EARTH SCIENCE • HAZARDS: EARTHQUAKES AND VOLCANOES

Earthquake Magnitude & Intensity — Explain earthquake magnitude vs intensity and how each is measured (conceptual)

Magnitude measures how much energy an earthquake releases, while intensity measures how strongly the shaking is felt in each place.

Historical Context & Motivation

For thousands of years, people described earthquakes only by how bad the damage looked. If houses fell down, the quake was "strong." If dishes rattled but nothing broke, it was "weak." But this was a problem: two people in different towns could feel the same earthquake very differently. Scientists needed a way to describe earthquakes with real numbers.

Over time, two different ideas took shape. One measures the energy of the earthquake at its source (magnitude). The other measures the strength of shaking at a specific place (intensity). Understanding both is the key to this whole lesson.

1902
The Mercalli Intensity Scale
Italian scientist Giuseppe Mercalli created a scale that ranks how strongly an earthquake is felt and how much damage it causes, based on human observations.
1935
Richter Invents Magnitude
Charles Richter, working in California, created the first magnitude scale using recordings from a machine called a seismograph to give each quake a single number.
1979
The Moment Magnitude Scale
Scientists Hiroo Kanamori and Thomas Hanks developed the moment magnitude scale, which works better for very large earthquakes and is the standard used today.
Today
Global Monitoring
Thousands of seismographs around the world work together, reporting magnitude in minutes and helping predict how much shaking a region might feel.

The big question this lesson answers is simple but important: how can one earthquake have only one magnitude, yet cause many different amounts of shaking in different towns? Let's find out.

Core Principles & Definitions

An earthquake happens when rocks underground suddenly slip along a crack called a fault (a break in the Earth's crust). This slip releases stored energy that travels outward as seismic waves (shaking that moves through the ground). The point underground where the slip starts is the focus, and the spot on the surface right above it is the epicenter.

1

Magnitude

A single number describing the total energy released at the source. One earthquake has one magnitude, no matter where you are.
2

Intensity

A rating of how strong the shaking feels and how much damage occurs at one particular location. It changes from place to place.
3

Seismograph

A machine that records ground motion. Its wiggly output, called a seismogram, is used to calculate magnitude.
4

Distance Matters

The farther you are from the epicenter, the weaker the shaking usually feels — so intensity drops with distance.
KEY TAKEAWAY
Think of a loudspeaker at a concert. Its volume setting is like magnitude — one number that describes how loud the source is. But how loud it sounds to you depends on where you stand. Up front it's blasting; way in the back it's faint. That is intensity — different for every listener, even though the speaker's setting never changes.

Visual Explanation

The diagram below shows why one earthquake can have many intensities. The energy comes from a single spot underground, but the shaking spreads outward in rings, getting weaker as it travels.

The focus releases one burst of energy. Waves ripple outward like rings on a pond. Town A, closest to the epicenter, feels strong shaking (high intensity), while Town C, farther away, feels only gentle shaking (low intensity) — even though the magnitude is the same for all three.

How the Numbers Work

Magnitude scales are logarithmic (each step up multiplies the size, instead of just adding to it). This is the trickiest but most important idea about magnitude. Going up by one whole number means the ground shakes about 10 times larger.

SHAKING SIZE PER MAGNITUDE STEP
Amplitude ratio = 10^(M₂ − M₁)
M₁ and M₂ are two magnitudes. If M₂ − M₁ = 1, the ratio is 10¹ = 10, so the wave amplitude (size of the shaking) is 10 times bigger. If the difference is 2, it is 10² = 100 times bigger.

The energy released grows even faster. Each magnitude step releases about 32 times more energy. This is why a magnitude 8 quake is enormously more powerful than a magnitude 6, not just "a little bigger."

ENERGY PER MAGNITUDE STEP
Energy ratio ≈ 32^(M₂ − M₁)
For a difference of 1 magnitude, energy is about 32 times greater. For a difference of 2, it is about 32 × 32 ≈ 1,000 times greater. Small changes in magnitude mean huge changes in power.
Watch Out
Intensity does not use this kind of math. Intensity is judged from observations — cracked walls, swaying trees, people's reports — and written in Roman numerals (I through XII). It is a description, not a calculation.

The Intensity Scale in Detail

The Modified Mercalli Intensity (MMI) scale runs from I to XII. Each level is described by what people feel and what happens to buildings. The spectrum below shows how intensity climbs from barely noticeable to total destruction.

Modified Mercalli Intensity Scale
I–II Not felt
III–IV Weak
V–VI Moderate
VII–VIII Strong
IX–XII Severe
Dishes rattle
Walls crack
Buildings collapse
GentleDestructive
Selected levels of the Modified Mercalli Intensity scale.
LevelWhat People NoticeTypical Damage
IIFelt only by a few people at rest, especially upstairsNone
VFelt by nearly everyone; sleepers wake upDishes and windows may break
VIIIHard to stand; everyone alarmedChimneys fall; walls crack badly
XIPanic; ground visibly moves in wavesMost buildings destroyed; bridges collapse

Notice that intensity depends on more than distance. Soft, muddy ground shakes more than solid rock, and older buildings are damaged more easily. So two towns the same distance from the epicenter can still report different intensities.

Worked Example

Comparing a Magnitude 5 and a Magnitude 7 Earthquake
1
Step 1 — Find the magnitude differenceSubtract the smaller magnitude from the larger one. M₂ − M₁ = 7 − 5.
Difference = 2 magnitude steps
2
Step 2 — Compare the shaking (amplitude)Use the amplitude rule: 10 raised to the difference. Substitute the difference of 2: amplitude ratio = 10² = 10 × 10.
The ground shakes about 100 times larger
3
Step 3 — Compare the energyUse the energy rule: about 32 raised to the difference. Substitute 2: energy ratio ≈ 32² = 32 × 32.
About 1,000 times more energy released
4
Step 4 — Interpret the resultA magnitude 7 quake is not "a bit stronger" than a magnitude 5. It shakes the ground about 100 times more and releases roughly 1,000 times the energy. That is why the jump of just two numbers means the difference between a scare and a disaster.

Magnitude vs. Intensity: Strengths and Limits

Side-by-side comparison of magnitude and intensity.
FeatureMagnitudeIntensity
What it measuresEnergy released at the sourceShaking and damage at one place
How many values per quakeOneMany — one per location
How it is foundSeismograph recordings and mathObservations and reports
NotationNumber like 6.4Roman numeral like VII
StrengthObjective, comparable worldwideShows real-world impact on people
WHY BOTH MATTER
Magnitude is like reporting how much gunpowder was in a firework — one honest number. Intensity is like asking every person in the crowd how loud the boom felt from where they stood. Scientists need magnitude to compare earthquakes fairly, but emergency teams need intensity to know which neighborhoods need help first.

Connection to Advanced Ideas

The magnitude number you hear on the news today is usually not from Richter's original scale. Scientists switched to a newer, more accurate method for large quakes.

The Richter scale versus the modern moment magnitude scale.
FeatureRichter Scale (1935)Moment Magnitude (today)
Based onHeight of the biggest wiggle on a seismogramTotal energy from fault size and slip
Works best forSmall, nearby earthquakesAll sizes, including giant quakes
Problem"Saturates" — stops rising for huge quakesMore complex to calculate

As you study more Earth science, you will learn that moment magnitude connects directly to the physics of how faults break — the size of the ruptured area and how far the rock slipped. That link between a single reported number and the giant forces inside the Earth is one of the most powerful ideas in the study of earthquakes.

Practice Problems

PROBLEM 1CONCEPTUAL
Explain the main difference between an earthquake's magnitude and its intensity in your own words.
PROBLEM 2BASIC CALCULATION
How many times larger is the ground shaking in a magnitude 6 earthquake compared to a magnitude 5 earthquake?
PROBLEM 3INTERMEDIATE
A magnitude 4 and a magnitude 6 earthquake are compared. About how much more energy does the magnitude 6 release?
PROBLEM 4APPLIED
Two towns are the same distance from an earthquake's epicenter, but Town X (built on soft mud) reports intensity VIII while Town Y (built on solid rock) reports intensity V. How is this possible if they are equally far away?
PROBLEM 5CRITICAL THINKING
A news report says a magnitude 8 earthquake caused very little damage, while a magnitude 6 quake elsewhere caused thousands of injuries. Explain how a smaller-magnitude earthquake could cause far more harm.

Summary

Every earthquake starts at a focus underground and sends seismic waves rippling outward. Its magnitude is one number, measured from seismograph recordings, that describes the energy released. Because the scale is logarithmic, each step up means about 10 times more shaking and roughly 32 times more energy.

Its intensity, written in Roman numerals on the Modified Mercalli scale, describes how strong the shaking feels at each place and changes with distance, ground type, and building strength. Remember the concert speaker: the volume setting is magnitude, but how loud it sounds where you stand is intensity. One earthquake, one magnitude, but many intensities — and that is why scientists need both to understand and respond to earthquakes.

Varsity Tutors • Earth Science • Earthquake Magnitude & Intensity