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What happens to a space rock as it falls through Earth's atmosphere and becomes a meteorite? By studying 75 meteorite falls captured on video and in photographs, researchers identified seven distinct phases in the journey from space rock to meteorite. Their findings show that melting and fragmentation, rather than simply evaporation and "burning up," control how a rock loses mass, slows down and ultimately reaches the ground.
Phase 1 starts high in the atmosphere, when the air is dense enough to create a shock wave in front of the falling rock. Collisions with air molecules heat the rock and the gas around it until they glow. This is what we see as a meteor or "shooting star."

As the rock falls into thicker air, Phase 2 begins and the meteor gets brighter. Some meteors show that the rock is spinning rapidly by changing brightness in a regular pattern. The fastest-spinning rocks in the study made a full turn every 0.5 to 5 seconds.

In Phase 3, the meteor gets much brighter and turns into a fireball. The researchers found that melting now causes most of the rock's mass loss. The fast-moving air pulls melted material off the surface, leaving droplets behind that keep evaporating.
At around 60 kilometers (around 40 miles) above Earth, the fireball reaches Phase 4 by settling into a melting equilibrium. Its brightness stays the same or grows at a steady pace. The rock ultimately can lose up to 40% of its mass just from melting.
Deeper in the atmosphere, higher pressure makes the rock break apart, starting Phase 5. The fireball may flare up several times as pieces break off.

The researchers discovered that rocks start to break apart when the air pressure in front of the rock is only about one-fifth of the strength measured in meteorites found on Earth. They think that heat and cracks from earlier collisions in space can explain why the rocks break earlier than expected.

Only at this time does the remaining rock quickly become smaller and slow down significantly, more rapidly if the rock breaks aggressively.
If the back of the main rock stays whole, it creates a low-pressure area behind it that pulls smaller pieces along.
When the back of the rock finally breaks apart in Phase 6, the fireball gives off a last bright flare and sends pieces flying out faster. Since the rock has already slowed down, these late flares are usually red instead of the bright green seen earlier.

That final disruption sends fragments flying at higher relative speeds.
In Phase 7, melting and fragmentation keep happening until the last pieces slow down enough to stop glowing. Melting ends, leaving a thin fusion crust on their surfaces. Winds can then blow the darkened fragments off course as they finish falling to the ground as meteorites.
The 75 investigated meteorite falls included several different meteorite types. The study identified the altitudes at which these different materials went through the seven phases.

By studying the atmospheric slowdown of small, solid space rocks of different types, researchers also gained insight into what happens to more dangerous airbursting asteroids the size of cars to city blocks.

Asteroids up to tens of meters in size are also solid rocks because they tend to spin faster than do the larger rubble-pile asteroids.

Peter Jenniskens et al, Bolide Light Curve Systematics from 75 Recovered Meteorites, Meteoritics & Planetary Science (2026). DOI: 10.1111/maps.70203

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