Physical Science 8Physical Science · Grade 8

Table of Contents

Unit 1: Energy of Motion
Unit 2: Gravity & Energy Related to Position
Unit 3: Electricity & Magnetism
Unit 4: Waves Transmitting Energy & Information
Unit 5: Thermal Energy & Heat Flow
Unit 6: Chemical Energy & Reactions
Unit 2, Chapter 8 · Gravity & Energy Related to Position

Universal Law of Gravity

Big Question

Every falling object near Earth speeds up at the exact same rate, so why doesn't gravity pull on a feather and a bowling ball with the exact same force?

A Pull With No Strings Attached

Gravity is strange when you really think about it. It's a force, which means it can push or pull objects, yet it never needs to touch anything to do its job. The Moon orbits Earth without any rope connecting them, and you're pulled toward the ground without anything physically grabbing you. Scientists describe this by saying gravity acts at a distance, and it always pulls objects together. Gravity never pushes things apart; it only attracts.

Here's another key rule: gravity requires at least two objects. It doesn't make sense to talk about the gravity of a single object all by itself in empty space with nothing else around. Gravity is always a relationship between two masses pulling on each other, even if one of them, like Earth, is doing almost all of the noticeable pulling.

More Mass, More Force. More Distance, Less Force.

Even though gravity is a universal force acting between literally any two objects with mass, it doesn't pull on everything with equal strength. Two things change how strong the force of gravity is between objects. The first is mass: the more mass two objects have, the stronger the gravitational force pulling them together. That's why Earth's gravity noticeably affects you, but your gravity and your friend's gravity pulling on each other is far too tiny to ever feel.

The second factor is distance. The farther apart two objects are, the weaker the gravitational force between them becomes. Move two objects twice as far apart, and the force drops off fast. This means gravity has an inverse relationship with distance: as distance goes up, force goes down. Put mass and distance together, and you can explain why planets, stars, and moons produce gravity strong enough to notice, while two backpacks sites next to each other on a desk don't visibly attract each other at all.

Same Acceleration, Different Force

Here's a detail that confuses a lot of people: near Earth's surface, gravity accelerates every object at the same rate, about 9.8 meters per second every second, regardless of mass. Drop a bowling ball and a marble at the same instant in a vacuum, and they hit the ground at the same time. That seems to contradict the idea that mass matters, but it doesn't. The force of gravity pulling on the bowling ball actually is bigger than the force pulling on the marble, but the bowling ball also has more mass to move, and those two effects cancel out perfectly, leaving the same acceleration for both.

Outside of a vacuum, though, things look different. Drop a feather and a bowling ball in a regular room, and the bowling ball wins easily. That's not because gravity treats them differently, it's because of air resistance and surface area. A feather has a large surface area for its tiny mass, so air pushes back against it much more, slowing its fall dramatically. A tightly balled-up piece of paper falls faster than a flat sheet of the same paper for exactly this reason.

Fields and Force Diagrams

So how does gravity reach across empty space without touching anything? Scientists explain this using the idea of a field, an invisible region of influence that surrounds any object with mass. Earth's gravitational field fills the space around our planet, and any object that enters that field feels a pull toward Earth's center, even though nothing is physically connecting them. Electric charges and magnets create their own kinds of fields too, which is why magnets can attract metal from across a table without touching it.

Scientists and engineers often draw force diagrams to show these invisible pulls visually. An arrow represents a force, pointing in the direction the force acts, with a longer arrow meaning a stronger force. If you drew a force diagram of Earth pulling on the Moon compared to Earth pulling on a satellite much closer by, the arrow toward the closer satellite would generally need to reflect the different distances and masses involved.

Real-World Connections

Gravity-Assist Space Missions

NASA has sent spacecraft like Voyager 1 on flybys of massive planets like Jupiter specifically to use the planet's gravity to slingshot the spacecraft to higher speeds, saving enormous amounts of fuel.

Why the Moon Doesn't Fall on Us

The Moon is constantly falling toward Earth due to gravity, but it's also moving sideways fast enough that it keeps missing — resulting in the orbit we see every night.

How they tie togetherBoth examples depend on the same rule: every object with mass pulls on every other object with mass, and that pull gets weaker with distance — mission planners and the Moon's orbit both follow this one universal law.

Meet the Scientist

OM

Orbital Mechanics Engineers (Astrodynamicists)

These specialists calculate the exact paths spacecraft need to follow by accounting for the gravitational pull of the Sun, Earth, Moon, and other planets. A tiny miscalculation in these gravity equations could send a multi-million-dollar spacecraft missing its target by thousands of miles.

Key Vocabulary

Bold, underlined words in the reading above are clickable too — tap one to see its definition pop out. Or click or tap a card below to reveal the definition.

Universal law of gravitationtap to flip
The rule that any two objects with mass attract each other, with the force depending on their masses and the distance between them.
Fieldtap to flip
An invisible region of space around an object where its force, like gravity, magnetism, or electric charge, can affect other objects without touching them.
Inverse relationshiptap to flip
A pattern where one quantity goes down as another goes up, such as gravitational force decreasing as distance increases.
Acceleration due to gravitytap to flip
The rate at which gravity speeds up a falling object, about 9.8 meters per second squared near Earth's surface, the same for all masses in a vacuum.
Air resistancetap to flip
A force caused by air pushing back against a moving object, which can slow falling objects depending on their shape and surface area.
Force diagramtap to flip
A drawing that uses arrows to show the direction and relative strength of forces acting on an object.
Attractive forcetap to flip
A force that pulls objects toward each other rather than pushing them apart; gravity is always attractive.
Masstap to flip
The amount of matter in an object, one of the two factors that determines the strength of gravitational force between two objects.

Explore More

Read

Newton's Theory of Universal Gravitation

NASA
Open article →
Try the simulation

Gravity Force Lab

PhET Interactive Simulations
Launch simulation →

Defining Gravity: Crash Course Kids #4.1

Crash Course Kids on YouTube
Watch on YouTube →

Chapter Review

1. Which statement correctly describes gravity between any two objects in the universe?

2. Planet X and Planet Y have identical masses, but Planet Y is twice as far from a nearby star as Planet X. How does the star's gravitational pull on each planet compare?

3. A hammer and a feather are dropped at the same time on the surface of the Moon, where there is no air. What happens?

4. Why don't two students sitting next to each other in class notice any gravitational pull between them?

5. A crumpled piece of paper and a flat sheet of the exact same paper are dropped from the same height in a normal room. What is the best explanation for why the crumpled paper lands first?

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