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M6

Strong

Magnitude 6+

Energy (TNT)
1.0 atomic bombs
Annual Frequency
17/yr
Typical Damage
Moderate to severe

Description

Destructive in areas up to 160km from epicenter.

Destructive to a moderate radius.

Recent Earthquakes at This Level

Mag Location Time
6.5 165 km W of Nikolski, Alaska 2 days, 5 hours ago
6.6 115 km NNE of Teluknaga, Indonesia 1 week ago
6.3 84 km SSW of Nikolski, Alaska 2 weeks, 2 days ago
6.2 South Sandwich Islands region 2 weeks, 2 days ago
6.0 33 km SSW of Honchō, Japan 3 weeks, 6 days ago
6.2 Scotia Sea 4 weeks ago
6.1 56 km NNE of Port-Olry, Vanuatu 1 month ago
6.9 7 km NNW of Pematangsiantar, Indonesia 1 month ago
6.1 58 km N of Ende, Indonesia 1 month ago
6.0 South Sandwich Islands region 1 month, 1 week ago
6.3 south of the Kermadec Islands 1 month, 2 weeks ago
6.8 5 km E of Uto, Japan 1 month, 3 weeks ago
6.0 82 km W of Sola, Vanuatu 1 month, 3 weeks ago
6.0 90 km SW of Puerto Madero, Mexico 2 months ago

Frequently Asked Questions

The magnitude scale is logarithmic because earthquake energy varies over an enormous range. Each whole-number increase represents about 31.6 times more energy released. A linear scale would be impractical because a M9.0 earthquake releases roughly 1 billion times more energy than a M3.0 earthquake.

Magnitude measures the total energy released at an earthquake's source — each earthquake has one magnitude. Intensity (Modified Mercalli scale) measures the effects at a specific location — the same earthquake can have different intensities at different distances. A M7.0 earthquake might be MMI IX near the epicenter but only MMI III 200 km away.

Theoretically, maximum magnitude is limited by the length of faults that can rupture simultaneously. The longest subduction zones could produce earthquakes up to about M10, but no fault system on Earth is long enough to exceed this. The largest recorded earthquake was M9.5 (Chile, 1960).

A magnitude 7.0 earthquake releases approximately 1,000 times more energy than a magnitude 5.0 earthquake. Each whole-number step represents 31.6 times more energy, so two steps (5 to 7) is 31.6 x 31.6 = approximately 1,000 times. In terms of amplitude, each step is 10 times larger.

A foreshock is a smaller earthquake that precedes a larger mainshock in the same area — though it can only be identified as such after the mainshock occurs. An aftershock follows the mainshock and is caused by stress adjustments along and near the ruptured fault. Aftershock sequences can last days to years depending on mainshock magnitude.