Potential and kinetic energy

Lift hills store energy; drops and launches convert it into speed — friction steals some along the way.

Learn/How coasters work

At the top of a lift hill, the train has high potential energy (height × mass × gravity). As it descends, that converts to kinetic energy (motion).

In an ideal frictionless world, a 200-foot drop would always produce the same peak speed. Real coasters lose energy to air drag, wheel friction, and braking trims, so designers oversize the first drop or add a launch.

Launches inject kinetic energy directly — motors add speed without needing a tall hill. Hybrid layouts mix both: launch into a hill, or lift into a launch zone.

When you compare coasters, ask where energy enters the system and where it is intentionally removed (trim brakes, second lifts, long brake runs).

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