Unit 20 · Physical Science: Forces, Energy and Waves
A unit of the course: the story, then chapter by chapter — sections, numbered lessons, a source or the numbers to read, three checks each — a review per chapter, and the wrap-up at the end.
Drawn scene: a crash-test sled and dummy mid-impact against a striped barrier under strobe lights, with a coil and magnet on a bench and a standing wave on a string
20Unit
Physical Science: Forces, Energy and Waves
Physical Science
A car folds against a barrier in a tenth of a second. A satellite falls around Earth for years without ever landing. A magnet slides into a coil of wire and a needle twitches. Sunlight that left a star before you were born lands on your eye tonight. These look like four different worlds, but they run on the same short list of rules, and by the end of this unit you will be able to write those rules down and use them with numbers.
The first half is about motion and force: how to describe where something is and how fast it is going, what changes its motion, and why the safest car is one built to crush. Newton's three laws and the idea of momentum turn out to predict crashes, rockets and orbits with the same equations. Gravity and electricity, which reach across empty space, follow laws that look almost identical, and the idea of a field explains how.
The second half follows energy: the energy of motion, of height, of heat, and the strict law that says the total never changes, along with the equally strict law that says useful energy always spreads out. Then you will meet waves, from sound in a room to light from a galaxy, learn why light is both a wave and a stream of particles, and see how a changing magnetic field lights a city and how a pattern of ones and zeros carries a photo around the world.
How we figured it out
1638
Galileo publishes his studies of falling bodies and argues that motion continues without a push
1687
Newton's Principia states the three laws of motion and the law of universal gravitation
1785
Coulomb measures the force between charges and finds an inverse-square law
1798
Cavendish measures the gravitational pull between lead balls, letting Earth be weighed
1831
Faraday induces a current with a changing magnetic field and builds the first generator
1844
Morse's first telegraph message travels from Washington to Baltimore as a coded signal
1845
Joule's paddle-wheel experiments show that work and heat are the same energy in different forms
1865
Maxwell's equations predict electromagnetic waves and identify light as one of them
1887
Hertz produces and detects radio waves in his laboratory, confirming Maxwell
1905
Einstein explains the photoelectric effect with light arriving in packets, the photon
1957
Sputnik 1 becomes the first artificial satellite, orbiting Earth every 96 minutes
1959
Nils Bohlin's three-point seat belt is introduced and shared freely with all carmakers
44
Chapter
Motion, Forces and Momentum
Physics
Big questionHow can a few rules about force and motion predict everything from a car crash to a satellite's orbit?
The story
What the Dummy Knows
A car slams into a wall at 35 miles per hour. The passenger walks away, because the passenger is not a person.
The lab is quiet except for a countdown. At the end of a long track, a new sedan sits with its engine off, pulled by a cable. In the driver's seat is a figure the size of an average adult man, with a rubber skin, a steel spine and a head packed with sensors. Engineers call him a dummy, but he cost more than the car. At zero, the cable yanks the car forward. In a little over a second it is moving at 35 miles per hour, about 56 kilometers per hour, and then it meets a concrete barrier.
The crash lasts about a tenth of a second. High-speed cameras catch what your eye cannot. The front of the car folds like an accordion. The car stops, but the dummy does not. His body keeps moving forward at the speed the car was going, until the seat belt catches his chest and the airbag catches his head. Sensors in his skull, neck, chest and legs record how hard each part was pushed, thousands of times per second.
This is not a test of whether cars break. Every car breaks in a crash. It is a test of how the car breaks, and of what happens to the body inside. A car that stops in a longer time pushes on its passengers with less force. Crumple zones, belts and airbags all do the same job in different ways: they stretch out the stop. The dummy's job is to measure whether it worked.
The dummy cannot feel anything, but engineers can read his numbers like a story. A neck reading that is too high means a design must change. A chest reading that is low means the belt did its job. Behind every one of those numbers are the same rules of motion that describe a thrown ball or the Moon in its orbit. This chapter is about those rules, and about how a few simple relationships let us predict, and sometimes prevent, what happens when things collide.
Talk about itThe car and the dummy were going the same speed. Why did the dummy keep moving after the car stopped?
Section 1
Describing Motion
44.1
Position, Speed and Velocity
Main ideaSpeed tells how fast something moves; velocity adds the direction, and both are measured against a chosen starting point.
Picture a Chicago Transit Authority train leaving a station. To describe where it is, you need a starting point. Physicists call that point the origin, and they call the distance and direction from it the . A train 2 kilometers east of the station has a different position from one 2 kilometers west, even though both are the same distance away. Every description of motion starts by choosing an origin and a direction to call positive.
is how far something travels in a certain time. If the train covers 6 kilometers in 10 minutes, its average speed is 0.6 kilometers per minute, or 36 kilometers per hour. Speed alone does not say which way the train is going. does. Velocity is speed with a direction attached, such as 36 kilometers per hour east. Two trains at the same speed in opposite directions have different velocities. This matters, because a change in direction is a change in velocity, even if the speed stays the same.
Scientists use meters and seconds for most calculations, so a speed of 36 kilometers per hour becomes 10 meters per second. The formula is simple: average velocity equals the change in position divided by the time it took. If you walk 100 meters north in 80 seconds, your average velocity is 1.25 meters per second north. Your speed at any single instant might be more or less than that, which is why we say average.
Here is a test of the idea. Suppose a runner circles a 400 meter track in 80 seconds and ends where she started. Her average speed is 5 meters per second, since she covered 400 meters. But her change in position is zero, because she ended at her origin. So her average velocity for the whole lap is zero. That sounds strange until you remember that velocity is about where you ended up compared with where you began, not about the path you took.
Words to know
position
where something is, measured as a distance and direction from a chosen starting point
speed
how far something travels in a certain amount of time
velocity
speed together with the direction of motion
Check yourself
1. What does velocity include that speed does not?
Why: Velocity is speed plus direction. Speed alone leaves direction out.
2. A cyclist rides 300 meters east in 60 seconds. What is her average velocity?
Why: Average velocity is change in position divided by time: 300 meters divided by 60 seconds is 5 meters per second, toward the east.
3. A swimmer does one full lap and returns to the exact spot where she started. Which statement is true?
Why: She covered distance, so her speed was not zero, but her change in position was zero, so her average velocity was zero.
44.2
Reading Motion Graphs
Main ideaOn a position-time graph the slope is velocity; on a velocity-time graph the slope is acceleration and the area is distance.
A graph can hold a whole trip in one picture. A position-time graph puts time on the horizontal axis and position on the vertical axis. A flat line means the object is not moving: time passes but position stays the same. A straight, tilted line means steady motion. The steeper the line, the faster the object. The of the line, the rise divided by the run, is exactly the velocity. A line going downhill means the object is moving back toward the origin.
A velocity-time graph tells a different story about the same trip. Now the vertical axis is velocity. A flat line means constant velocity, not standing still. A line sloping upward means the object is speeding up. The slope of this graph is , the rate at which velocity changes. A line at zero means the object is stopped. The area between the line and the time axis gives the distance traveled, because velocity multiplied by time equals distance.
Try the crash test from the story. On a velocity-time graph, the car’s line rises from zero as the cable pulls it, holds steady at about 15.6 meters per second, then plunges to zero in about a tenth of a second when it hits the barrier. That steep drop is a huge negative acceleration. On the dummy’s graph, the drop comes a moment later and is not as steep, because the belt and airbag stretch his stop over a longer time. The whole point of safety design is to make that line less steep.
Students often mix up the two kinds of graph. A curved position-time line does not mean a curved path; it means the velocity is changing. A velocity-time line that crosses zero does not mean the object is back at the start; it means it has reversed direction. Always check the label on the vertical axis before you read a motion graph. The same shape means different things on different graphs.
Words to know
slope
how steep a line is on a graph: the rise divided by the run
acceleration
the rate at which velocity changes, in meters per second each second
constant
staying the same over time
Check yourself
1. On a position-time graph, what does a steep straight line show?
Why: The slope of a position-time graph is velocity. A steep straight line means a large, steady velocity.
2. On a velocity-time graph, a flat horizontal line above zero means the object is
Why: The vertical axis is velocity. A flat line means velocity is not changing, so the object moves at a steady speed.
3. Why is the dummy's velocity-time line less steep than the car's during the crash?
Why: Slope on a velocity-time graph is acceleration. Stopping over more time means a smaller acceleration and a gentler line.
44.3
Acceleration and Free Fall
Main ideaAcceleration is any change in velocity; near Earth's surface, falling objects gain about 9.8 meters per second of speed each second.
Drop a ball from a balcony and it does not fall at a steady speed. It starts from rest and moves faster and faster. Near Earth’s surface, a falling object gains about 9.8 meters per second of speed every second, if air resistance is small. Physicists write this as 9.8 meters per second squared and call it , the acceleration of gravity. After 1 second the ball moves at about 9.8 meters per second; after 2 seconds, about 19.6 meters per second. Galileo showed in the early 1600s that heavy and light objects fall with the same acceleration when air does not interfere.
Acceleration is not only speeding up. Any change in velocity counts. A car braking at a red light is accelerating, in the negative direction. A car rounding a curve at a steady 40 kilometers per hour is also accelerating, because its direction is changing. Your body notices: you press against the door on a curve and lean forward when the driver brakes. Whenever you feel that push, velocity is changing.
The formula is average acceleration equals the change in velocity divided by the time it took. A sprinter who goes from rest to 10 meters per second in 2 seconds has an average acceleration of 5 meters per second squared. The crash-test car goes from 15.6 meters per second to zero in about 0.1 seconds, an acceleration of about negative 156 meters per second squared, roughly 16 times g. That is why a crash at city speed can injure a person who would be fine after a fall from a chair.
Air resistance changes the story for real objects. A feather falls slowly because air pushes up on it almost as hard as gravity pulls down. In 1971 an Apollo 15 astronaut dropped a hammer and a feather on the Moon, where there is no air, and they landed together. On Earth, a skydiver speeds up until air resistance balances gravity, and then falls at a steady terminal velocity. The rule that acceleration is 9.8 meters per second squared is really a rule about gravity alone.
Words to know
g (gravity's acceleration)
the acceleration of gravity near Earth's surface, about 9.8 meters per second squared
free fall
motion when gravity is the only force acting, with no air resistance
terminal velocity
the steady speed a falling object reaches when air resistance balances gravity
air resistance
the force of air pushing against a moving object
Check yourself
1. A rock is dropped from rest. Ignoring air, about how fast is it moving after 3 seconds?
Why: Speed grows by about 9.8 meters per second each second, so after 3 seconds it is about 29.4 meters per second.
2. Which of these is NOT an example of acceleration?
Why: Acceleration is any change in velocity. Straight, steady motion has no change in speed or direction.
3. Why did the hammer and feather land together on the Moon but not on Earth?
Why: Without air resistance, gravity alone acts, and it gives every object the same acceleration regardless of mass.
Section 2
Newton's Laws with Numbers
44.4
Inertia and Balanced Forces
Main ideaAn object keeps its velocity unless an unbalanced force acts on it; this is Newton's first law, and it explains why the dummy kept moving.
Why did the crash-test dummy keep going when the car stopped? Because nothing stopped him yet. In 1687 Isaac Newton stated a rule now called the first law of motion: an object at rest stays at rest, and an object in motion keeps moving at the same velocity, unless a net force acts on it. The tendency of an object to keep doing what it is doing is called . The dummy’s inertia carried him forward at 15.6 meters per second until the belt, the airbag or the dashboard applied a force.
This idea was not obvious. For almost two thousand years, most thinkers followed Aristotle, who taught that a moving object needs a push to keep moving. It looks that way: a rolling ball slows and stops. Galileo argued that the ball stops because of friction, not because motion naturally runs out. Roll a ball on ice and it goes much farther. Remove friction entirely, he reasoned, and the ball would roll forever. Newton built his first law on Galileo’s insight.
The key phrase is , the total of all forces acting on an object. A book on a table has gravity pulling down and the table pushing up with equal strength. The forces are balanced, the net force is zero, and the book stays put. A car cruising at a steady 100 kilometers per hour on a highway also has zero net force: the engine’s push forward exactly balances air resistance and friction. Constant velocity does not require a net force. Changing velocity does.
You can feel inertia in everyday life. When a bus starts, you lurch backward, not because something pushed you back, but because your body tried to stay at rest while the floor moved forward. When the bus stops, you lurch forward, because your body tries to keep moving. Seat belts exist because of the first law. Without one, in a crash you keep moving at the car’s old speed until something inside the car stops you.
Words to know
inertia
the tendency of an object to keep its velocity, whether at rest or moving
net force
the combined total of all forces acting on an object
friction
a force that resists sliding between surfaces that touch
balanced forces
forces that add up to zero, so velocity does not change
Check yourself
1. A hockey puck slides across smooth ice at a steady speed. According to the first law, what force is needed to keep it moving?
Why: An object keeps its velocity unless a net force acts. Steady motion needs no net force.
2. Why do passengers lurch forward when a bus brakes suddenly?
Why: Inertia keeps the passengers moving forward while the bus slows beneath them.
3. A car travels at a constant 90 kilometers per hour on a straight road. Which statement is true?
Why: Constant velocity means zero net force. The engine's push is matched by the drag and friction pushing back.
44.5
Force Equals Mass Times Acceleration
Main ideaNewton's second law, F = ma, says the net force on an object equals its mass times its acceleration, measured in newtons.
Push an empty shopping cart and it leaps ahead. Push a full one with the same effort and it moves grudgingly. Newton’s second law puts this into numbers: net force equals times acceleration, or F = ma. Mass is the amount of matter in an object, measured in kilograms. The unit of force is the , written N. One newton is the force that gives a 1 kilogram mass an acceleration of 1 meter per second squared. It is roughly the weight of a small apple.
The law works in both directions. If you know the force and the mass, you can predict the acceleration. A 1,000 kilogram car with a net forward force of 3,000 newtons accelerates at 3 meters per second squared. If you know the mass and can measure the acceleration, you can find the force. That is what the crash dummy’s sensors do. A dummy head of about 4.5 kilograms that stops at 1,000 meters per second squared felt a force of about 4,500 newtons, more than the weight of a small car.
Weight is a force, not a mass. Your weight is the force of gravity on your mass, equal to mass times g. A 60 kilogram student weighs about 588 newtons on Earth but only about 96 newtons on the Moon, where g is about 1.6 meters per second squared. Her mass is 60 kilograms in both places. Bathroom scales in the United States report pounds, which are units of force. Doubling an object’s mass doubles its weight, but it also doubles its inertia, which is why all objects fall with the same acceleration.
The second law also explains why safety design is about time. The same change in velocity can happen quickly or slowly. Acceleration is that change divided by time, so a longer stop means a smaller acceleration, and a smaller acceleration means a smaller force on the same mass. A crumple zone that doubles the stopping time cuts the average force on the passengers in half. Engineers cannot change the mass of a person or the speed of the crash, but they can stretch out the time.
Words to know
mass
the amount of matter in an object, measured in kilograms
newton
the unit of force; one newton makes 1 kilogram accelerate at 1 meter per second squared
weight
the force of gravity on an object, equal to mass times g
Check yourself
1. A net force of 500 newtons acts on a 250 kilogram motorcycle and rider. What is the acceleration?
Why: Acceleration equals net force divided by mass: 500 divided by 250 is 2 meters per second squared.
2. An astronaut's mass is 70 kilograms on Earth. On the Moon, her mass is
Why: Mass is the amount of matter and does not change with location. Only weight changes.
3. Two crashes stop the same passenger from the same speed. In crash A the stop takes 0.05 seconds; in crash B it takes 0.15 seconds. Compare the average forces.
Why: Same change in velocity over one third the time means three times the acceleration, and by F = ma three times the force.
44.6
Forces Come in Pairs
Main ideaNewton's third law says that whenever one object pushes on another, the second pushes back on the first with equal force in the opposite direction.
Stand on a skateboard and push against a wall. The wall does not move, but you roll backward. You pushed the wall, and the wall pushed you. Newton’s third law says that forces always come in pairs: if object A pushes on object B, then B pushes on A with a force of equal size in the opposite direction. The two forces act on different objects, which is why they do not cancel. Your push moved nothing, but the wall’s push moved you.
This law explains how anything moves at all. When you walk, your foot pushes backward on the ground, and the ground pushes forward on you. A swimmer pushes water backward, and the water pushes the swimmer forward. A rocket does not push against the air; it throws hot gas out the back, and the gas pushes the rocket forward. That is why rockets work in the vacuum of space, where there is nothing to push against except their own exhaust.
The pairs are always equal, even when the results look very different. When a truck hits a mosquito, the force the truck puts on the mosquito is exactly the same size as the force the mosquito puts on the truck. The difference is mass. By the second law, the same force gives the tiny mosquito an enormous acceleration and the massive truck an acceleration too small to notice. In the crash test, the barrier pushes the car exactly as hard as the car pushes the barrier.
A common mistake is to pair the wrong forces. A book resting on a table has gravity pulling it down and the table pushing it up. Those are balanced forces, but they are not a third-law pair, because both act on the book. The third-law partner of Earth pulling down on the book is the book pulling up on Earth. The partner of the table pushing up on the book is the book pushing down on the table. Third-law pairs always involve two objects acting on each other.
Words to know
interaction
two objects acting on each other, each with a force on the other
reaction force
the equal and opposite force that the second object puts on the first
exhaust
hot gas thrown out the back of a rocket or engine
Check yourself
1. A swimmer pushes backward on the water with 80 newtons. What does the water do?
Why: Forces come in equal and opposite pairs acting on different objects: the water pushes the swimmer forward with the same 80 newtons.
2. How does a rocket accelerate in empty space?
Why: The rocket pushes gas backward, and by the third law the gas pushes the rocket forward. No outside air is needed.
3. A car and a bug collide. Which is true about the forces during the collision?
Why: Third-law forces are always equal. The bug's tiny mass gives it a huge acceleration by F = ma.
Section 3
Momentum and Safety
44.7
Momentum and Impulse
Main ideaMomentum is mass times velocity; a force acting over time, called impulse, changes it.
A bowling ball rolling slowly and a baseball flying fast can be equally hard to stop. What they share is , the product of mass and velocity. A 7 kilogram bowling ball at 3 meters per second has 21 kilogram-meters per second of momentum. A 0.15 kilogram baseball at 40 meters per second has 6. Momentum has a direction, the same as the velocity. Two cars with equal momentum heading toward each other have total momentum of zero.
To change an object’s momentum, you apply a force for some time. The product of force and time is called , and impulse equals the change in momentum. This is really Newton’s second law written differently. A catcher stopping a fastball can use a big force for a short time, with a stiff glove, or a smaller force for a longer time, by letting the glove give as the ball arrives. Either way the impulse is the same, because the ball’s momentum goes to zero either way.
Now the crash test makes full sense. The dummy’s momentum, about 75 kilograms times 15.6 meters per second, or roughly 1,170 kilogram-meters per second, must drop to zero. That impulse is fixed. The only question is how long the stop takes. Hitting a dashboard, the stop might last 0.01 seconds, requiring an average force of about 117,000 newtons. Stretched over 0.1 seconds by a belt and airbag, the force drops to about 11,700 newtons. Ten times the time means one tenth the force.
You already use the impulse idea without knowing it. You bend your knees when you land from a jump, lengthening the stop. Gymnasts land on padded mats. Cars have bumpers that squash. Eggs shipped to Illinois grocery stores ride in cartons that crush a little before the egg does. In every case, the change in momentum is unavoidable, so the design spreads it over more time to cut the force.
Words to know
momentum
mass times velocity; a measure of how hard it is to stop a moving object
impulse
force multiplied by the time it acts; equal to the change in momentum
average force
the steady force that would produce the same effect as a changing one over the same time
Check yourself
1. Which object has the most momentum?
Why: Momentum is mass times velocity. The car's 20,000 kilogram-meters per second is far larger than the others.
2. A goalkeeper catches a ball by letting her hands move back with it. This mainly
Why: The change in momentum is fixed, so more time for the stop means less average force on her hands.
3. A 2 kilogram cart moving at 3 meters per second is stopped in 0.5 seconds. What average force was needed?
Why: The momentum change is 6 kilogram-meters per second. Force equals impulse divided by time: 6 divided by 0.5 is 12 newtons.
44.8
Collisions and Conservation
Main ideaIn any collision with no outside force, the total momentum of the objects before equals the total momentum after.
Roll a marble into a line of marbles and one pops out the far end at almost the same speed. Something was handed on. That something is momentum. When objects push on each other, the third law guarantees that the forces are equal and opposite and act for the same time, so the impulses are equal and opposite too. Whatever momentum one object loses, the other gains. The total stays the same. Physicists say momentum is .
This rule lets you predict collisions without knowing anything about the forces. Suppose a 1,000 kilogram car moving at 10 meters per second rear-ends a 1,000 kilogram car at rest, and the bumpers lock so they move together. Before, the total momentum is 10,000 kilogram-meters per second. After, the same 10,000 is shared by 2,000 kilograms, so the pair moves at 5 meters per second. Investigators use this idea backward, working out how fast cars were going from where they ended up.
Conservation only holds for a , a set of objects with no outside force acting on them. During the brief moment of a collision, the forces between the cars are so large that friction from the road hardly matters, so the two cars together are nearly a closed system. Over a longer time, friction from the road takes momentum away and hands it to Earth. Earth is so massive that the change in its motion is far too small to measure.
Momentum conservation shows up everywhere. When a gun fires, the bullet gains forward momentum and the gun gains equal backward momentum, which the shooter feels as recoil. When a figure skater pushes off a partner, both glide apart, the lighter one faster. When a rocket burns fuel, the exhaust carries momentum one way and the rocket the other. And in a total momentum of zero, as in a head-on crash of equal cars at equal speeds, both cars stop dead, which is the worst possible outcome for the people inside.
Words to know
conserved
kept the same in total, even as it moves between objects
closed system
a set of objects with no outside force acting on them
recoil
the backward motion of a gun or launcher when it fires something forward
collision
a brief, strong interaction between objects that touch
Check yourself
1. A 3 kilogram cart at 4 meters per second hits a 1 kilogram cart at rest and they stick together. How fast do they move afterward?
Why: Momentum before is 12 kilogram-meters per second. After, 4 kilograms share it, so the speed is 3 meters per second.
2. When a rifle fires, why does it kick backward?
Why: Total momentum was zero before firing, so the rifle must gain momentum equal and opposite to the bullet's.
3. Why can investigators treat two colliding cars as a closed system during the crash itself?
Why: Conservation needs no outside force. For the split second of impact, the outside forces are tiny compared with the crash forces.
44.9
Engineering a Safer Crash
Main ideaBelts, airbags and crumple zones cannot change a crash's momentum, so they lengthen the stopping time to lower the force on people.
In 1959 a Swedish engineer named Nils Bohlin designed the three-point seat belt, the lap-and-shoulder strap in every modern car. His company, Volvo, let other carmakers use the design for free. Before belts, a person in a crash kept moving until the steering wheel, windshield or road stopped them in a few thousandths of a second. A belt stops the body over a longer time and spreads the force across the strong bones of the hips and chest instead of the head.
An airbag goes further. A sensor detects the sudden deceleration of a crash and fires a small chemical charge that fills the bag with gas in about 30 thousandths of a second, faster than a person can blink. The head sinks into the bag, which vents gas through small holes as it squashes, so the stop is gradual. The bag must inflate before the head arrives but not so hard that it becomes a hazard itself. Getting that timing right took decades of tests with dummies.
The car’s body does its part too. A is a front or rear section built to fold in a controlled way. Folding steel takes time and absorbs energy, so the passenger compartment, which is built stiff, decelerates more gently. It seems backward that a car designed to crush is safer than a rigid one, but the physics is clear. A rigid car stops in a shorter distance and time, and everything inside feels a larger force.
Engineers judge these designs with numbers from the dummy: how much the head accelerated, how far the chest compressed, how much force went through the neck and legs. In the United States, the National Highway Traffic Safety Administration and the insurance-funded Insurance Institute for Highway Safety run crash tests and publish ratings. Deaths per mile driven in the United States have fallen sharply since the 1960s, and belts, airbags and better car bodies are a large part of the reason. Illinois, like every state except one, requires belt use by law.
Words to know
crumple zone
a part of a car built to fold up in a crash, lengthening the stop
deceleration
acceleration that slows an object down
sensor
a device that measures something, such as acceleration, and sends a signal
Check yourself
1. What is the main purpose of a crumple zone?
Why: The change in momentum cannot be avoided, so folding metal spreads it over more time and lowers the force.
2. Why does a seat belt route across the hips and shoulder rather than the neck or stomach?
Why: Spreading the stopping force over strong bones prevents the injuries a belt on soft tissue would cause.
3. An airbag inflates in about 30 milliseconds. Why must it be that fast?
Why: The crash is over in about a tenth of a second, so the bag must be full before the passenger's head reaches it.
Section 4
Forces That Reach Across Space
44.10
Gravity's Law
Main ideaEvery mass pulls on every other with a force that grows with the masses and shrinks with the square of the distance between them.
The same force that pulls an apple down keeps the Moon in orbit. That was Newton’s great leap. He proposed that every object with mass attracts every other object. The force between two masses is proportional to the product of the masses and to the square of the distance between their centers. Double the distance and the force drops to one quarter. Triple it and the force drops to one ninth. This is the law of .
Written as a formula, the force is F = G times m1 times m2 divided by r squared, where r is the distance between centers and G is a constant. G is tiny, about 6.67 times 10 to the minus 11 newton meters squared per kilogram squared. That is why you do not feel the pull of your desk. Two 60 kilogram students one meter apart attract each other with roughly 0.00000024 newtons. Only when one mass is planet-sized does the force become obvious.
Newton could not measure G. In 1798 Henry Cavendish did, using a delicate balance with lead balls hanging from a wire inside a shed, watching the wire twist as the large balls pulled the small ones. From his measurement, people could calculate Earth’s mass, about 5.97 times 10 to the 24 kilograms. Cavendish is sometimes said to have weighed the Earth. In a sense he did, with a few balls of lead and a very patient eye.
The inverse-square rule explains why g is 9.8 meters per second squared at the surface but smaller far above it. At the height of the International Space Station, about 400 kilometers up, Earth’s pull is still about 90 percent of surface gravity. Astronauts float not because gravity is gone but because they and their station are falling together around Earth. If you climbed to twice Earth’s radius from its center, about 6,400 kilometers up, your weight would be one quarter what it is now.
Words to know
universal gravitation
Newton's law that every mass attracts every other mass
inversely proportional
when one quantity grows, the other shrinks by the same factor
inverse square
a rule where doubling the distance cuts the effect to one quarter
constant
a number that stays the same in every case, such as G
Check yourself
1. If the distance between two masses is doubled, the gravitational force between them becomes
Why: Force falls with the square of the distance, so doubling the distance divides the force by 4.
2. Why do astronauts on the space station float?
Why: Gravity there is about 90 percent of surface gravity. Everything in orbit is in constant free fall, so nothing presses on anything.
3. What did Cavendish's 1798 experiment make it possible to calculate?
Why: By measuring G with lead balls, Cavendish let others use the law of gravitation to find Earth's mass.
44.11
The Electric Force
Main ideaCharged objects push or pull on each other with a force that follows an inverse-square law, like gravity, but can repel as well as attract.
Rub a balloon on your hair and it sticks to a wall. Pull off a wool sweater in a dry Illinois winter and you hear crackles and see tiny sparks. These are signs of . Matter contains protons with positive charge and electrons with negative charge. Rubbing moves electrons from one material to another, leaving one positive and the other negative. Like charges repel and opposite charges attract. Charge is measured in , and an electron carries a very small charge, about 1.6 times 10 to the minus 19 coulombs.
In 1785 the French physicist Charles-Augustin de Coulomb measured the force between charged spheres with a twisting balance much like the one Cavendish later used. He found that the force is proportional to the product of the two charges and inversely proportional to the square of the distance between them. This is : F = k times q1 times q2 divided by r squared. The constant k is about 9 times 10 to the 9 newton meters squared per coulomb squared.
Compare that with gravity’s G, about 6.67 times 10 to the minus 11. The electric force is enormously stronger. Two charges of one coulomb each, one meter apart, would push with about 9 billion newtons. Yet you do not feel electric forces from your desk, because ordinary objects have almost exactly equal amounts of positive and negative charge, and the effects cancel. Gravity, weak as it is, only attracts, so it adds up over a whole planet. Electricity is what holds atoms and molecules together; gravity is what holds the solar system together.
The two laws have the same shape, and that is not an accident of history. Both are inverse-square laws, and both describe forces that act across empty space without any touching. In the crash test, every force you can see, the belt on the chest, the bag on the face, the steel folding, is at bottom electric. The atoms in the belt are pushing on the atoms in the dummy through the electric force between their electrons. Contact forces are electric forces in disguise.
Words to know
electric charge
a property of matter that causes electric forces; positive or negative
coulomb
the unit of electric charge
Coulomb's law
the rule that electric force grows with the charges and shrinks with the square of the distance
repel
to push apart
Check yourself
1. Two negatively charged balloons are brought near each other. What happens?
Why: Like charges repel. Two negative balloons push each other away.
2. How is Coulomb's law similar to Newton's law of gravitation?
Why: Both forces fall with the square of the distance and need no contact. But electric force can repel, and it is far stronger.
3. Why don't you feel a strong electric pull from the objects around you?
Why: Electric forces are strong but cancel out in neutral matter. Gravity only attracts, so it never cancels.
44.12
Fields, Orbits and Satellites
Main ideaA field describes the force an object would feel at each point in space; an orbit is a fall that keeps missing the ground.
How does the Sun pull on Earth across 150 million kilometers of empty space? Physicists answer with the idea of a . A gravitational field fills the space around any mass, and it tells you what force a kilogram placed at any point would feel. Near Earth’s surface the field is about 9.8 newtons per kilogram, pointing down. An electric field does the same for charge, and magnets are surrounded by a magnetic field. The field is not just a picture; it stores energy and can carry waves, as the next chapter shows.
Newton explained orbits with a thought experiment. Fire a cannonball horizontally from a tall mountain, and it curves down and hits the ground. Fire it faster and it goes farther before landing. Fire it fast enough and the ground curves away beneath it as fast as it falls, so it never lands. It is in . An orbit is not the absence of gravity; it is gravity doing exactly what it always does, bending a straight path into a circle or an ellipse. Take gravity away and the satellite would fly off in a straight line.
Near Earth’s surface that speed is about 7.9 kilometers per second. The International Space Station, about 400 kilometers up, moves at roughly 7.7 kilometers per second and circles Earth about every 90 minutes. Higher orbits are slower, because gravity is weaker there. At about 36,000 kilometers up, a satellite takes exactly one day to circle Earth and so hangs over the same spot; many weather and television satellites sit there. The Moon, at about 384,000 kilometers, takes about 27 days.
The first artificial satellite, Sputnik 1, was launched by the Soviet Union on October 4, 1957, and circled Earth every 96 minutes, beeping to anyone with a radio. Today thousands of satellites carry phone calls, weather images, television and the GPS signals that locate a bus in Chicago to within a few meters. Every one of them follows the same law Newton wrote down for the apple and the Moon. Engineers who plan a launch are, in the end, solving F = G m1 m2 divided by r squared.
Words to know
field
a description of the force an object would feel at every point in space around a mass, charge or magnet
orbit
the curved path of an object that keeps falling around a larger body
satellite
any object that orbits a planet, natural like the Moon or built by people
ellipse
a stretched circle; the shape of most orbits
Check yourself
1. According to Newton's cannonball idea, what would happen to an orbiting satellite if gravity suddenly vanished?
Why: Gravity is what bends the path into a circle. Without it, inertia would carry the satellite straight ahead.
2. What does a gravitational field tell you?
Why: A field maps the force per kilogram at every point, so you can predict the pull anywhere without touching.
3. Why does a satellite in a higher orbit move more slowly than one in a lower orbit?
Why: By the inverse-square law the pull is weaker at greater distance, so a slower speed balances it.
Chapter review
Motion, Forces and Momentum
0 / 8
1. A runner's position-time graph is a straight line sloping upward. What is she doing?
Why: On a position-time graph a straight line means constant slope, which means constant velocity.
2. A ball is thrown straight up. At the very top of its path, its velocity is zero. What is its acceleration?
Why: Gravity acts the whole time. The ball's velocity is passing through zero, but it is still changing at 9.8 meters per second squared.
3. A 4 kilogram cart accelerates at 3 meters per second squared. What net force is acting on it?
Why: By Newton's second law, F = ma = 4 times 3 = 12 newtons.
4. You push on a heavy wall and it does not move. Which is true?
Why: Third-law pairs are always equal and opposite, whether or not anything moves.
5. Two ice skaters at rest push off each other. The 50 kilogram skater moves at 2 meters per second. How fast does the 100 kilogram skater move?
Why: Total momentum was zero, so 50 times 2 must equal 100 times the other speed, giving 1 meter per second in the opposite direction.
6. Which change would most reduce the force on a passenger during a crash from a given speed?
Why: Impulse equals force times time. For a fixed change in momentum, more stopping time means less force.
7. The gravitational force between two objects is 100 newtons. If one mass is doubled and the distance is doubled, the force becomes
Why: Doubling a mass doubles the force; doubling the distance cuts it to one quarter. Together that gives half: 50 newtons.
8. What is the best description of why the Moon stays in orbit?
Why: The Moon is always falling toward Earth, but its sideways motion means it keeps missing. Gravity turns the path into an orbit.
Send it to your teacher
45
Chapter
Energy, Fields and Waves
Physics
Big questionIf energy can never be created or destroyed, why do we worry about running out of it, and how does it travel from a distant star to your eye?
The story
A Magnet, a Coil and a Twitching Needle
In a London basement in 1831, a bookbinder's apprentice turned motion into electricity, and the modern world switched on.
Michael Faraday had almost no schooling. As a boy in London he worked for a bookbinder and read the science books that came in for binding. He talked his way into a job washing glassware for a famous chemist and, over twenty years, became one of the finest experimenters alive. By 1831 he was chasing a hunch. Ten years earlier, a Danish scientist had shown that an electric current makes a compass needle swing. If electricity could make magnetism, Faraday reasoned, magnetism should be able to make electricity.
For years it did not work. He set magnets beside wires and coils and watched his meter for a current. Nothing. Then, on August 29, 1831, he wrapped two separate coils of wire around opposite sides of an iron ring. One coil he connected to a battery; the other to a meter with a needle. At the instant he connected the battery, the needle jumped, then settled back to zero. When he disconnected it, the needle jumped the other way. Nothing happened while the current flowed steadily. Something happened only when it changed.
That was the clue. A steady magnet does nothing to a wire beside it. A moving magnet, or a magnetic field that grows or shrinks, pushes electrons along the wire. Within weeks Faraday was pushing a bar magnet in and out of a coil and watching the needle swing with every stroke. By October he had built a copper disk that spun between the poles of a magnet and produced a steady current. It was the first generator. He had turned motion into electricity.
Every power plant on Earth today, whether it burns coal, splits atoms, catches wind or drops water through a dam, ends the same way: something spins a magnet near a coil, or a coil near a magnet. Faraday's twitching needle is the reason your phone charges and the lights on the Chicago skyline come on at dusk. This chapter follows energy from a moving object, through heat and fields, into the waves that carry it, and carry information, across a room or across the universe.
Talk about itFaraday's needle moved only when the current was switched on or off, not while it flowed. What does that tell you about what causes a current in the second coil?
Section 1
Forms of Energy
45.1
Energy of Motion
Main ideaKinetic energy is one half the mass times the speed squared, so doubling speed gives four times the energy.
A car at 30 kilometers per hour dents a bumper. The same car at 60 kilometers per hour can destroy the front end. Speed doubled, but the damage grew far more than double. The reason is , the energy an object has because it is moving. Its formula is one half times mass times speed squared. Because speed is squared, doubling the speed multiplies the kinetic energy by four. Tripling it multiplies the energy by nine.
Energy is measured in , written J. One joule is the energy needed to push with a force of one newton through one meter. It is a small amount, about what it takes to lift an apple one meter. A 1,000 kilogram car at 10 meters per second has one half times 1,000 times 100, or 50,000 joules of kinetic energy. At 20 meters per second it has 200,000 joules. A crumple zone must absorb all of that, which is why crashes at highway speed are so much worse than crashes in a parking lot.
Energy and momentum are different things, though both grow with mass and speed. Momentum is mass times velocity and has a direction. Kinetic energy is a plain number with no direction; a car moving east and a car moving west can have the same kinetic energy. And because energy depends on speed squared, a fast light object can carry more energy than a slow heavy one. A 0.05 kilogram bullet at 400 meters per second has 4,000 joules, more than a 100 kilogram football player at 8 meters per second, who has 3,200 joules.
When work is done on an object, its kinetic energy changes. is force times the distance moved in the direction of the force, and it is also measured in joules. Push a cart with 20 newtons for 5 meters and you have done 100 joules of work, and the cart’s kinetic energy rises by 100 joules if friction is ignored. Brakes work the other way: friction pushes backward over the stopping distance and takes the kinetic energy away, mostly as heat in the brake pads.
Words to know
kinetic energy
the energy an object has because it is moving; one half mass times speed squared
joule
the unit of energy and work; one newton pushing through one meter
work
force times the distance moved in the direction of the force
Check yourself
1. A cyclist doubles her speed. Her kinetic energy becomes
Why: Kinetic energy depends on speed squared, so doubling speed multiplies energy by four.
2. What is the kinetic energy of a 2 kilogram ball moving at 3 meters per second?
Why: One half times 2 times 3 squared is one half times 2 times 9, which is 9 joules.
3. How is kinetic energy different from momentum?
Why: Momentum is mass times velocity and points in a direction. Kinetic energy is a plain number that depends on speed squared.
45.2
Stored Energy
Main ideaPotential energy is energy stored by position or arrangement, such as height in a gravitational field or a stretched spring.
A roller coaster car at the top of the first hill is barely moving, yet it is about to reach its fastest speed of the ride. The energy is there, stored in the car’s height. This is . Near Earth’s surface it equals mass times g times height, or mgh. Lift a 2 kilogram book 1.5 meters onto a shelf and you have stored 2 times 9.8 times 1.5, about 29 joules. Let it fall and that stored energy turns into kinetic energy on the way down.
Potential energy is really energy stored in a field. Lift the book and you are pulling it against Earth’s gravitational field; the energy lives in the arrangement of book and Earth. The same idea works for electric fields. Pull two opposite charges apart and you store electric potential energy that returns as they snap back. A battery stores energy in the arrangement of its chemicals, which is electric potential energy at the scale of atoms. A stretched spring or a drawn bow stores in the stretched bonds between atoms.
Height is measured from wherever you choose. A book on a shelf has potential energy relative to the floor, more relative to the basement, and none relative to the shelf itself. Only changes in potential energy matter. As the roller coaster drops from a 60 meter hill, it loses about 60 times 9.8, or 588 joules for every kilogram, and if friction is small, gains that much kinetic energy. Setting one half v squared equal to 588 gives a speed of about 34 meters per second at the bottom, regardless of the car’s mass.
Hydroelectric dams are potential energy on an industrial scale. Water behind a dam sits high; as it drops through pipes it spins turbines that turn Faraday’s generators. Pumped storage plants run this backward, pumping water uphill at night when electricity is cheap and letting it fall during the day when demand is high. A lake behind a dam is a battery, storing energy as height rather than chemistry.
Words to know
gravitational potential energy
energy stored by an object's height in a gravitational field; mass times g times height
elastic potential energy
energy stored in a stretched or squeezed object such as a spring
turbine
a set of blades spun by moving water, steam or air
reference height
the level you choose to count as zero height
Check yourself
1. A 3 kilogram rock is lifted 2 meters. About how much gravitational potential energy does it gain?
Why: Potential energy is mgh: 3 times 9.8 times 2 is about 58.8 joules.
2. Where is the energy of a stretched rubber band stored?
Why: Stretching pulls atoms apart against their bonds, storing elastic potential energy that returns when it snaps back.
3. Two roller coaster cars, one twice as heavy as the other, drop from the same hill with little friction. Compare their speeds at the bottom.
Why: Mass cancels: mgh becomes one half m v squared, so v depends only on height, just as in free fall.
45.3
Heat and Temperature
Main ideaThermal energy is the total kinetic energy of an object's moving particles, while temperature measures how fast they move on average.
Where does the kinetic energy go when brakes stop a car? Into the brake pads and discs, which get hot enough to glow on a race track. The energy did not vanish. It became , the kinetic energy of trillions of atoms jiggling faster. Every object is made of particles in constant motion. In a solid they vibrate in place; in a gas they fly around and collide. Thermal energy is the total of all that microscopic motion.
is different. It measures the average kinetic energy of the particles, not the total. A bathtub of warm water has far more thermal energy than a cup of boiling water, because it has so many more particles, but the cup has the higher temperature. Scientists measure temperature in Celsius or in . The kelvin scale starts at absolute zero, minus 273.15 degrees Celsius, the temperature at which particles have the least possible motion. Water freezes at 273 kelvin and boils at 373.
Different materials need different amounts of energy to warm up. The energy needed to raise one gram of a substance by one degree Celsius is its . Water’s is high, about 4.18 joules per gram per degree; iron’s is about 0.45. That is why a cast-iron pan heats fast on the stove while the water in it takes minutes, and why Lake Michigan stays cool into June and warm into October, softening Chicago’s weather near the shore compared with towns farther inland.
Heat, in the strict sense, is thermal energy in transit from a warmer object to a cooler one. It moves three ways. Conduction passes energy through direct contact, as when a spoon in soup warms at the handle. Convection carries energy in a moving fluid, as warm air rises from a radiator. Radiation carries it as electromagnetic waves, which is how the Sun warms your face across empty space. Understanding all three is the difference between a house that is cheap to heat and one that is not.
Words to know
thermal energy
the total kinetic energy of all the particles in an object
temperature
a measure of the average kinetic energy of an object's particles
kelvin
a temperature scale that starts at absolute zero; 0 °C is 273 K
specific heat
the energy needed to raise one gram of a substance by one degree Celsius
Check yourself
1. A swimming pool at 25 °C and a cup of tea at 80 °C. Which has more thermal energy?
Why: Thermal energy is the total motion of all particles. The pool's huge mass gives it more, even at a lower temperature.
2. What is absolute zero?
Why: Absolute zero, 0 kelvin or minus 273.15 °C, is the lowest possible temperature.
3. Which is an example of heat moving by conduction?
Why: Conduction is transfer through direct contact between particles, as in the metal of the spoon.
Section 2
Conservation and Heat
45.4
Energy Is Conserved
Main ideaEnergy changes form and moves between objects, but the total energy of a closed system never changes.
In the 1840s an English brewer’s son named James Joule spent years on a stubborn experiment. He let falling weights spin a paddle wheel inside a tub of water and measured the water’s temperature with a thermometer he could read to a fraction of a degree. The water warmed. A known amount of mechanical work had become a known amount of heat, every time in the same ratio. Joule had shown that heat is not a mysterious fluid but a form of energy, and that energy can change form without being lost.
This is the law of : the total energy of a closed stays the same. Energy can move from one object to another and change from one form to another, but it is never created or destroyed. A system is simply whatever you draw a boundary around: a roller coaster car, a car plus the road, a whole power plant. Choose the boundary and then keep track of every joule that crosses it. If more goes in than out, the energy inside has grown.
The law is a bookkeeping tool. A roller coaster at the top of a 50 meter hill has potential energy. At the bottom, if the track were frictionless, it would all be kinetic. In reality the car reaches the bottom a little slower than that. The missing joules are not gone; they have gone into warming the wheels, the track and the air, and into sound. Add up the kinetic energy, the thermal energy and the sound, and the total matches the starting potential energy.
Conservation is one of the most tested ideas in science. Whenever energy has seemed to vanish, careful measurement has found where it went. In the 1930s, physicists noticed that a certain kind of radioactive decay seemed to lose energy. Rather than give up the law, Wolfgang Pauli proposed an unseen particle carrying it away. The neutrino was detected in 1956. The law held. The mathematician Emmy Noether showed in 1918 that conservation of energy follows from a deep fact: the laws of physics are the same today as they were yesterday.
Words to know
conservation of energy
the law that the total energy of a closed system stays the same
system
the set of objects you choose to keep track of, with a boundary around it
transformation
a change of energy from one form to another
Check yourself
1. A pendulum swings lower and lower and finally stops. Where did its energy go?
Why: Energy is conserved. Friction and air resistance transfer the pendulum's energy to heat and sound, not out of existence.
2. What did Joule's paddle-wheel experiment show?
Why: The work of the falling weights always warmed the water by the same amount, showing heat is a form of energy.
3. Why did Pauli propose the neutrino in the 1930s?
Why: Rather than abandon conservation of energy, Pauli proposed an unseen particle carrying the missing energy. It was found in 1956.
45.5
Why Heat Flows One Way
Main ideaHeat flows from hot to cold on its own and never the reverse, and every energy conversion spreads some energy out as waste heat.
Set a hot cup of coffee on a desk and it cools. It never happens the other way: a room-temperature cup never draws heat from the desk and starts steaming. Energy would still be conserved if it did, so the first law does not forbid it. Something else does. The says that heat flows on its own only from warmer to cooler, and that in any real process, energy tends to spread out and become less useful.
The reason is probability. Fast-moving particles in the coffee collide with slower ones in the air and share their motion. There are enormously more ways for the energy to be spread evenly than to stay bunched up in the cup, so spreading out is overwhelmingly likely. Physicists measure this spreading with a quantity called . Entropy in an isolated system never decreases. You can move heat from cold to hot, as a refrigerator does, but only by spending energy, which spreads out even more heat elsewhere.
This is why no engine can turn heat completely into work. A car engine burns gasoline to make hot gas that pushes pistons, but most of the fuel’s energy leaves as hot exhaust and hot metal. Typical gasoline engines turn only about a quarter to a third of the fuel’s energy into motion. Power plants that boil water to spin turbines waste heat through their cooling towers. The waste is not carelessness. The second law sets a limit that no design can beat, though better designs get closer.
The second law also explains why energy can be conserved and still run short. When you use a battery, its chemical energy becomes light, sound and heat that spread into the room. Every joule is still there, but scattered among trillions of air molecules and useless for charging your phone. What we actually run out of is not energy but useful energy, energy concentrated enough to do work. The Sun, the wind, fuel and a charged battery are useful because they are concentrated. The warm air in a room is not.
Words to know
second law of thermodynamics
the rule that heat flows from hot to cold on its own and energy tends to spread out
entropy
a measure of how spread out energy is; it never decreases in an isolated system
efficiency
the fraction of energy put in that comes out in the useful form you wanted
waste heat
energy that leaves a process as heat instead of doing the intended job
Check yourself
1. Why does a hot drink cool down but a cool drink never heat up on its own?
Why: There are vastly more ways for energy to be spread out than concentrated, so heat flows from hot to cold.
2. A car engine takes in 100 joules of chemical energy and delivers 30 joules of motion. What happened to the rest?
Why: Energy is conserved, so the other 70 joules went somewhere: mostly heat, as the second law requires.
3. What do we actually run short of when we say we are running out of energy?
Why: Total energy never changes. What gets used up is useful, concentrated energy, which spreads into low-grade heat.
45.6
Where Our Energy Comes From
Main ideaEvery energy resource is a way of capturing concentrated energy, and each carries its own costs, limits and trade-offs.
Trace the electricity in your outlet backward and you reach Faraday’s generator, but what spins it? In the United States, most electricity comes from burning natural gas or coal to boil water into steam. About a fifth comes from nuclear plants, where splitting uranium atoms makes the heat instead. The rest comes from wind turbines, dams, solar panels and a few smaller sources. Illinois is unusual: its nuclear plants produce about half the state’s electricity, more nuclear power than any other state.
Each source is a different way of grabbing concentrated energy. Coal, oil and natural gas are , stored sunlight captured by plants and sea life hundreds of millions of years ago. They pack a great deal of energy into a small space and can be burned any time. Burning them releases carbon dioxide, which traps heat in the atmosphere, along with soot and other pollution. Their supply, though large, is finite and is not being replaced on any human timescale.
sources are replaced as fast as they are used. Wind and sunlight are free and clean at the point of use, but the wind does not always blow and the Sun sets, so they need storage or backup. Illinois is a major wind state, with turbines across its flat central prairie. Dams provide steady power but change rivers and flood land. Nuclear plants make no carbon dioxide while running and produce large amounts of power from little fuel, but their waste stays radioactive for thousands of years and accidents, though rare, can be severe.
There is no source without a cost, so choosing means weighing trade-offs: price, reliability, land, water, pollution, safety and climate. The mix has shifted quickly. Since the mid-2000s, coal’s share of U.S. electricity has fallen by more than half as natural gas, wind and solar have grown. Engineers and voters keep making these choices, and they work best when the numbers on all sides are honest.
Words to know
fossil fuels
coal, oil and natural gas, formed from ancient living things and burned for energy
renewable
an energy source that is replaced as fast as it is used, such as wind or sunlight
nuclear power
electricity made by using the heat from splitting atoms to boil water
trade-off
a benefit gained only by accepting a cost or drawback
Check yourself
1. What do coal, natural gas, nuclear and hydroelectric plants all have in common?
Why: Whatever the energy source, the last step is Faraday's discovery: motion of a magnet and coil makes current.
2. Which is a limit of wind and solar power that fossil fuels do not share?
Why: Wind and sunlight are renewable and clean at the point of use, but they are not available on demand without storage.
3. Why is Illinois's electricity unusual among U.S. states?
Why: Illinois generates more nuclear electricity than any other state, and it supplies about half the state's power.
Section 3
Waves and the Spectrum
45.7
What a Wave Is
Main ideaA wave carries energy without carrying matter, and its speed equals its frequency times its wavelength.
Drop a pebble in a still pond and rings spread outward. A leaf floating nearby bobs up and down but does not travel with the rings. That is the key fact about a : it carries energy from place to place while the material it moves through stays put. Sound is a wave in air, ripples are waves on water, and a shake sent down a rope is a wave on the rope. In each case, a disturbance travels; the air, water or rope only moves back and forth.
Three numbers describe any wave. is the distance from one crest to the next, measured in meters. is how many waves pass a point each second, measured in , or cycles per second. is how far the material moves from its rest position; a louder sound or a brighter light has a larger amplitude and carries more energy. A wave with a large amplitude can do more, which is why a big ocean wave knocks you down and a ripple does not.
Speed, frequency and wavelength are tied together by one equation: speed equals frequency times wavelength. In air, sound travels at about 343 meters per second. A note of 343 hertz has a wavelength of exactly one meter. A note of 686 hertz has a wavelength of half a meter. If the speed is fixed by the material, then raising the frequency must shorten the wavelength. Try it on the site’s oscilloscope and watch the crests crowd together as the frequency rises.
Waves also bend, bounce and combine. Sound reflects off a wall as an echo. Light bends as it enters water, which is why a straw in a glass looks broken. Two waves meeting can add up to a bigger wave or cancel to nothing, a behavior called interference. Noise-cancelling headphones make a sound wave that is the exact opposite of the noise, so the two cancel at your ear. Interference is how scientists know something is a wave at all.
Words to know
wave
a traveling disturbance that carries energy without carrying matter along with it
wavelength
the distance from one crest of a wave to the next
frequency
the number of waves passing a point each second, measured in hertz
amplitude
how far the wave moves the material from its rest position
hertz
the unit of frequency; one cycle per second
Check yourself
1. A cork floats on a pond as waves pass. What does the cork do?
Why: Waves carry energy, not matter. The water and the cork move up and down while the disturbance passes through.
2. A sound wave in air has a frequency of 686 hertz. About what is its wavelength?
Why: Wavelength equals speed divided by frequency: 343 divided by 686 is 0.5 meters.
3. If a wave's frequency is doubled but its speed stays the same, its wavelength
Why: Speed equals frequency times wavelength. With speed fixed, doubling the frequency halves the wavelength.
45.8
Light Across the Spectrum
Main ideaVisible light is one small slice of the electromagnetic spectrum, waves of electric and magnetic fields that all travel at the speed of light in space.
Faraday’s fields turned out to be able to wave. In the 1860s the Scottish physicist James Clerk Maxwell wrote equations linking electricity and magnetism and found that a changing electric field makes a changing magnetic field, which makes a changing electric field, and so on, rippling outward through empty space. He calculated the ripple’s speed and got about 300,000 kilometers per second, the measured speed of light. Light, he concluded, is an . In 1887 Heinrich Hertz made and detected such waves in his lab, the first radio waves.
All electromagnetic waves travel at the same speed in a vacuum, about 3 times 10 to the 8 meters per second, so they differ only in frequency and wavelength. Lined up from longest to shortest wavelength they form the : radio waves, microwaves, infrared, visible light, ultraviolet, X-rays and gamma rays. Visible light runs from about 700 nanometers for red to about 400 nanometers for violet, where a nanometer is a billionth of a meter. Your eye sees only that narrow band; everything else is invisible but just as real.
Each band has its uses. Radio waves carry broadcasts and phone signals because they pass through walls and travel far. Microwaves heat food by shaking water molecules and carry Wi-Fi. Infrared is felt as warmth and used in remote controls and night-vision cameras. Ultraviolet from the Sun tans and burns skin. X-rays pass through flesh but not bone, so a doctor can see a break. Gamma rays, the shortest and most energetic, come from nuclear reactions and are used to kill cancer cells.
Astronomy changed when telescopes learned to see beyond visible light. Radio telescopes map cold gas between stars, infrared telescopes see through dust to newborn stars, and X-ray telescopes find matter falling into black holes. The site’s telescope catches visible light, the same band Galileo used, but modern observatories cover the whole spectrum. Each band tells a different part of the story, because different temperatures and processes make different kinds of light.
Words to know
electromagnetic wave
a wave of changing electric and magnetic fields that can travel through empty space
electromagnetic spectrum
the full range of electromagnetic waves, from radio to gamma rays
nanometer
one billionth of a meter, used to measure the wavelength of light
vacuum
empty space with no matter in it
Check yourself
1. What do radio waves, visible light and X-rays have in common?
Why: All are ripples in electric and magnetic fields that move at the speed of light. They differ only in wavelength and frequency.
2. Which of these has the shortest wavelength?
Why: The spectrum runs from long radio waves to short gamma rays. Gamma rays are the shortest and most energetic.
3. Why can an X-ray image show a broken bone?
Why: Bone absorbs X-rays more than flesh does, so bone casts a shadow on the detector.
45.9
Light in Packets
Main ideaLight also behaves as a stream of particles called photons, each carrying an energy set by its frequency.
Shine light on a clean metal surface and electrons can pop out. That should not have been surprising, since light carries energy. What puzzled physicists around 1900 was the pattern. Dim blue light kicked out electrons instantly, but bright red light, carrying far more total energy, kicked out none at all. If light were only a wave, a bright enough wave of any color should eventually shake electrons loose. It did not. Color, meaning frequency, mattered more than brightness.
In 1905 Albert Einstein proposed the answer. Light arrives in packets, later called , and each photon’s energy depends only on its frequency: energy equals a constant, h, times frequency. The constant is Planck’s constant, about 6.63 times 10 to the minus 34 joule-seconds, first introduced by Max Planck in 1900. A red photon has too little energy to free an electron from the metal, no matter how many red photons arrive. A single blue photon has enough. Brightness only changes how many photons arrive, and so how many electrons leave.
This is why the spectrum’s order matters for safety. Radio and visible photons carry too little energy to break the chemical bonds in your cells. Ultraviolet photons carry enough to damage DNA, which is why sunburn and skin cancer come from ultraviolet and not from the far brighter visible light. X-rays and gamma rays carry still more, which makes them useful for imaging and cancer treatment and dangerous in large doses. The energy of one photon, not the total brightness, decides what light can do to a molecule.
So is light a wave or a particle? The honest answer is that it is both, in a way nothing in everyday life prepares you for. Interference experiments show waves; the photoelectric effect shows particles. Each photon travels as a wave and arrives as a particle. This puzzle opened the door to quantum physics, and it is the reason a solar panel works: each photon of sunlight that has enough energy frees one electron in the silicon, and the flow of freed electrons is a current.
Words to know
photon
a packet of light energy; the particle form of electromagnetic waves
photoelectric effect
the release of electrons from a metal surface when light shines on it
Planck's constant
the number that links a photon's energy to its frequency
Check yourself
1. What determines the energy of a single photon?
Why: Photon energy equals Planck's constant times frequency. Brightness changes only how many photons arrive.
2. Why does ultraviolet light cause sunburn while brighter visible light does not?
Why: Damage depends on the energy per photon. Ultraviolet photons carry enough to break bonds in DNA; visible photons do not.
3. Which observation showed that light behaves as particles?
Why: Only the photon picture explains why frequency, not brightness, decides whether electrons are released.
Section 4
Waves at Work
45.10
Electricity from Motion
Main ideaA changing magnetic field pushes current through a wire, which is how every generator turns motion into electricity.
Faraday’s twitching needle became the law of : a changing magnetic field through a loop of wire creates a voltage that drives a current. Move a magnet into a coil and current flows one way; pull it out and current flows the other way; hold it still and nothing happens. Faster motion, a stronger magnet or more turns of wire all give a bigger push. The reverse works too. Current in a coil makes a magnetic field, which is how an electromagnet, a doorbell and an electric motor work.
A is a coil spun inside a magnetic field, or a magnet spun inside a coil. As it turns, the field through the coil grows, shrinks and reverses, so the current flows back and forth. This is alternating current, the kind in wall outlets, which in the United States reverses 60 times per second. A bicycle dynamo, a wind turbine and the generators at a nuclear plant are the same machine at different sizes. What differs is only what does the spinning.
Induction also makes the grid possible. A is two coils on an iron ring, Faraday’s original 1831 setup. Alternating current in one coil makes a changing field that induces current in the other. With more turns on the second coil, the voltage rises; with fewer, it drops. Power lines carry electricity at hundreds of thousands of volts, because high voltage means low current and less energy lost as heat in the wires. Transformers step it down to 120 volts before it reaches your outlet.
Induction is everywhere once you know to look. An induction cooktop uses a changing field to induce currents directly in the steel of a pan, heating it while the glass surface stays cool. A wireless phone charger is a small transformer with an air gap. The card reader at a store’s checkout and the magnetic strip on a transit card both rely on it. Faraday was once asked what use his discovery was. The answer turned out to be almost everything.
Words to know
electromagnetic induction
the creation of a current in a wire by a changing magnetic field
generator
a machine that spins a coil and magnet past each other to make electricity
transformer
two coils on an iron core that raise or lower an alternating voltage
alternating current
current that reverses direction many times each second
Check yourself
1. A magnet sits motionless inside a coil connected to a meter. What does the meter show?
Why: Induction needs a changing magnetic field. A still magnet makes a constant field and no current.
2. What do a wind turbine and a nuclear power plant have in common?
Why: Different energy sources do the spinning, but the last step, a coil and magnet turning past each other, is the same.
3. Why do power lines carry electricity at very high voltage?
Why: Heat loss in a wire grows with current. Raising the voltage lowers the current for the same power.
45.11
Waves That Carry Information
Main ideaAny wave can carry a message if you vary it in a pattern, and digital signals of ones and zeros travel farther and cleaner than analog ones.
On May 24, 1844, Samuel Morse sat in the United States Capitol and tapped a key. Forty miles away in Baltimore, an electromagnet clicked in the same pattern, spelling out the first official telegraph message in dots and dashes. It was the first time information had traveled faster than a person could carry it. The idea was simple: switch a current on and off in a code. Every message since, whether a phone call, a photo or a video stream, is the same idea with a faster switch.
Any wave can carry information if you change it in a pattern the receiver can read. An AM radio station varies the amplitude of its wave; FM varies the frequency. Your voice on a phone is turned into a pattern of electrical signals and back. A signal that copies the shape of the original sound, rising and falling smoothly, is called . Analog signals are easy to make, but every bit of static or fading along the way gets added to the message, and each copy is a little worse than the last.
Modern signals are . The sound or image is measured thousands of times per second and each measurement is written as a number in ones and zeros, the . A compact disc, for example, samples sound 44,100 times per second. The receiver only has to tell a one from a zero, so small static does not change the message, and a copy is perfect. Errors can be found and fixed with extra check bits. That is why a photo can cross the world through dozens of machines and arrive unchanged.
The bits ride on whatever wave is handy. Cell phones use microwaves. Wi-Fi uses microwaves at about 2.4 and 5 gigahertz. Most long-distance internet traffic travels as pulses of infrared light inside glass fibers thinner than a hair, bouncing along the inside of the glass for many kilometers before it needs a boost. Spacecraft send digital pictures home by radio from billions of kilometers away, so faint that the signal is weaker than a watch battery by the time it reaches Earth, and the bits still come through.
Words to know
analog
a signal that copies the smooth shape of the original sound or image
digital
a signal made of numbers written as ones and zeros
bit
one binary digit, a one or a zero; the smallest unit of digital information
optical fiber
a thin strand of glass that carries light pulses over long distances
Check yourself
1. What is the main advantage of a digital signal over an analog one?
Why: The receiver only needs to tell ones from zeros, so noise below that level is ignored and errors can be corrected.
2. How does an AM radio station put a voice onto its wave?
Why: AM stands for amplitude modulation: the strength of the carrier wave rises and falls with the sound.
3. Most long-distance internet traffic travels as
Why: Optical fibers carry digital light pulses for many kilometers with very little loss.
Chapter review
Energy, Fields and Waves
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1. A car's speed triples. Its kinetic energy becomes
Why: Kinetic energy depends on speed squared, so tripling speed multiplies energy by nine.
2. A 2 kilogram ball is dropped from 5 meters. About how much kinetic energy does it have just before it lands, ignoring air?
Why: Potential energy mgh is 2 times 9.8 times 5, about 98 joules, and it all becomes kinetic energy.
3. Which statement about temperature and thermal energy is correct?
Why: A large cool object can hold more thermal energy than a small hot one because it has more particles.
4. Why can no engine turn all of its fuel's energy into motion?
Why: Energy is conserved, but the second law says every real process spreads some energy into less useful heat.
5. A wave on a rope has a speed of 12 meters per second and a wavelength of 3 meters. What is its frequency?
Why: Frequency equals speed divided by wavelength: 12 divided by 3 is 4 hertz.
6. Which lists electromagnetic waves from longest to shortest wavelength?
Why: Radio waves are the longest, and wavelength shrinks through infrared, visible and ultraviolet to X-rays and gamma rays.
7. What did Faraday find was needed to make a current in a coil of wire?
Why: Induction happens only while the magnetic field through the coil is changing, which is why his needle jumped only at switch-on and switch-off.
8. A photo sent across the internet arrives identical to the original. Which feature of digital signals explains this?
Why: Noise smaller than the gap between a one and a zero is ignored, and check bits catch the rest.
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★
Unit wrap-up
Physical Science: Forces, Energy and Waves
Twelve words, twelve meanings
0 / 12
Tap a word, then tap its meaning. A right pair locks in green.
Words
Meanings
Unit test
Fifteen questions across the unit
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1. A car goes from 0 to 20 meters per second in 5 seconds. What is its average acceleration?
Why: Acceleration is change in velocity divided by time: 20 divided by 5 is 4 meters per second squared.
2. On a velocity-time graph, what does the area under the line represent?
Why: Velocity times time is distance, so the area between the line and the time axis is the distance covered.
3. A book rests on a table. Which pair of forces is a Newton's third-law pair?
Why: Third-law pairs act on two different objects. Gravity and the table's push both act on the book, so they are balanced forces, not a pair.
4. A 1,500 kilogram car needs an acceleration of 2 meters per second squared. What net force is required?
Why: F = ma = 1,500 times 2 = 3,000 newtons.
5. A 2 kilogram cart at 6 meters per second hits a 4 kilogram cart at rest and they stick together. Their speed afterward is
Why: Momentum before is 12 kilogram-meters per second; after, 6 kilograms share it, giving 2 meters per second.
6. Why do airbags, seat belts and crumple zones all make crashes safer?
Why: The change in momentum is fixed. Impulse equals force times time, so more time means less force.
7. If the distance between two charged objects is tripled, the electric force between them becomes
Why: Coulomb's law is an inverse-square law: tripling the distance divides the force by 9.
8. What keeps a satellite in orbit rather than flying off into space?
Why: A satellite is always falling toward Earth, but its sideways speed makes it keep missing. Gravity is doing the bending.
9. A 0.5 kilogram ball moves at 4 meters per second. Its kinetic energy is
Why: One half times 0.5 times 4 squared is 0.25 times 16, which is 4 joules.
10. A roller coaster drops from a hill and reaches the bottom slightly slower than energy conservation with no friction would predict. Where is the missing energy?
Why: Energy is conserved. Friction and air resistance transfer some of it to thermal energy and sound, which spread out.
11. Which statement follows from the second law of thermodynamics?
Why: The second law says energy spreads out. Heat moving from cold to hot requires work, as in a refrigerator.
12. A sound wave travels at 343 meters per second with a wavelength of 0.5 meters. Its frequency is
Why: Frequency equals speed divided by wavelength: 343 divided by 0.5 is 686 hertz.
13. Which type of electromagnetic wave has the most energy per photon?
Why: Photon energy rises with frequency. Gamma rays have the highest frequency and shortest wavelength.
14. Which of these would NOT produce a current in a coil of wire?
Why: Induction requires a changing magnetic field. A motionless magnet makes a steady field and no current.
15. Why does a digital copy of a song sound the same after being copied many times, while an analog tape copy gets worse?
Why: Noise below the gap between a one and a zero does not change the bits, and check bits fix errors.
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Spiral review
Five questions from earlier units
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1. (Unit 19) Which property is explained by the sea-of-electrons model of metals?
Why: Free-moving electrons carry current; the same model explains bending and shine.
2. (Unit 18) Which is the correct order of secondary succession on an abandoned Illinois field?
Why: Secondary succession begins with fast-growing pioneers on existing soil and moves toward longer-lived woody plants.
3. (Unit 17) A trait appears in a child but in neither parent. The trait is most likely:
Why: Two carriers of a recessive allele can each pass it on, giving a child two copies.
4. (Unit 16) What is a stem cell?
Why: Stem cells have not finished differentiating. They renew themselves and produce specialized descendants.
5. (Unit 19) What was the role of graphite in Chicago Pile-1?
Why: Graphite was the moderator; cadmium rods were the absorbers and uranium was the fuel.
Send it to your teacher
Write it
Some people argue that a rigid, heavily built car is safer than one with crumple zones. Make a claim about which design better protects passengers, using evidence from the crash-test story, Newton's second law and the idea of impulse.
State your claim in one clear sentence: which design is safer and for whom.
Use evidence with numbers: compare stopping times, and show how force changes when time changes for the same change in momentum.
Explain your reasoning with F = ma and impulse, connecting the physics to what the dummy's sensors measure.
Address the other side: a rigid car does protect its own body from damage; explain why that is not the same as protecting the people inside.
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Practice rooms
Rooms already on the site that belong to this unit — cards, quizzes, a lab.
Every lesson keeps its own three checks; a lesson is ticked when all three are right. Chapter reviews, the unit test and its spiral review (five questions from earlier units in this band) score on the page. When the site is connected to your sheet, or the link carries ?dest=, each one also has a Send box: the first-try score, the standards, the supports used, the attempt number and the minutes go to your sheet as an IEP data point.
Print this page for a paper copy of the readings, the sources, the words and the questions; the answers print as dashed boxes under each question.
Fact-check notes for this course live in the handoff: quotes marked (paraphrased) were set that way on purpose.