INERTIA AND ACCELERATION

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Across
  1. 1. A state in which all forces acting on an object are balanced, resulting in no acceleration.
  2. 5. A force that opposes the motion between two surfaces in contact.
  3. 7. The straight-line distance and direction from the starting point to the ending point.
  4. 8. Force Equal forces acting on an object that do not change its motion.
  5. 10. The force of attraction between objects with mass.
  6. 14. Velocity The velocity of an object before acceleration occurs.
  7. 16. The rate at which velocity changes over time.
  8. 17. Force The overall force acting on an object after all forces are combined.
  9. 18. Speed in a specific direction.
  10. 20. Motion Motion at a constant speed in a straight line.
  11. 21. Velocity Motion at a constant speed in a constant direction.
  12. 23. A decrease in velocity; negative acceleration.
  13. 26. The duration during which an event or motion occurs.
  14. 27. Acceleration A decrease in an object's velocity over time.
  15. 28. The total length of the path traveled by an object.
  16. 29. A push or pull that can change an object's motion.
Down
  1. 2. The state of an object when it is not moving relative to a reference point.
  2. 3. Velocity The velocity of an object after acceleration occurs.
  3. 4. The product of an object's mass and velocity.
  4. 6. The path along which an object moves.
  5. 9. Force A force that changes an object's speed or direction.
  6. 11. A change in an object's position over time.
  7. 12. The distance traveled per unit of time.
  8. 13. The tendency of an object to resist changes in its state of motion.
  9. 15. The amount of matter contained in an object.
  10. 19. in Direction A change in an object's path that causes acceleration even if its speed stays the same.
  11. 22. Acceleration An increase in an object's velocity over time.
  12. 24. First Law States that an object remains at rest or in uniform motion unless acted upon by an unbalanced force.
  13. 25. Second Law States that acceleration depends on the net force and the object's mass (F = ma).