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  1. KS3
  2. Chemistry
  3. The Earth and its atmosphere
  4. A planet with limits: resources and recycling

The Earth and its atmosphere · System

A planet with limits: resources and recycling

Everything manufactured on Earth came out of the crust, and the crust is not being topped up. Recycling sends some of it round again — but only some, and how much depends on the material, not on how carefully you sort it.

Start here

About three quarters of all the aluminium ever smelted is still in use today.

Smelting began in the 1880s. Roughly 75% of every tonne produced since is still in a window frame, an engine block, a can or a plane — not in a hole in the ground. Almost no other material comes close.

What does that tell you?

Ores, crude oil and phosphate rock took tens of millions of years to concentrate, and we are using them in centuries. On any human timescale the supply is finite: extraction is a one-way trip out of the crust.

Recycling is the only thing that sends any of it back. The question this lesson answers is how much comes back — and that turns out to be a property of the material.

The bench · run the loop

Start with 1000 kg. See how far it goes round.

1 of 5 materials opened

Pick a material

How much gets collected

Change the collection rate to finish this bench.

Aluminium can

Melts and casts again with almost nothing lost. The metal does not care how many times it has been round.

  • Use 11000 kg
  • Use 2855 kg
  • Use 3731 kg
  • Use 4625 kg
  • Use 5534 kg
  • Use 6457 kg

Lifetimes per kg of ore

6.90×

Adding up every pass through the loop.

Energy, new from ore

170 MJ/kg

What it costs to make the material the first time.

Energy, from recycled

8.5 MJ/kg

95% less than new.

A kilogram of ore now does the work of about 6.9 kilograms — this loop is running about as well as a loop ever does — and each pass costs 95% less energy than making it new.

Reference · five things we take out of the ground

Tap one. Each has a different kind of limit.

1 of 5 opened

Not one of these runs out in the same way.

Bauxite — aluminium ore

The only ore aluminium is extracted from in quantity. Smelting it needs electricity on a scale that decides where smelters get built.

The limit: Plenty in the ground for now, but extraction is one of the most energy-hungry industrial processes there is, so the real limit is energy rather than rock.

Does recycling help? Enormously. Recycled aluminium takes about a twentieth of the energy, and the metal comes back as good as new.

Key fact

The Earth holds a fixed stock of every ore, and extraction is one-way. Recycling returns part of the material each time round, so one kilogram from the ground can serve several lifetimes — but every loop leaks, so recycling slows the loss and never stops it.

Five words

Say your answer out loud before you turn each card over. If you cannot say it, you do not know it yet.

Think again

“If we recycled everything, we would never run out of anything.”

You have just run the loop five times. Commit before you read on.

Mastery ladder

Not started yet.

Rungs 3 and 4 you mark yourself.

Rung 1 · Recall

Why is a metal ore described as a finite resource?

Rung 2 · The one that catches people

Nine out of ten crisp packets are collected, and nine out of ten aluminium cans are collected. Why does recycling do so much more for the cans?

Rung 3 · Explain

A council doubles its collection rate for plastic bottles and is disappointed that the amount of new plastic being made barely falls. Explain why, using what the bench showed you.

Rung 4 · Take it somewhere new

A smartphone contains around thirty different elements, each in tiny amounts and bonded into layers a few atoms thick. Predict how well it recycles compared with an aluminium can, and say what the designers would have to change.

Key note

Metal ores, crude oil and phosphate rock are finite: they formed over millions of years and are being extracted in centuries. Recycling returns part of the material to be used again, saving raw material and usually a large amount of energy — recycled aluminium takes about a twentieth of the energy of new metal from ore. But every loop loses some material, and some materials come back degraded or cannot be separated at all, so recycling slows extraction rather than ending it. Using less and using things for longer cut extraction more than recycling does.

Going further

You will see headlines saying a metal has a certain number of years left. Those figures move, and not because anyone found more planet. A reserve is the part of a resource that can be extracted at a profit with today's technology, so when the price rises or the mining gets cleverer, ore that was worthless becomes a reserve and the number of years left goes up. That does not mean the stock is unlimited — it means the cheap, concentrated part gets used first, and everything after it takes more energy to extract. The limit shows up as rising energy cost long before anything physically runs out.

The awkward one is the crisp packet. Plastic film laminated to a layer of aluminium a few microns thick is a brilliant piece of engineering — it keeps food fresh for months using very little material — and it is close to unrecyclable, because no process separates the two layers economically. That is a real trade-off rather than a mistake, and it is the shape of most recycling problems: the property that makes a material useful is often the same property that makes it hard to get back.

Before this lesson

Connects to

At GCSE this becomes

  • Life-cycle assessment, and the extraction of copper from low-grade ores by phytomining and bioleaching.

Where to next

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