Newton's Laws and Free-Body Diagrams: Applied Scenario
≈ 30 minApplied Scenario
Apply the idea in context while keeping the assumptions, units, safety and affected people visible.
This extension applies that lens specifically to Newton's Laws and Free-Body Diagrams.
Newton's three laws turn a description of motion into an explanation.
- First law (inertia). A body remains at rest or in uniform straight-line motion unless a net external force acts on it. This is a statement about the existence of inertial frames as much as about objects.
- Second law. — the net force and the acceleration are parallel vectors, and mass is the constant of proportionality.
- Third law. If A exerts a force on B, then B exerts an equal and opposite force on A. The two forces of the pair act on different bodies.
The working method is the free-body diagram: isolate one body, draw every force that other objects exert on it (weight, normal, tension, friction, applied), pick axes, and write and .
Worked example. A crate of oranges is dragged along a level floor by a horizontal force of . Kinetic friction opposes the motion with .
Vertical: the crate does not accelerate upward, so — which is consistent with .
Horizontal:
The crate accelerates at in the direction of the pull.
Physics — Year 1 — Applied Scenario: Which property of a body measures its resistance to a change in its state of motion? Give the one-word name.
Physics — Year 1 — Applied Scenario: A textbook rests on a desk. According to Newton's third law, what is the reaction to the Earth's gravitational pull on the book?
Physics — Year 1 — Applied Scenario: A crate is dragged across a level floor by an horizontal force while kinetic friction of opposes it. What is the crate's acceleration, in ?
Name the original topic being extended by this applied scenario lesson.
Which statement is the best evidence-led starting point for Newton's Laws and Free-Body Diagrams: Applied Scenario?

