Physics · Professor Newton

Every card in Energy, Year 10: energy stores, kinetic and gravitational energy

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

1 GCSE-PHYS-ENE-0001

An object, or a group of objects, picked out so that its energy changes can be followed

A system

HintThe solar ______ and the digestive ______ use the same word for a set of parts treated as one thing.

WhyBefore any energy calculation you decide what is inside your boundary: the kettle and its water, say, or a ball and the Earth. When the chosen set of objects changes, the way its energy is stored changes too. AQA opens the Energy topic with this idea.

2 GCSE-PHYS-ENE-0002

A car brakes to a stop on a level road. Into which energy store does most of the car's kinetic energy go?

The thermal store of the brakes (and then the surroundings)

HintThink about what you would notice if you could touch the discs just after a hard stop.

WhyFriction between the pads and the discs does work on the car, emptying its kinetic store. The same amount of energy raises the temperature of the brakes, which then warm the air around them. A vehicle slowing down is one of the situations AQA expects pupils to describe.

3 GCSE-PHYS-ENE-0003

A ball is thrown straight up. At launch its kinetic store holds 60 J and its gravitational potential store holds 0 J. Part-way up, its gravitational potential store holds 45 J. Ignoring air resistance, how many joules are left in its kinetic store? (number only)

15

HintWith nothing lost to the air, the two stores must always add up to what the ball set off with.

WhyThe system is the ball and the Earth, and no energy leaves it, so the total stays at 60 J. If 45 J has moved into the gravitational potential store, 60 − 45 is left in the kinetic store. Putting both stores on one scale like this is how AQA wants energy changes shown.

4 GCSE-PHYS-ENE-0004

Energy is transferred into or out of a system in three ways that GCSE pupils must be able to calculate: by ____, by work done by ____, and by work done when a current flows.

heating; forces

HintOne is what a flame does to a pan of water; the other is a push or pull moving something along.

WhyEach way has its own equations later in the course: specific heat capacity for a temperature change, force × distance for mechanical work, and the electrical equations for work done in a circuit. Recognising which of the three is happening tells you which equation to reach for.

5 GCSE-PHYS-ENE-0005

A steady force pushes a sledge across level ice and the sledge speeds up. How is energy being transferred into the sledge's kinetic store?

By the force doing work on the sledge

HintA push that moves something along is achieving more than just pressing on it.

WhyWhenever a force moves an object through a distance, work is done and energy is transferred. Here that energy fills the sledge's kinetic store, which is why the sledge gets faster for as long as the push continues. An object accelerated by a constant force is one of AQA's named situations.

6 GCSE-PHYS-ENE-0006

kinetic energy = 0.5 × mass × (____)²

speed

HintOf the two things that decide how hard a moving object hits, this is the one that counts twice over.

WhyIn symbols, Ek = ½ m v², with Ek in joules, m in kilograms and v in metres per second. Only the v is squared, so work out v² first and then multiply by the mass and by a half. AQA expects this equation to be recalled; it is not on the equation sheet.

7 GCSE-PHYS-ENE-0007

A 4 kg trolley moves at 3 m/s. Calculate its kinetic energy in joules. (number only)

18

HintSquare first, then deal with the half and the 4 kg.

WhyEk = ½ × m × v² = 0.5 × 4 × 3² = 0.5 × 4 × 9. Squaring the speed before anything else avoids the most common slip. The equation must be recalled.

8 GCSE-PHYS-ENE-0008

A car doubles its speed. What happens to its kinetic energy?

It becomes four times as large

HintLook at what the equation does to the quantity that has changed.

WhyKinetic energy depends on speed squared, so doubling the speed multiplies the energy by 2², and trebling it would multiply the energy by 9. This is why a small rise in speed makes a crash so much more severe and a braking distance so much longer.

9 GCSE-PHYS-ENE-0009

A 2 kg ball has 100 J of kinetic energy. Calculate its speed.

10 m/s

HintUndo the equation one step at a time; the last step is a root.

WhyRearranging Ek = ½ m v² gives v² = 2 × Ek ÷ m = 2 × 100 ÷ 2 = 100, so v is the square root of 100. Pupils are expected to recall the equation and rearrange it for any of its three quantities.

10 GCSE-PHYS-ENE-0010

A 1000 kg car travels at 20 m/s and a 4000 kg lorry travels at 10 m/s. Which has more kinetic energy, or are they equal?

They are equal — 200 000 J each

HintWork both out before trusting your instinct about the heavier vehicle.

WhyCar: 0.5 × 1000 × 20² = 200 000 J. Lorry: 0.5 × 4000 × 10² = 200 000 J. The lorry has four times the mass, but the car has twice the speed, and because speed is squared that also counts four times.

11 GCSE-PHYS-ENE-0011

The energy an object gains when it is raised above ground level

Gravitational potential energy

HintIt is named after the force you have to work against to lift anything.

WhyLifting an object means doing work against its weight, and that energy is stored because of the object's raised position. Let the object fall and the store empties again as it speeds up. Its short form is g.p.e., or Ep in equations.

12 GCSE-PHYS-ENE-0012

Write, in words, the equation for the gravitational potential energy gained by an object that is lifted.

g.p.e. = mass × gravitational field strength × height

HintThree things multiply together: how much stuff, how hard the planet pulls on each kilogram, and how far up.

WhyIn symbols, Ep = m g h, with Ep in joules, m in kilograms, g in newtons per kilogram and h in metres. AQA expects this equation to be recalled, and says the value of g will always be given in the question.

13 GCSE-PHYS-ENE-0013

A 2 kg book is lifted 1.5 m onto a shelf. Gravitational field strength = 9.8 N/kg. Calculate the gravitational potential energy gained, in joules. (number only)

29.4

HintMultiply all three numbers in the question together.

WhyEp = m × g × h = 2 × 9.8 × 1.5. The value of g is given, as AQA says it always will be. The answer is also the work done in lifting the book.

14 GCSE-PHYS-ENE-0014

A 50 kg climber gains 24 500 J of gravitational potential energy. Gravitational field strength = 9.8 N/kg. How high has she climbed?

50 m

HintRearrange so the unknown stands alone, then divide the energy by the other two multiplied together.

WhyRearranging Ep = m g h gives h = Ep ÷ (m × g) = 24 500 ÷ (50 × 9.8) = 24 500 ÷ 490. Dividing by the mass and the field strength together, rather than one at a time, saves a slip.

15 GCSE-PHYS-ENE-0015

A 0.5 kg ball is dropped from a height of 5 m. Take gravitational field strength as 10 N/kg and ignore air resistance. How fast is it moving just before it lands?

10 m/s

HintAll the energy it had because of its position has become energy of movement by the bottom.

Whyg.p.e. at the top = 0.5 × 10 × 5 = 25 J, and with no air resistance all of it is in the kinetic store at the bottom. Then v² = 2 × 25 ÷ 0.5 = 100, so v is the square root of 100. Following energy from a gravitational store to a kinetic store is an investigation AQA suggests for this section.

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