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

Use Models to Compare Gravitational Interactions Within the Solar System and the Milky Way

Discover how gravity holds planets in orbit around the Sun and billions of stars together in our galaxy.

How Did We Learn About Gravity in Space?

For thousands of years, people looked up at the night sky and wondered why the stars and planets move the way they do. Ancient Greek thinkers believed Earth sat at the center of the universe. They thought everything in space circled around us. It took centuries of careful observation to figure out what really keeps planets and stars in place.

The real answer is gravity — an invisible pull between any two objects that have mass. Gravity is the force that holds you on the ground. It also keeps the Moon orbiting Earth and Earth orbiting the Sun. At a much larger scale, gravity holds entire galaxies together.

1543
Sun-Centered Solar System
Nicolaus Copernicus proposed that planets orbit the Sun, not Earth. This was a huge shift in thinking about our place in space.
1609
Laws of Planetary Motion
Johannes Kepler used data from Tycho Brahe to show that planets travel in elliptical (oval-shaped) orbits around the Sun.
1687
Newton's Law of Universal Gravitation
Isaac Newton explained that every object in the universe attracts every other object. The bigger the mass, the stronger the pull.
1920s
Discovery of the Milky Way's True Size
Edwin Hubble proved that the Milky Way is just one galaxy among billions. Gravity holds each galaxy's stars together.

These discoveries raise an important question: How does gravity work at different scales? The pull between the Sun and a planet seems very different from the pull that holds billions of stars in a galaxy. In this lesson, you will use models to compare gravitational interactions in the solar system and in the Milky Way galaxy.

Core Principles of Gravitational Interactions

Before we build models, we need to understand four key ideas about gravity. These ideas work at every scale — from a ball falling to the ground to a galaxy spinning in space.

1

Gravity Depends on Mass

The more mass (amount of matter) an object has, the stronger its gravitational pull. The Sun has way more mass than Earth, so its pull is much stronger.
2

Gravity Depends on Distance

The farther apart two objects are, the weaker the pull between them. A planet close to the Sun feels a stronger tug than one far away.
3

Gravity Acts Between All Objects

Every object with mass pulls on every other object. You pull on Earth, and Earth pulls on you! This is universal gravitation.
4

Gravity Creates Orbits

When an object moves sideways fast enough, gravity curves its path into an orbit — a repeating path around another object. Planets orbit the Sun. Stars orbit the center of their galaxy.
KEY TAKEAWAY
Think of gravity like an invisible rubber band between two objects. A heavier object stretches the band tighter (stronger pull). Moving the objects farther apart makes the band looser (weaker pull). This "rubber band" works everywhere — between you and Earth, between Earth and the Sun, and between the Sun and the center of the Milky Way.

Modeling the Solar System's Gravitational Interactions

A model is a simplified picture or diagram that helps us understand something complicated. Scientists use models all the time. Our solar system is so huge that we need models to see how gravity connects everything. In the diagram below, the Sun sits at the center. Planets orbit at different distances. Arrows show the direction of the Sun's gravitational pull on each planet.

This model shows the Sun at the center with four inner planets orbiting around it. The red arrows point inward toward the Sun, showing the direction of the Sun's gravitational pull. Notice that Mercury, the closest planet, has a small orbit. Mars, which is farther away, has a much larger orbit and feels a weaker pull.

In our solar system model, one object — the Sun — dominates. It contains about 99.8% of all the mass in the solar system. That is why every planet, asteroid, and comet orbits the Sun. The gravitational interaction is mostly a one-to-one relationship: each planet is pulled toward the Sun.

🔭 Anchoring Phenomenon
Why does Mercury orbit the Sun in only 88 Earth days, while Neptune takes about 165 Earth years? Mercury is much closer to the Sun, so gravity pulls it harder and it moves faster in a smaller orbit. Neptune is far away, so the pull is weaker and its orbit is enormous.

The Math Behind Gravitational Pull

Newton gave us a formula that describes how strong the gravitational pull is between any two objects. You do not need to memorize every detail, but understanding the formula helps you see patterns in how gravity works.

NEWTON'S LAW OF UNIVERSAL GRAVITATION
F = G × (m₁ × m₂) ÷ d²
F = gravitational force (the strength of the pull, in newtons) • G = gravitational constant (a tiny fixed number) • m₁ and m₂ = the masses of the two objects • = the distance between the two objects, squared (multiplied by itself)

Here is what the formula tells us in plain language. If you increase mass, gravitational force goes up. If you increase distance, gravitational force goes down — and it goes down fast because the distance is squared. Doubling the distance makes the force four times weaker!

Two Key Cause-and-Effect Relationships

1

More Mass → Stronger Pull

The Sun is about 333,000 times more massive than Earth. That huge mass creates a powerful pull that reaches all the way to distant planets like Neptune.
2

More Distance → Weaker Pull

Neptune is about 30 times farther from the Sun than Earth. Because of the distance-squared rule, the Sun's pull on Neptune is about 900 times weaker than its pull on Earth.
🔗 Crosscutting Concept: Cause and Effect
In science, we always look for cause-and-effect relationships. With gravity, the causes are mass and distance. The effect is how strong the gravitational pull is. Changing either cause changes the effect in a predictable way.

Gravity at the Galactic Scale — The Milky Way

Now let's zoom way out. Our solar system is just one tiny part of the Milky Way galaxy — a collection of about 100 billion to 400 billion stars. The Milky Way is shaped like a flat disk with spiral arms. All those stars are held together by gravity, just like planets are held in orbit around the Sun.

But there are big differences between the solar system and the galaxy. In our solar system, one massive object (the Sun) controls almost everything. In the Milky Way, gravity comes from the combined mass of billions of stars, gas clouds, and something mysterious called dark matter (matter we cannot see but can detect through its gravitational effects). The center of the galaxy also contains a supermassive black hole with a mass of about 4 million suns.

This side-by-side model compares the solar system (left) and the Milky Way galaxy (right). In the solar system, the Sun dominates and planets orbit it. In the Milky Way, billions of stars (tiny dots) all contribute gravity, and everything orbits the galactic center, which contains a supermassive black hole (BH). Our Sun is just one of those tiny stars.
Comparing gravitational interactions at two scales
FeatureSolar SystemMilky Way Galaxy
Central objectThe Sun (one star)Supermassive black hole + combined mass of billions of stars and dark matter
Orbiting objects8 planets, dwarf planets, asteroids, comets100–400 billion stars (including our Sun)
SizeAbout 9 billion km from Sun to PlutoAbout 100,000 light-years across
Orbit timeEarth: 1 year; Neptune: 165 yearsOur Sun: about 230 million years for one orbit
What gravity looks likeEach planet pulled toward one central mass (the Sun)Each star pulled by the combined gravity of everything inside its orbit

Worked Example — Using a Model to Predict Gravitational Effects

Let's work through a problem step by step. We will use what we know about mass and distance to compare the Sun's pull on two planets.

Which planet feels a stronger pull from the Sun — Earth or Jupiter?
1
Step 1 — Identify What We KnowEarth is about 150 million km from the Sun and has a mass of about 6 × 10²⁴ kg. Jupiter is about 778 million km from the Sun (roughly 5.2 times farther) and has a mass of about 1,900 × 10²⁴ kg (roughly 318 times more massive than Earth).
2
Step 2 — Think About the Mass EffectJupiter has about 318 times more mass than Earth. According to Newton's law, more mass means a stronger pull. So mass alone would make Jupiter feel a much stronger force.
Mass factor: Jupiter wins by about 318×
3
Step 3 — Think About the Distance EffectJupiter is about 5.2 times farther from the Sun than Earth. Remember, gravity weakens with the square of the distance. So the distance effect is 5.2 × 5.2 ≈ 27. That means the pull on Jupiter is about 27 times weaker because of distance.
Distance factor: Jupiter loses by about 27×
4
Step 4 — Combine Both EffectsWe compare the two factors. Jupiter's extra mass (318×) is much larger than its extra distance penalty (27×). So overall, the Sun pulls on Jupiter harder than it pulls on Earth. We can estimate the ratio: 318 ÷ 27 ≈ 12. The Sun's gravitational force on Jupiter is roughly 12 times stronger than its force on Earth.
Result: The Sun's pull on Jupiter is about 12× stronger than its pull on Earth.
5
Step 5 — Check With Our ModelThis makes sense with our solar system model. Even though Jupiter is much farther away, its enormous mass more than makes up for the distance. Jupiter's huge gravity also explains why it has 95 known moons — its mass creates a strong gravitational field around it.

Strengths and Limitations of Our Models

Every model is a simplification. Models help us understand complicated systems, but they leave some things out. Let's look at what our solar system and galaxy models do well and where they fall short.

Evaluating our gravitational models
Strengths ✓Limitations ✗
Solar System ModelClearly shows one central mass (Sun) pulling planets inward. Shows that distance affects orbit size.Not to scale — real distances are far too large to draw. Does not show planet-to-planet gravity or the tilt of orbits.
Milky Way ModelShows the spiral shape and that billions of objects share gravity. Shows the galactic center with a black hole.Cannot show individual star orbits. Cannot show dark matter, which is invisible. Greatly simplified — real galaxy is 3D, not flat.
🔬 SCIENCE PRACTICE: DEVELOPING AND USING MODELS
Models are like maps. A road map is great for driving directions, but it does not show you the height of mountains. A trail map shows elevation but not highway speed limits. Both are useful — just for different purposes. In science, we choose the model that best answers our question. When we want to understand how a planet orbits, we use the solar system model. When we want to understand how our whole galaxy is held together, we need the galactic model.

Connecting to Bigger Ideas — Beyond the Milky Way

Gravity does not stop at the edge of the Milky Way. Galaxies pull on each other, too! Our Milky Way and the Andromeda Galaxy are being drawn toward each other by gravity. In about 4.5 billion years, they may merge into one giant galaxy. Scientists call groups of galaxies held together by gravity galaxy clusters.

Gravity operates at every scale in the universe
ScaleWhat Gravity Holds TogetherExample
Planet–MoonA moon orbiting a planetThe Moon orbiting Earth
Solar systemPlanets, asteroids, and comets orbiting a starEarth and all planets orbiting the Sun
GalaxyBillions of stars orbiting a galactic centerStars in the Milky Way orbiting a supermassive black hole
Galaxy clusterMany galaxies pulling on each otherThe Local Group (Milky Way + Andromeda + others)

This is the crosscutting concept of Scale, Proportion, and Quantity in action. The same law of gravity works at every level — from a ball you toss in the air to galaxy clusters billions of light-years across. What changes is the scale: the masses get bigger and the distances get much, much larger.

🚀 Looking Ahead
In high school, you will learn about Einstein's theory of general relativity. Einstein showed that massive objects actually bend space and time. This updated model explains gravity even better than Newton's formula, especially near black holes and at the scale of the whole universe.

Practice Problems

PROBLEM 1CONCEPTUAL
What is the main difference between how gravity works in the solar system versus the Milky Way? A) Gravity only exists in the solar system, not in galaxies. B) In the solar system, one object (the Sun) dominates gravity; in the Milky Way, billions of stars share gravity. C) Gravity is stronger in the Milky Way because it is colder in space there. D) The solar system has no central mass, but the Milky Way does.
PROBLEM 2BASIC CALCULATION
Planet X is 2 times farther from the Sun than Planet Y. If the two planets have the same mass, how does the Sun's gravitational pull on Planet X compare to its pull on Planet Y? A) The pull on Planet X is 2 times weaker. B) The pull on Planet X is 4 times weaker. C) The pull on Planet X is 2 times stronger. D) The pull is the same for both planets.
PROBLEM 3INTERMEDIATE
A student builds a model of the solar system. She places a basketball (the Sun) in the center and uses marbles (planets) at different distances. She says, "The marble closest to the basketball feels the strongest gravitational pull." Her friend says, "But what about the mass of each marble? Doesn't that matter too?" Who is more correct? A) The student is fully correct — only distance matters. B) The friend is fully correct — only mass matters. C) Both are partly correct — gravitational force depends on both mass and distance. D) Neither is correct — gravity in models does not work like real gravity.
PROBLEM 4APPLIED
Our Sun takes about 230 million years to complete one orbit around the center of the Milky Way. A star that is closer to the galactic center orbits faster, while a star farther out orbits slower. What does this tell us about gravitational interactions in the galaxy? A) Gravity does not affect stars that are far from the center. B) The galactic center has no mass, so stars drift freely. C) Stars closer to the center experience stronger gravitational pull, causing them to orbit faster. D) Stars farther from the center orbit slower because they are heavier.
PROBLEM 5CRITICAL THINKING
Scientists discovered that stars at the outer edges of the Milky Way orbit faster than Newton's gravity formula predicts. This was a surprise because with only visible mass, those stars should orbit much slower. What does this evidence suggest? A) Newton's law of gravity is completely wrong and should be thrown out. B) There must be invisible matter (dark matter) adding extra mass and extra gravitational pull. C) Stars at the edges of the galaxy are not affected by gravity. D) The galaxy is actually much smaller than scientists thought.

Lesson Summary

Gravity is the force of attraction between any two objects with mass. It depends on two things: the masses of the objects (more mass = stronger pull) and the distance between them (more distance = weaker pull, dropping with the square of the distance). In our solar system, the Sun's enormous mass dominates, and planets orbit the Sun in a one-central-mass system. In the Milky Way galaxy, billions of stars, gas clouds, dark matter, and a supermassive black hole all share gravitational pull, creating a much more complex system.

We used models to compare these two systems side by side. Both systems are held together by the same force — gravity — described by Newton's law of universal gravitation. The crosscutting concepts of Cause and Effect, Systems and System Models, and Scale, Proportion, and Quantity helped us see that the same law produces very different-looking systems at different scales. Models are powerful tools, but they are always simplified — a good scientist knows both the strengths and limitations of any model.

Varsity Tutors • Middle School Earth and Space Science (Next Generation Science Standards) • Use Models to Compare Gravitational Interactions Within the Solar System and the Milky Way