EASA/GCAA Part-66 · Module 2 — Physics · Mechanics

Hooke's Law

Objective: within its elastic limit a spring stretches in direct proportion to the force applied — F = k·x. Load it up and read the straight-line force–extension graph. Push past the elastic limit and it deforms permanently.

Spring & load

Force vs extension

Applied force F
0N
Extension x
0cm
State
Unloaded
Energy stored
0J
F = k·x  ·  energy stored = ½·k·x² = ½·F·x (area under the line)

A spring resists being stretched with a force proportional to how far it is stretched — that is Hooke's law, F = k·x, where k (the spring constant or stiffness) is the slope of the force–extension line. A stiffer spring (bigger k) needs more force for the same extension. The energy stored is the area under the line, ½k·x². This proportionality only holds up to the elastic limit; beyond it the material yields and takes a permanent set, so it no longer springs all the way back — the graph bends away from the straight line.