Physics · Professor Newton

Every card in Energy

The whole deck, in order — so you can read it through before your child ever sees it.

1 KS3-PHYS-ENE-0001

The energy store a moving football has

The kinetic store

HintIt fills as something speeds up and empties again as it slows down.

WhyAnything moving has this store, and it grows sharply with speed — doubling how fast a car travels quadruples it, which is why speed limits matter so much.

2 KS3-PHYS-ENE-0002

When a torch is switched on, energy leaves the ____ store in the battery, travels along an ____ pathway, and ends up as ____ and warmth.

Chemical, then electrical, ending as light (and warmth)

HintFollow the energy: what runs down, what carries it, what comes out.

WhyThe torch makes no energy of its own — it moves it. The store inside the cell is run down, a pathway carries what it held to the bulb, and the room gets the rest.

3 KS3-PHYS-ENE-0003

A spark is at a far higher temperature than a warm bath. Which of the two holds more energy?

The bath

HintOne is a speck and the other is enormous — quantity counts as well as how hot.

WhyTemperature tells you how much energy each particle has; the total also depends on how many particles there are. A sparkler is fiercely hot but has almost no mass, so it barely warms your skin.

4 KS3-PHYS-ENE-0004

A wind farm has 20 turbines, each rated at 2 MW. Across a year they average 30% of that rating. What is the farm's mean power output?

12 MW

HintWork out the best the whole farm could ever do, then take the fraction it really manages.

WhyRated power is what a turbine gives in a strong steady wind; the capacity factor says what it manages across a real year. 20 × 2 MW = 40 MW at full output, and 30% of 40 MW is 12 MW. That gap is why a wind farm's headline figure is far larger than the electricity it actually supplies, and why renewables are paired with storage or gas.

5 KS3-PHYS-ENE-0005

What is the name of the process that carries energy along a metal spoon in hot soup?

Conduction

HintParticles jiggle harder and nudge their neighbours along.

WhyIn a solid the particles cannot travel anywhere, so they pass energy on by vibrating against each other. Metals do it fastest because their free electrons carry energy through as well.

6 KS3-PHYS-ENE-0006

Why does the air directly above a radiator rise?

It expands and becomes less dense

HintThe same amount of stuff now takes up more room, so it floats upwards.

WhyHeating a gas pushes its particles further apart, so a given volume of it weighs less than the cool air around it. Cooler air sinks to take its place, setting up a convection current that heats the whole room.

7 KS3-PHYS-ENE-0007

A vacuum flask has silvered inner walls, a vacuum gap and a plastic stopper. Which energy transfer is the silvering there to cut down?

Radiation

HintThe empty gap already deals with the two transfers that need particles, so what is left?

WhyThe vacuum removes the particles conduction and convection both rely on, so the only route left is infrared radiation. A shiny silver surface is a poor emitter and a good reflector, so it keeps that infrared inside the flask. The plastic stopper is chosen because plastic conducts far worse than metal, and the same three ideas explain a survival blanket and loft insulation.

8 KS3-PHYS-ENE-0008

What does the wattage printed on a kettle tell you?

How fast it transfers energy

HintTwo kettles can boil the same water, but one gets there sooner.

WhyPower is the energy moved each second, measured in watts. A 3000 W kettle shifts energy three times as quickly as a 1000 W one, so it boils in a third of the time.

9 KS3-PHYS-ENE-0009

The unit of energy an electricity bill charges you for

The kilowatt-hour

HintRun a one-bar heater for sixty minutes and you have bought exactly one.

WhyIt is the energy a 1 kW appliance uses in an hour — about 3.6 million joules. Bills use it because a joule is far too small a unit to count a household in.

10 KS3-PHYS-ENE-0010

A bouncing ball returns lower each time. Where has the missing energy gone?

It has spread out as heat and sound

HintNothing has vanished — feel the ball and listen to each bounce.

WhyThe total is always conserved: what goes in equals what comes out. What changes is how useful it is, because once energy has scattered into the warmth of the floor and the air we cannot gather it back.

11 KS3-PHYS-ENE-0011

On a Sankey diagram, what does the width of an arrow show?

The amount of energy

HintA fat arrow and a thin arrow are not carrying the same quantity.

WhySankey diagrams are drawn to scale, so an old filament bulb shows a narrow useful branch for light and a fat wasted branch for heat. The widths going in must always total the widths coming out.

12 KS3-PHYS-ENE-0012

Work done = force × ____.

distance

HintPush hard against a wall that does not budge and no work is done on it.

WhyWork done is measured in joules, the same unit as energy, because work is simply energy transferred by a force. Push a 20 N crate 3 m and you have transferred 60 J.

Keep what you learn

Here, nothing is saved. In your child’s own sky every card is scheduled — it comes back just before they’d forget it — and the professor who wrote it is one tap away.