MIDDLE SCHOOL PHYSICAL SCIENCE (NEXT GENERATION SCIENCE STANDARDS) • ENERGY

Use models to explain how forces between objects relate to stored potential energy

Discover how pushing, pulling, and stretching objects stores energy that can be released later.

Why Do Scientists Care About Stored Energy?

Imagine pulling back a rubber band and letting it fly across the room. Where did that energy come from? For centuries, scientists wondered how objects could "store" energy without moving. The answer changed how we understand everything from roller coasters to rockets.

This is our anchoring phenomenon: A bow-and-arrow archer pulls back the bowstring, holds it still, and then releases it to launch an arrow at high speed. The bow is not moving while held back, yet something powerful is stored inside it. What is going on?

1600s
Hooke Studies Springs
Robert Hooke discovered that the more you stretch or compress a spring, the harder it pushes back. He noticed a pattern between force and stretch distance.
1687
Newton Defines Force
Isaac Newton published his laws of motion. He showed that forces change how objects move. This gave scientists a way to measure pushes and pulls.
1800s
Energy Gets a Name
Scientists like William Rankine coined the term "potential energy." They realized that forces could store energy in objects, even when nothing is moving.
1900s
Energy Conservation
Physicists proved that energy is never created or destroyed. Stored potential energy can transform into motion energy and back again.

The big question these scientists tackled is still the one we explore today: How do forces between objects create stored energy, and how can we use models to explain it?

Core Principles: Forces and Stored Energy

Before we build models, we need to understand a few key ideas. A force is a push or pull between two objects. Potential energy is energy that is stored because of an object's position or shape. When you do work against a force, you transfer energy into the system. That energy doesn't disappear — it gets stored.

1

Gravitational Potential Energy

Earth's gravity pulls objects downward. When you lift a book higher, you work against gravity. The book now stores gravitational potential energy. The higher the book, the more energy stored.
2

Elastic Potential Energy

Stretching a rubber band or compressing a spring stores elastic potential energy. The more you stretch or compress, the stronger the restoring force, and the more energy is stored.
3

Magnetic Potential Energy

Two magnets pushed close together (same poles facing) store magnetic potential energy. The force of repulsion means you did work to push them together.
4

The Force-Energy Connection

In every case, a force acts between objects, and doing work against that force stores energy. Bigger forces or greater distances mean more stored energy.
KEY TAKEAWAY
Think of potential energy like winding up a toy car. You push the winding key against a spring force inside the car. The more you wind, the harder the spring pushes back, and the more energy gets stored. When you let go, all that stored energy turns into motion. The force between the spring and the key is what allows energy to be stored.
🔬 NGSS Three-Dimensional Learning
DCI (PS3.A): When the relative position of interacting objects changes, the energy stored in their fields changes. SEP: Developing and using models. CCC: Cause and Effect — forces cause changes in stored energy.

Modeling Forces and Potential Energy

Scientists use models (diagrams, drawings, or simulations) to show things we cannot easily see. Forces and stored energy are invisible, so models help us understand the relationship between them. The diagram below shows three systems where forces store potential energy.

This model shows three systems. On the left, a book lifted against gravity gains gravitational PE. In the center, a spring compressed against its restoring force gains elastic PE. On the right, two magnets pushed together against repulsion gain magnetic PE. In every case, a force acts between objects, and doing work against that force stores potential energy.

Notice the pattern in all three models. First, there is a force between two objects (gravity pulling the book down, the spring pushing back, or the magnets repelling). Second, someone does work (a push or pull over a distance) against that force. Third, the system now has stored energy it didn't have before.

🔗 Crosscutting Concept: Cause and Effect
The cause is a force acting between objects. The effect is that energy gets stored when the objects' positions change. If there were no force, no energy could be stored. Models help us see this cause-and-effect relationship clearly.

The Math Behind Stored Energy

We can use simple math to calculate how much potential energy is stored. The formula depends on the type of force involved. Let's look at the most common one: gravitational potential energy.

GRAVITATIONAL POTENTIAL ENERGY
PE = m × g × h
PE = potential energy (measured in joules, J) · m = mass of the object (measured in kilograms, kg) · g = strength of gravity (on Earth, about 9.8 m/s²) · h = height above a reference point (measured in meters, m)

This formula shows the force-energy connection perfectly. The term m × g is actually the gravitational force (weight) pulling the object down. Multiplying that force by the height h tells you how much work was done to lift it. That work equals the stored PE.

ELASTIC POTENTIAL ENERGY
PE = ½ × k × d²
k = spring stiffness (how hard the spring pushes back, in N/m) · d = distance the spring is stretched or compressed from its resting position (in meters). The "d²" means you multiply d by itself. A stiffer spring or a greater stretch stores more energy.
KEY TAKEAWAY
Both formulas follow the same pattern: potential energy depends on the strength of the force and on how far apart the objects are moved. Greater force or greater distance means more stored energy. It's like filling a water balloon — the harder you push the water in (force) and the more you fill it (distance), the more "splash energy" is stored!

Comparing Types of Potential Energy

Different types of forces lead to different types of stored potential energy. The diagram below uses a bar model to compare how energy increases as you change position in three different systems.

This energy bar model compares how stored PE increases with position changes. Gravitational PE grows steadily as height increases. Elastic PE grows faster because the restoring force gets stronger with more stretching. Both show the crosscutting concept of cause and effect: changing position against a force causes an increase in stored energy.
Comparing types of potential energy and the forces that create them
Type of PEForce InvolvedWhat Increases PEEveryday Example
GravitationalGravity (pulls objects toward Earth)More mass or greater heightA roller coaster at the top of a hill
ElasticRestoring force (spring pushes or pulls back)Stiffer spring or greater stretchA drawn bow ready to launch an arrow
MagneticMagnetic force (attracts or repels)Stronger magnets or closer distanceRepelling magnets held close together
ChemicalElectric forces between atomsType and arrangement of atomsA battery or food before digestion

Worked Example: Calculating Gravitational PE

Let's solve a problem step by step. A student lifts a 3 kg textbook from the floor to a shelf that is 2 meters high. How much gravitational potential energy does the book gain?

Lifting a Textbook to a Shelf
1
Step 1 — Identify Given ValuesMass of the book: m = 3 kg. Height of the shelf: h = 2 m. Gravity on Earth: g = 9.8 m/s². We can round g to 10 m/s² to make the math easier.
2
Step 2 — Choose the Right FormulaWe need the gravitational PE formula: PE = m × g × h. This formula works because we are calculating energy stored by working against the force of gravity.
3
Step 3 — Substitute ValuesReplace each variable with the numbers: PE = 3 kg × 10 m/s² × 2 m
4
Step 4 — CalculateFirst, multiply mass and gravity: 3 × 10 = 30. This is the gravitational force (weight) in newtons. Then multiply by height: 30 × 2 = 60.
PE = 60 joules (J)
5
Step 5 — Interpret the AnswerThe textbook stores 60 joules of gravitational potential energy on the shelf. If the book falls, this stored energy transforms into kinetic energy (energy of motion). The force of gravity and the height together determined how much energy was stored.
🔍 Science Practice: Constructing Explanations
Notice how we explained the answer using the model: a force (gravity) acts on the book, and lifting it against that force stores energy. The equation is a mathematical model that connects the force (m × g) to the energy stored through distance (h).

Strengths and Limitations of Energy Models

Scientists use different kinds of models to explain how forces relate to stored energy. Each type of model has strengths and limitations. Being a good scientist means choosing the right model for the right purpose.

Comparing types of models used to explain forces and potential energy
Model TypeStrengthsLimitations
Diagram Model (arrows for forces, bars for energy)Easy to see which forces are present and how energy changes. Great for comparing situations.Cannot give exact numbers. Arrows can be misleading if not drawn to scale.
Mathematical Model (PE = m × g × h)Gives exact values. Can make predictions about new situations.Doesn't show what is physically happening. Requires knowing exact values for variables.
Physical Model (spring toy, ramp with a ball)Hands-on! You can feel the force and see the energy transfer. Builds intuition.Hard to measure precisely. Cannot model all systems (like planets or atoms).
Energy Bar Chart (bar graph showing PE and KE)Shows energy transfers over time. Makes conservation of energy visible.Doesn't show the forces directly. Must already know energy values.
KEY TAKEAWAY
Models are like different camera lenses. A close-up lens shows details but misses the big picture. A wide-angle lens captures everything but loses detail. No single model is perfect, but each helps you understand one part of the force-energy relationship. Good scientists use multiple models together!

Connecting to Bigger Ideas in Science

Understanding how forces create stored energy is a foundation for much of science. In high school and beyond, you will explore these ideas at a deeper level using more advanced math and models.

How today's concepts connect to advanced science
What You Learn NowWhat Comes Next
PE = m × g × h for objects near Earth's surfaceGravitational PE between any two objects in space (Newton's law of universal gravitation)
Elastic PE from springs and rubber bandsEnergy stored in chemical bonds and nuclear forces (chemistry and nuclear physics)
Forces between magnets store energyElectric and magnetic fields store energy throughout space (electromagnetism)
Energy bar models and diagramsEnergy graphs, calculus-based energy functions, and computer simulations

The crosscutting concept of Energy and Matter connects this lesson to all of science. Energy can be stored, transferred, and transformed — but it is never created or destroyed. The law of conservation of energy tells us that the potential energy stored by forces will always go somewhere when released. This idea applies in biology (food energy), earth science (water cycle), and engineering (designing bridges and buildings).

🎢 Think Ahead
Next time you ride a roller coaster, think about this: at the top of the hill, you have maximum gravitational PE. As you zoom down, that PE converts to kinetic energy. At the bottom, your speed is greatest. Forces and stored energy explain the entire ride!

Practice Problems

PROBLEM 1CONCEPTUAL
A student holds a ball 2 meters above the ground. Which of the following best explains why the ball has gravitational potential energy? A) The ball is moving fast through the air. B) The ball has been lifted against the force of gravity. C) The ball is heavier than the air around it. D) The ball is made of a material that stores energy naturally.
PROBLEM 2BASIC CALCULATION
A 5 kg cat jumps onto a table that is 1 meter high. How much gravitational PE does the cat gain? Use g = 10 m/s². A) 5 J B) 10 J C) 50 J D) 500 J
PROBLEM 3INTERMEDIATE
Two identical springs are stretched. Spring A is stretched 0.1 m and Spring B is stretched 0.2 m. If elastic PE = ½ × k × d², how does the PE of Spring B compare to Spring A? A) Spring B has 2 times more PE than Spring A. B) Spring B has 4 times more PE than Spring A. C) Spring B has the same PE as Spring A. D) Spring B has 8 times more PE than Spring A.
PROBLEM 4APPLIED
An archer pulls back her bowstring. At full draw, the bowstring exerts a strong restoring force. She holds the bow still for 3 seconds before releasing the arrow. During those 3 seconds, which statement is correct? A) The bow has no energy because nothing is moving. B) The bow has kinetic energy because the archer's muscles are working. C) The bow has elastic potential energy because it was deformed against a restoring force. D) The bow loses energy every second it is held still.
PROBLEM 5CRITICAL THINKING
A student builds a model showing that a 1 kg ball at 5 m height has 50 J of PE, and a 1 kg ball at 10 m height has 100 J of PE. Her classmate says, "Your model proves that if we take the ball to outer space, far from any planet, it will have infinite PE because the height is huge." Use what you know about forces and PE to explain whether the classmate is correct. A) The classmate is correct — more height always means more PE, so infinite height means infinite PE. B) The classmate is wrong — in outer space, gravitational force is almost zero, so there is very little PE stored. C) The classmate is correct — PE only depends on height, not on force. D) The classmate is wrong — PE only exists on Earth's surface.

Lesson Summary

In this lesson, you learned that potential energy is energy stored because of an object's position or shape. This stored energy exists because of forces between objects. When you do work against a force — like lifting a ball against gravity, stretching a spring against its restoring force, or pushing magnets against magnetic repulsion — you transfer energy into the system. The formula PE = m × g × h is a mathematical model that shows how gravitational force and height determine stored energy.

You explored multiple types of models — diagrams, equations, bar charts, and physical setups — and learned that each has strengths and limitations. The crosscutting concept of cause and effect ties it all together: forces cause energy to be stored when positions change. The key pattern is that stronger forces or greater distances result in more stored potential energy. This idea connects to the law of conservation of energy — stored PE can transform into other forms of energy but is never lost.

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