4TH GRADE SCIENCE • EARTH'S SYSTEMS

Erosion: Earth on the Move

Discover how wind, water, and ice slowly reshape the land beneath our feet — moving rocks, soil, and sand to brand-new places.

The Phenomenon: A Vanishing Cliff

Anchoring Phenomenon

Where does all that earth material go? The cliff has not simply "disappeared." Waves crash against the base of the cliff day after day, loosening sand and rock. Rain runs down its face, pulling soil along with it. Wind carries tiny grains away. Over decades, millions of tons of sand, silt, and rock have been moved from the cliff to other locations — spreading out along beaches, settling on the ocean floor, and drifting down the coastline.

Diagram showing a coastal cliff being eroded by ocean waves over time.
Thinking Questions
  • What forces of nature could be moving the earth materials from the cliff?
  • Where do you think the sand and rock end up after they leave the cliff?
  • What observations would you want to make over time to study this cliff's changes?

What Scientists Know About Erosion

Erosion is the process by which earth materials — such as rock, soil, sand, and sediment — are picked up and moved from one place to another by natural forces. These forces include water, wind, ice, and even gravity. Erosion is different from weathering, which is the breaking down of rock into smaller pieces. Weathering breaks rock apart; erosion carries those broken pieces away.

Earth's surface is always changing, even though the changes are often so slow that we do not notice them day to day. Over time, erosion can carve deep valleys, reshape coastlines, wear down mountains, and deposit layers of new soil in faraway places. Scientists study erosion by making careful observations over weeks, months, and years, looking for evidence that earth materials have been moved.

1

Water Erosion

Moving water is the most powerful force of erosion on Earth. Rivers, streams, rainfall, and ocean waves all carry rock and soil from one location to another. The faster the water flows, the larger the pieces it can move.
2

Wind Erosion

Wind picks up tiny particles of sand, dust, and dry soil and carries them through the air. Over time, wind can strip away topsoil from farm fields and sculpt rock formations in deserts into unusual shapes.
3

Ice Erosion (Glaciers)

Glaciers are enormous, slow-moving rivers of ice. As they slide across the land, they scrape up rock and soil and push it along. Glaciers carved out the Great Lakes thousands of years ago.
4

Gravity-Driven Erosion

Gravity pulls earth materials downhill. Landslides, mudflows, and rockfalls happen when loose material on a slope is pulled downward. Heavy rain can make hillside soil so heavy and slippery that gravity drags it down.
KEY TAKEAWAY
Key Takeaway

Let's Investigate: Modeling Erosion

Investigation Spotlight

Investigation Question

How does the amount of water affect how much earth material is moved during erosion?

Materials

  • A shallow aluminum baking pan or plastic tray
  • Sand or soil (enough to fill one end of the tray)
  • A small cup of water and a larger cup of water
  • Books or blocks (to prop up one end of the tray)
  • A ruler
  • A pencil and science notebook

Procedure

1
Step 1Pack sand or soil into one end of the tray to create a small "hillside." Smooth the surface. Use your ruler to measure the height and length of the soil mound.
2
Step 2Prop up the soil end of the tray on books so the tray is tilted (the "downhill" end should be lower). This is your slope.
3
Step 3 (Trial 1)Slowly pour the small cup of water at the top of the soil mound. Observe: What happens to the soil? Where does the water carry the earth materials? Sketch what you see and measure how far the soil moved.
4
Step 4Rebuild your soil mound to match the original shape as closely as possible.
5
Step 5 (Trial 2)Now pour the large cup of water at the top. Observe: How is this different from Trial 1? Sketch what you see and measure how far the soil moved this time.
Diagram showing the erosion investigation setup with a tilted tray, soil mound, and water being poured to create erosion channels.

As you complete each trial, record your observations in a data table. Notice not just how far the soil moved, but also the size of the channels the water carved and the amount of sediment deposited at the bottom. These are exactly the kinds of observations scientists make when they study erosion in the real world.

What We Discovered: Evidence of Erosion

When we run the erosion investigation, the results tell us something important: more water moves more earth material, and it moves it farther. The small cup creates narrow channels and carries a small amount of sediment. The large cup carves wider, deeper channels and pushes soil all the way to the bottom of the tray. This matches what scientists observe in nature — a gentle stream moves pebbles, but a raging flood can move boulders.

Here is an example of what sample data from this investigation might look like:

ObservationTrial 1 (Small Cup)Trial 2 (Large Cup)
Width of widest channel~0.5 cm~2 cm
Farthest distance soil moved12 cm38 cm
Amount of sediment deposited at bottomThin layer, mostly fine grainsThick pile, mix of fine and coarse grains
Change to soil mound shapeSmall groove in surfaceLarge section removed; mound visibly shorter

These observations are evidence — they show us that erosion is real and measurable. We can see the earth materials being moved. We can measure how far they travel. And we can compare what happens with different amounts of water. This is exactly how scientists build understanding: by making careful observations and looking for patterns in the data.

In nature, the same process happens on a much larger scale. A heavy rainstorm can wash topsoil off a farmer's field. A flooded river can carve a new path through the landscape. Ocean waves can eat away at a cliff year after year, just like what happens at Cape Cod. The observations we make in our small investigation help us understand the evidence of erosion we see all around us in the real world.

Comparison of four types of erosion: water, wind, ice (glacier), and gravity.

Patterns and Connections: Cause and Effect

One of the most important tools scientists use is the crosscutting concept of Cause and Effect. This means they look for what causes something to happen and what effects (results) it produces. Erosion is a perfect example: a natural force (the cause) moves earth materials (the effect). By identifying the cause, scientists can predict what the effect will be — and they can even find ways to reduce harmful erosion.

The pattern of cause and effect in erosion appears across many different situations. The cause is always a force acting on earth materials, and the effect is always the movement of those materials. But the strength of the cause determines the size of the effect. Stronger forces move more material, farther.

Cause (Force)Effect on Earth MaterialsStronger Cause → Bigger Effect
Flowing water (rain, rivers)Carries soil and rock downhill, carves channelsA flood moves boulders; a drizzle only moves fine silt
WindPicks up and carries sand and dust particlesA windstorm strips topsoil; a gentle breeze barely moves anything
Ocean wavesPounds against coastlines, breaks off and carries rockHurricane waves can destroy a beach in hours; calm waves erode slowly over decades
Gravity on a slopePulls loose material downhillA steep, rain-soaked hillside triggers a landslide; a gentle slope stays stable

This pattern — that a stronger cause produces a bigger effect — shows up everywhere in science, not just in erosion. In physical science, a harder push makes a ball roll faster. In life science, more sunlight causes a plant to grow taller. Recognizing this cause-and-effect pattern helps scientists make predictions and design solutions to problems.

KEY TAKEAWAY
Key Takeaway

Real-World Connections: Fighting Erosion

Understanding erosion is not just interesting science — it is essential for solving real-world problems. Farmers, engineers, and city planners all use their knowledge of erosion to protect land, homes, and communities. When they understand the cause of erosion (water, wind, or gravity), they can design solutions to reduce its effects.

1

Farming: Terrace Farming

On steep hillsides, farmers build flat "steps" called terraces into the slope. Instead of rainwater rushing straight downhill and carrying away the soil, the terraces slow the water down, giving it time to soak in. This prevents water erosion from stripping away the rich topsoil crops need to grow.
2

Coastlines: Seawalls and Jetties

Engineers build strong walls of rock or concrete along shorelines to absorb the energy of crashing waves. These structures protect cliffs and beaches from wave erosion. Some towns also plant special grasses whose roots hold sand in place, acting like a natural net.
3

Forests: Planting Trees

Tree roots act like underground anchors that hold soil in place. When forests are cut down, the bare soil is easily washed or blown away. Planting trees and other plants — called reforestation — is one of the best ways to prevent both water and wind erosion.
4

Construction: Erosion Control Fabric

At construction sites, workers spread special mesh fabric over bare soil to hold it in place until plants can grow. They also build small fences made of straw (called silt fences) to catch soil that is washed away by rain, preventing it from entering streams and rivers.

All of these solutions follow the engineering design process: first, engineers identify the problem (erosion is moving earth materials in a harmful way). Then, they study the cause (water, wind, or waves). Next, they design a solution to reduce the effect. Finally, they test the solution, observe the results, and improve it. This is exactly how science and engineering work together to solve problems.

Key Vocabulary Review

Key Vocabulary
TermDefinition
ErosionThe process by which earth materials (rock, soil, sand) are picked up and moved from one place to another by natural forces like water, wind, ice, or gravity.
WeatheringThe breaking down of rocks into smaller pieces by natural processes. Weathering breaks rock apart, but does not move it (that is erosion's job).
DepositionThe dropping off of earth materials in a new location after they have been carried there by erosion. For example, sand deposited at the bottom of a river is deposition.
SedimentSmall pieces of rock, sand, silt, or clay that have been broken down by weathering and can be moved by erosion.
GlacierA massive, slow-moving body of ice that forms on land. Glaciers erode rock and soil as they move across the surface.
Earth materialsNatural substances that make up Earth's surface, including rocks, minerals, soil, and sand.
ObservationUsing your senses or tools (like a ruler, camera, or magnifying glass) to gather information about something in the natural world.
Cause and EffectA pattern in which one event (the cause) makes another event (the effect) happen. In erosion, the force is the cause and the movement of earth materials is the effect.

Practice: Test Your Understanding

1
After a heavy rainstorm, Maya notices a new channel carved into the dirt hill behind her school. Muddy water is flowing down the channel and carrying soil to the bottom of the hill. What process is Maya observing?
2
A farmer notices that the edges of her field near a fast-moving stream have gotten smaller over the past several years. She can see that chunks of soil have fallen into the water. Which observation best supports the claim that erosion is happening?
3
During a windy day at the beach, Kai notices that sand is blowing off the top of a sand dune and piling up against a fence further away. Which statement best explains what is happening?
4
A student sets up an experiment with two trays of soil tilted at the same angle. She pours the same amount of water on both trays, but one tray has grass growing in the soil and the other has bare soil. She observes that much more soil washes off the bare tray. What can she conclude?
5
A town built near a cliff by the ocean notices that over many years, the cliff has moved further from the ocean and large rocks at the base of the cliff have become smaller and rounder. A scientist visits and observes waves crashing against the cliff daily. Which explanation best accounts for ALL of these observations?

What's Next?

What's Next?
Varsity Tutors • 4th Grade Science (NGSS) • Erosion: Earth on the Move