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Q.State Newton's Second Law of Motion and write its equation, defining each symbol with its SI unit.

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Newton's Second Law of Motion gives us a precise, quantitative relationship between force, mass, and acceleration — it tells us exactly how much an object will speed up or slow down when a force is applied to it.

Newton's Second Law of Motion is the real workhorse of classical mechanics. While the First Law tells us that a force is needed to change an object's state of motion, the Second Law tells us how much the motion changes. It answers the question: if I push this object with a certain force, how fast will it accelerate?

The law states that the net force acting on an object is directly proportional to the rate of change of its momentum. For an object with constant mass — which is almost always the case in the problems you'll face — this simplifies beautifully: the net force equals the mass of the object multiplied by its acceleration.

Fₙₑₜ = m a

Where:

  • Fₙₑₜ is the net (or resultant) force acting on the object. Its SI unit is the newton (N). One newton is the force required to accelerate a 1 kg mass at a rate of 1 m/s².
  • m is the mass of the object. Its SI unit is the kilogram (kg). Mass is a measure of an object's inertia — its resistance to a change in motion.
  • a is the acceleration produced in the object. Its SI unit is metre per second squared (m/s²). Acceleration is the rate of change of velocity.
Important

The arrow over F and a means these are vector quantities — they have both magnitude and direction. The acceleration is always in the same direction as the net force. If you push a box east, it accelerates east. …

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