.

  7. In a vehicle equipped with Electronic Stability Control (ESC), how does the system intervene when it detects an oversteer condition?

    Answer: ESC applies braking to the outside front wheel to generate a corrective yaw moment opposing the spin

    During oversteer (rear sliding out), ESC applies brake force to the outside front wheel, creating a yaw moment that counteracts the vehicle's spin tendency and restores directional control.