← All AP Flashcard Decks

Physics: Classical Mechanics & Kinematics Flashcards

9 cards from real AP practice questions. Tap to flip, then mark Knew It or Still Learning — missed cards come back until you master them.

Read the first 9 Physics: Classical Mechanics & Kinematics flashcards as text
  1. What is the definition of velocity?

    Answer: Speed in a specified direction

    Velocity is a vector quantity that describes both the speed of an object and its direction of motion. Unlike speed, which only indicates how fast an object is moving, velocity provides a complete description of its motion. For example, '60 mph' is a speed, but '60 mph north' is a velocity, specifying both magnitude and direction.

  2. What is the acceleration of an object in free fall near the Earth’s surface?

    Answer: 9.8 m/s²

    Near the Earth's surface, the acceleration of an object in free fall, neglecting air resistance, is approximately 9.8 m/s². This constant value, denoted as 'g', represents the rate at which gravity increases an object's downward velocity every second it falls. It's a fundamental constant used in many physics calculations involving gravity.

  3. What is the formula for calculating velocity in uniform motion?

    Answer: v = Δx / Δt

    In uniform motion, velocity (v) is defined as the rate of change of displacement over time. The formula v = Δx / Δt precisely represents this relationship, where Δx is the change in position (displacement) and Δt is the change in time. This equation allows for the calculation of average velocity over an interval or instantaneous velocity if the interval is infinitesimally small.

  4. How does friction affect the motion of an object?

    Answer: Decreases speed

    Friction is a force that opposes the relative motion between two surfaces in contact. When an object moves, friction acts in the opposite direction of its motion, converting kinetic energy into other forms like heat. This energy conversion results in a reduction of the object's speed or requires a continuous external force to maintain its motion.

  5. What is the difference between scalar and vector quantities?

    Answer: Scalars have magnitude, vectors have magnitude and direction

    The fundamental difference between scalar and vector quantities lies in their description. Scalar quantities are fully defined by their magnitude (size) alone, such as mass, temperature, or speed. In contrast, vector quantities require both magnitude and a specific direction for their complete description, examples include velocity, force, and displacement.

  6. What does Newton's First Law of Motion state?

    Answer: An object will stay at rest unless a force is applied

    Newton's First Law of Motion, also known as the Law of Inertia, states that an object at rest will remain at rest, and an object in motion will continue in motion with the same speed and in the same direction, unless acted upon by an unbalanced external force. This means that a net force is required to change an object's state of motion, whether it's at rest or moving.

  7. What is the formula for kinetic energy?

    Answer: KE = 1/2 mv²

    Kinetic energy (KE) is the energy an object possesses due to its motion. The formula KE = 1/2 mv² quantifies this energy, where 'm' is the mass of the object and 'v' is its velocity. This equation demonstrates that kinetic energy is directly proportional to the mass and, significantly, to the square of the velocity.

  8. What is the principle of conservation of momentum?

    Answer: Momentum is conserved in an isolated system

    The principle of conservation of momentum states that in an isolated system—one where no external forces act—the total momentum of the system remains constant. This means that the total momentum before any interaction, such as a collision, is equal to the total momentum after the interaction. Momentum can be transferred between objects within the system, but the overall sum stays the same.

  9. What is the relationship between force, mass, and acceleration?

    Answer: Force equals mass times acceleration

    This relationship is precisely described by Newton's Second Law of Motion, famously expressed as F = ma. It states that the net force (F) acting on an object is directly proportional to its mass (m) and the acceleration (a) it experiences. Furthermore, the force acts in the same direction as the acceleration, dictating how objects change their motion.

Physics: Classical Mechanics & Kinematics Flashcards — AP Study Cards with Answers