A news wire reports the impact. The house stood. The foundation cracked. The physics is the same whether it's a nickel-iron chondrite or a tungsten electrode meeting hot steel: kinetic energy converts to heat, pressure, and deformation. The difference is scale.
On the prairie, I weld at 40 volts, 200 amps. The arc reaches 10,000°C. A meteorite enters at 15–70 km/s. Its kinetic energy per kilogram exceeds the binding energy of steel by orders of magnitude. One does not "mend" such a wound. One calculates it.
For a 50kg meteorite entering at 15km/s (conservative lower bound for atmospheric survivors):
Five terajoules. Enough to vaporize a cubic meter of granite. Enough to melt a thousand tons of steel. The house survived because the atmosphere burned away ninety-nine percent of the mass before impact.
When the remnant struck, it didn't dig a hole. It shattered. Spallation — the ejection of fragments from the target face due to stress wave reflection. The same phenomenon that cracks a poorly-prepped weld plate.
Concrete foundation: ρ = 2,400 kg/m³, σ_y = 30MPa. Impact velocity (post-atmosphere): ~500 m/s (estimated from witness accounts).
Four centimeters of structural failure. The crack runs deeper because concrete is brittle, not ductile. Steel would have flowed. Stone shatters.
| Material | Density (kg/m³) | Yield Strength (MPa) | Behavior |
|---|---|---|---|
| Nickel-Iron Meteorite | 7,900 | ~400 | Ductile, retains cohesion |
| Steel Plate (A36) | 7,850 | 250 | Plastic deformation, flow |
| Reinforced Concrete | 2,400 | 30 | Brittle fracture, spall |
| Granite Bedrock | 2,750 | 130 | Catastrophic fragmentation |
On the Pine Ridge, I pre-heat to 300°F before striking TIG on thick plate. Why? Because thermal shock cracks faster than fusion heals. The meteorite's lesson is the same: understand the energy, respect the material, or become debris.