MIDDLE SCHOOL EARTH AND SPACE SCIENCE (NEXT GENERATION SCIENCE STANDARDS) • EARTH'S PLACE IN THE UNIVERSE

Use models to represent the relative positions of Earth the sun and the moon

Discover how the Sun, Earth, and Moon move together to create eclipses, moon phases, and seasons.

How People Learned to Map the Sky

People have watched the Sun and Moon move across the sky for thousands of years. Ancient farmers needed to know when seasons would change. Sailors used the stars and Moon to navigate the oceans. Understanding the positions of Earth, the Sun, and the Moon became one of the oldest questions in science.

Early civilizations built models (simplified representations of real things) to explain what they observed. Some models placed Earth at the center of everything. Others placed the Sun at the center. Over time, evidence helped scientists figure out which model best matched reality.

~150 CE
Ptolemy's Earth-Centered Model
The Greek astronomer Ptolemy created a detailed model with Earth at the center. The Sun, Moon, and planets all appeared to orbit Earth. This geocentric model (Earth-centered) was used for over 1,400 years.
1543
Copernicus Proposes a Sun-Centered Model
Nicolaus Copernicus proposed a heliocentric model (Sun-centered). In this model, Earth and other planets orbit the Sun. The Moon still orbits Earth.
1609
Galileo Uses a Telescope
Galileo observed the phases of Venus and moons orbiting Jupiter. This evidence strongly supported the heliocentric model.
1687
Newton Explains Why Orbits Happen
Isaac Newton showed that gravity (the force of attraction between objects with mass) keeps the Moon orbiting Earth and Earth orbiting the Sun.
Today
Modern Space-Based Models
Scientists now use satellites, math, and computer simulations to model the Earth-Sun-Moon system with incredible accuracy.

Here is our anchoring phenomenon: During a total solar eclipse, the Moon passes directly between Earth and the Sun and blocks out sunlight for a few minutes. How can we use a model to explain exactly when and why this happens? To answer that, we need to understand how Earth, the Sun, and the Moon are positioned relative to each other.

Core Ideas: The Earth–Sun–Moon System

The Sun, Earth, and Moon form a system (a group of parts that work together). In this system, gravity holds everything in orbit. Let's break down the key ideas you need to know.

1

Earth Orbits the Sun

Earth travels around the Sun in a nearly circular path called an orbit. One full orbit takes about 365.25 days — one year. Earth's orbit is slightly oval-shaped, which scientists call an ellipse.
2

The Moon Orbits Earth

The Moon travels around Earth in its own elliptical orbit. One full orbit takes about 27.3 days. The Moon is Earth's only natural satellite (an object that orbits a larger object).
3

Earth Rotates on Its Axis

Earth spins like a top around an imaginary line called its axis. One full spin takes about 24 hours — one day. The axis is tilted at about 23.5° from straight up and down.
4

Gravity Holds the System Together

The Sun's gravity pulls on Earth. Earth's gravity pulls on the Moon. Without gravity, these objects would fly off in straight lines. Gravity is the invisible force that keeps orbits going.
5

Scale Matters

The Sun is about 109 times wider than Earth. The Moon is about 4 times smaller than Earth. The Sun is about 150 million km away from Earth, while the Moon is only about 384,000 km away.
KEY TAKEAWAY
Think of the Earth–Sun–Moon system like a merry-go-round inside a bigger merry-go-round. The Moon goes around Earth (the small merry-go-round), while Earth and the Moon together go around the Sun (the big merry-go-round). Gravity is the chain that keeps everyone connected.
🔬 NGSS Connection
Crosscutting Concept — Systems and System Models: Scientists use models to represent systems that are too large or complex to observe all at once. The Earth–Sun–Moon system is a perfect example. A model helps us see patterns we cannot notice just by looking up at the sky.

Modeling Earth's Orbit and the Moon's Orbit

The diagram below is a model showing how Earth orbits the Sun and how the Moon orbits Earth. Notice that the model is not to scale — the real Sun is much larger and much farther away. Models often simplify distances and sizes so that we can see the important relationships.

This model shows Earth (blue, labeled E) orbiting the Sun (yellow) along a dashed elliptical path. The Moon (purple, labeled M) orbits Earth in a smaller circle. A faded second position of Earth shows that it moves around the Sun over time. Remember: distances and sizes are not to scale.

Look at how the Moon's orbit fits inside Earth's orbit around the Sun. As Earth moves, it carries the Moon along with it. The Moon is always orbiting Earth, but both are also moving around the Sun at the same time. This is the pattern that a good model helps us see.

🛠️ Science Practice — Develop and Use Models
When scientists develop a model, they decide what to include and what to leave out. This diagram leaves out the exact shape of Earth and the tilt of the Moon's orbit. That is okay! A model does not have to show everything — it just needs to help explain the question you are investigating.

How Positions Create Moon Phases and Eclipses

The relative positions of the Sun, Earth, and Moon cause real events that you can observe. Two of the most important are moon phases (the changing shapes of the lit-up part of the Moon we see) and eclipses (when one object blocks sunlight from reaching another).

Moon Phases — Cause and Effect

The Moon does not make its own light. It reflects sunlight. At any time, half of the Moon is lit by the Sun. But we only see a portion of that lit half, depending on where the Moon is in its orbit around Earth. As the Moon moves, the amount of lit surface we can see changes. This creates the pattern of phases: new moon, crescent, quarter, gibbous, and full moon.

Eclipses — Special Alignments

A solar eclipse happens when the Moon passes directly between the Sun and Earth. The Moon's shadow falls on part of Earth. A lunar eclipse happens when Earth is directly between the Sun and the Moon. Earth's shadow falls on the Moon. Eclipses do not happen every month because the Moon's orbit is tilted about 5° compared to Earth's orbit around the Sun.

MOON PHASE CYCLE
Full phase cycle ≈ 29.5 days (one synodic month)
This is slightly longer than the Moon's 27.3-day orbit because Earth has also moved in its orbit. The Moon needs a little extra time to get back to the same Sun–Earth–Moon alignment.
KEY TAKEAWAY
Imagine holding a basketball (the Moon) and walking in a circle around a friend (Earth) while a lamp (the Sun) shines from one side of the room. As you move, your friend sees different amounts of the lit side of the basketball. That is exactly how moon phases work! The positions change, so the appearance changes.

A Closer Look at Moon Phases and Eclipse Types

The diagram below models the eight major moon phases. It shows the Moon at eight positions around Earth, with sunlight coming from the right side. The inner circles show what the Moon actually looks like from Earth at each position.

This diagram models the Moon at eight positions in its orbit around Earth. Sunlight comes from the right. The dark regions on each Moon show the part we cannot see from Earth. Notice the pattern: the lit portion grows from new moon to full moon (waxing), then shrinks back (waning).
Comparison of solar and lunar eclipses
Eclipse TypeAlignment (in order)What You SeeMoon Phase
Solar EclipseSun → Moon → EarthMoon blocks the Sun; sky darkens during the dayNew Moon
Lunar EclipseSun → Earth → MoonEarth's shadow makes the Moon look red or darkFull Moon
💡 Why Not Every Month?
The Moon's orbit is tilted about 5° compared to Earth's orbit around the Sun. Most months, the Moon passes slightly above or below the Sun–Earth line. Eclipses only happen when the Moon crosses that line at exactly the right time. This is a great example of the crosscutting concept of Cause and Effect — a small tilt causes a big difference in what we observe.

Building and Using a Model — Step by Step

Let's walk through how you would use a model to predict what moon phase will be visible and whether an eclipse is possible. Imagine you place a lamp (the Sun) on one side of a dark room, a basketball (Earth) in the middle, and a tennis ball (the Moon) that you can move around the basketball.

Using a Physical Model to Predict Moon Phase and Eclipse
1
Step 1 — Set Up the ModelPlace the lamp (Sun) on a table. Stand about 2 meters away holding the basketball (Earth) at chest height. Have a partner hold the tennis ball (Moon) about half a meter from you.
2
Step 2 — Position the Moon Between Earth and the SunYour partner moves the tennis ball so it is directly between you and the lamp. Look at the tennis ball from behind (from Earth's perspective). The lit side of the ball faces away from you.
You see almost no lit surface → This is a New Moon.
3
Step 3 — Check for Solar EclipseIs the tennis ball blocking the lamp light from reaching the basketball? If the tennis ball's shadow falls on the basketball, you have modeled a solar eclipse. Move the ball slightly up or down and the shadow misses — no eclipse this time.
Solar eclipse occurs only when alignment is exact (Sun → Moon → Earth).
4
Step 4 — Move the Moon to the Opposite SideNow have your partner move the tennis ball to the far side of the basketball, so you (Earth) are between the lamp and the tennis ball. Look at the tennis ball. The lamp lights up the entire face of the ball that you can see.
You see a fully lit surface → This is a Full Moon.
5
Step 5 — Check for Lunar EclipseDoes the basketball's shadow fall on the tennis ball? If yes, you have modeled a lunar eclipse. If the tennis ball is slightly above or below the shadow, no eclipse occurs.
Lunar eclipse occurs only when alignment is exact (Sun → Earth → Moon).
6
Step 6 — Identify the PatternAs you move the Moon around Earth, notice how the lit portion changes smoothly from new moon to full moon and back. This pattern repeats about every 29.5 days. Your physical model successfully represents the relative positions of the Sun, Earth, and Moon.

Comparing Different Types of Models

Scientists and students use many types of models. Each type has strengths and limitations. Let's compare three common models of the Earth–Sun–Moon system.

Strengths and limitations of three model types
Model TypeStrengthsLimitations
Physical Model (balls, lamps)You can hold and move objects. Easy to see shadows and lighting. Great for understanding eclipses and phases.Sizes and distances are not to scale. Hard to show the tilt of orbits. Cannot speed up time.
2-D Diagram (drawings, posters)Easy to label parts and show orbital paths. Can be printed and shared. Good for seeing the whole system at once.Flat — cannot show 3-D tilt of orbits. Sizes are usually not to scale. Does not move.
Computer Simulation (software, apps)Can show motion, real scale, and 3-D views. Speed up or slow down time. Accurate data.Requires technology. Can be hard to understand all the controls. You cannot physically touch the objects.
KEY TAKEAWAY
No single model is perfect. Think of models like different camera angles at a sports game. The sideline camera shows speed. The overhead camera shows formations. The slow-motion replay shows details. Each angle gives you part of the picture. Scientists often use multiple models together to get the fullest understanding.
🔬 NGSS Connection
Science Practice — Develop and Use Models: When you build a model, think about what question you are trying to answer. Then decide what parts are most important to include. You should also be able to explain what your model does NOT show.

Connecting to Bigger Ideas in Space Science

The Earth–Sun–Moon model is your starting point. In high school and beyond, you will study these same relationships with more mathematical detail. The table below shows how your current understanding connects to what comes next.

How middle school concepts connect to advanced space science
What You Learn Now (Grades 6–8)What Comes Next (High School & Beyond)
Earth orbits the Sun in about 365 days.Use Kepler's laws to calculate exact orbital speeds and distances.
Gravity keeps objects in orbit.Use Newton's law of universal gravitation to calculate the force between any two objects.
Moon phases follow a 29.5-day cycle.Study tidal forces, libration, and the Moon's effect on Earth's axial tilt.
Models simplify reality to help us understand patterns.Build mathematical and computational models that can predict events years in advance.

The crosscutting concept of Scale, Proportion, and Quantity becomes very important at the next level. Right now you know the Sun is much larger than Earth. Later, you will use exact numbers to calculate how gravity changes with distance. Every model you build now gives you the foundation for those future calculations.

🚀 Did You Know?
NASA uses advanced computer models to predict solar eclipses hundreds of years into the future. The next total solar eclipse visible from the contiguous United States will be on August 23, 2044. That prediction is possible because scientists deeply understand the relative positions of Earth, the Sun, and the Moon.

Practice Problems

Test your understanding of models and the relative positions of Earth, the Sun, and the Moon. Each question builds on the ideas from this lesson.

PROBLEM 1CONCEPTUAL
Which statement best describes why we see different phases of the Moon? A) Earth's shadow falls on different parts of the Moon each night. B) The Moon produces different amounts of light during its orbit. C) We see different amounts of the Moon's sunlit side as it orbits Earth. D) Clouds in Earth's atmosphere block parts of the Moon.
PROBLEM 2BASIC
During a solar eclipse, what is the correct order of the three objects in a straight line, starting from the object farthest from Earth? A) Moon → Sun → Earth B) Sun → Moon → Earth C) Sun → Earth → Moon D) Earth → Moon → Sun
PROBLEM 3INTERMEDIATE
A student builds a model using a flashlight (Sun), a baseball (Earth), and a ping-pong ball (Moon). She notices that the ping-pong ball's shadow falls on the baseball every time she puts the ping-pong ball between the flashlight and baseball. In real life, solar eclipses do NOT happen every month. What is the most likely limitation of her model? A) The flashlight is not bright enough to represent the Sun. B) The model does not show the tilt of the Moon's orbit. C) The baseball is too large compared to the ping-pong ball. D) The model should use a larger room.
PROBLEM 4APPLIED
On March 14, you observe a full moon. About how many days later would you expect to see the next new moon, and what eclipse type (if any) could possibly occur at that new moon? A) About 7 days later; a lunar eclipse could occur. B) About 15 days later; a solar eclipse could occur. C) About 15 days later; a lunar eclipse could occur. D) About 29 days later; a solar eclipse could occur.
PROBLEM 5CRITICAL THINKING
A classmate says: "A 2-D diagram of the Earth–Sun–Moon system is a bad model because it can't show eclipses correctly." Do you agree or disagree? Use evidence from the lesson to support your argument. A) Agree — 2-D diagrams cannot show any useful information about eclipses. B) Agree — only computer simulations can accurately model eclipses. C) Disagree — a 2-D diagram can show the alignment needed for eclipses, but it cannot show the 3-D tilt that explains why eclipses are rare. D) Disagree — a 2-D diagram is always better than a physical model for eclipses.

Lesson Summary

The Sun, Earth, and Moon form a system held together by gravity. Earth orbits the Sun in about 365.25 days, while the Moon orbits Earth in about 27.3 days. As the Moon moves around Earth, we see different moon phases because we view different amounts of its sunlit side. The phase cycle repeats roughly every 29.5 days.

When the Sun, Moon, and Earth line up precisely, eclipses occur. A solar eclipse happens during a new moon (Sun → Moon → Earth). A lunar eclipse happens during a full moon (Sun → Earth → Moon). Scientists use models — physical, 2-D diagrams, and computer simulations — to represent these positions. Every model has strengths and limitations, so scientists often use multiple models to get a complete picture of the Earth–Sun–Moon system.

Varsity Tutors • Middle School Earth and Space Science (Next Generation Science Standards) • Use models to represent the relative positions of Earth the sun and the moon