A falling body speeds up because gravity pulls it down with a constant force,
Fg = m·g. But as it accelerates, air drag pushes back harder — drag
grows with the square of speed:
Fd = ½·Cd·ρ·A·v². Eventually the two forces are equal and opposite,
net acceleration drops to zero, and the object stops speeding up. That steady speed
is the terminal velocity.
A skydiver belly-to-earth reaches roughly 55 m/s (200 km/h), but flipping head-down into a dive shrinks the cross-section and drag coefficient enough to push terminal velocity past 90 m/s (325 km/h) — which is exactly why speed skydivers dive head-first.
A falling body drops through a marked vertical shaft, speeding up under gravity while air drag pushes back harder with every extra m/s — until the two forces balance and the fall settles into a steady terminal velocity.
Weight is constant, but drag scales with the square of speed. As velocity rises, the drag arrow grows to match the gravity arrow, net acceleration falls toward zero, and the fall stops speeding up — that's terminal velocity.
Adjust mass, body orientation (drag coefficient), cross-sectional area and air density, then watch the live velocity bar climb toward the computed terminal velocity. Hit "Drop again" to restart the fall from height zero.
Flipping from a belly-to-earth position into a head-down dive can push a skydiver's terminal velocity from around 200 km/h past 325 km/h, simply by shrinking the frontal area and drag coefficient.