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  1. KS3
  2. Physics
  3. Pressure
  4. Upthrust, floating and sinking

Pressure · Model

Upthrust, floating and sinking

Drop a steel bolt in a bucket and it goes straight to the bottom. A steel ship the length of a street floats. Same steel.

Start here

Push a beach ball under and it fights you.

Hold one under the surface of a pool. You can feel the water shoving it back up the whole time, and the further under you push it the harder the shove gets. Let go and it leaves the water.

Where does that upward shove come from?

Upthrust is the upward force a liquid or gas exerts on anything in it, and it exists because pressure increases with depth. It is equal to the weight of the liquid the object pushes out of the way. An object floats when it can push aside a weight of liquid equal to its own weight, so that upthrust and weight balance; it sinks when even fully under it cannot push aside that much, so the weight wins.

At the bench · five blocks, one tank

Every block is one litre. Only the weight changes.

Change a control to begin

One litre of water weighs 10 N, so a block pushed fully under can never get more than that much upthrust. Pick a block. Then try holding it right under.

Commit first. Two one-litre blocks, one of pine and one of steel, are both held completely under the water. Which gets the bigger upthrust?

The relationship · a beam, not a triangle

UPTHRUST 5 NWEIGHT 5 NEQUALIT FLOATSUPTHRUST 10 NWEIGHT 27 N17.0 N OVER

It floats when the upthrust equals the weight

R = W − U
Two arrows the same length balance.
The longer one wins, and the leftover is what moves it.

Worked example · one step at a time

A stone weighs 12 N in air. Hanging fully under water, the spring balance reads 9 N. What is the upthrust?

Step 0 of 5

Worked example · one step at a time

A metal cube of mass 1.2 kg hangs from a balance. Fully under water the balance reads 8.0 N. What is the upthrust?

Step 0 of 5

Your turn · the same five steps

Your block: pine, 5 N, with 5 N of upthrust on it.

Write all five lines before you check. The numbers are the ones your own tank is showing.

Write at least one line first

Key fact

Upthrust is the upward force from a liquid or gas, and it equals the weight of what the object pushes out of the way. It floats when the upthrust can match its weight, and sinks when even fully under it cannot.

Think again

“Heavy things sink and light things float.”

A cargo ship weighs two hundred million newtons and floats; a steel bolt weighs half a newton and sinks. Weight alone decides nothing. What decides it is the weight of the object compared with the weight of water it can push out of the way — and a hull shaped like a hull pushes aside thousands of tonnes of sea, while a bolt can only push aside a bolt's worth. Squash that same ship into a solid cube and it goes straight down, because now it pushes aside almost nothing.

“Only things that float get upthrust.”

Everything in a liquid gets upthrust, sinkers included. Hang a stone from a spring balance and lower it into water: the reading drops, and the amount it drops by is the upthrust. The stone still sinks, because the upthrust is not enough to match its weight — but it is definitely there, which is why a heavy rock is easier to lift while it is still under the water and suddenly feels heavier as it breaks the surface.

Mastery ladder

Not started yet.

Rungs 3 and 4 you mark yourself.

Rung 1 · Calculate

A metal cube weighs 45 N in air. Hanging completely under water, the spring balance reads 37 N. What is the upthrust on it?

Rung 2 · The one that catches people

A steel bolt sinks. A steel ship floats. Which statement explains it?

Rung 3 · Explain

The steel from a ship is melted down and cast into one solid block, which sinks. Explain why the ship floated and the block does not, using upthrust and the water pushed out of the way.

Rung 4 · Take it somewhere new

A submarine dives by letting sea water into its ballast tanks and surfaces by blowing it out with compressed air. Explain both, and say what stays the same throughout.

Key note

Because pressure grows with depth, a liquid pushes up on the bottom of an object harder than it pushes down on the top, and the difference is upthrust. Upthrust equals the weight of the liquid pushed out of the way. Floating is the balanced case: upthrust equals weight, nothing is left over. Sinking is the unbalanced one: even fully submerged the upthrust is smaller than the weight, and the leftover force takes it down.

Going further

A submarine uses the one thing the blocks on the bench could not: it changes its own weight without changing its shape. Flood the ballast tanks and the weight goes up while the upthrust stays exactly the same, so it dives; blow the water out with compressed air and the weight drops below the upthrust, so it rises. Hovering at a set depth means matching the two to within a few newtons, which is why submarines trim constantly and why a change in the saltiness of the water is something a crew has to notice.

The same balance is written on the side of every merchant ship as the Plimsoll line — a set of marks showing how deep the hull may legally sit in fresh water, in salt water, in summer and in winter, because each of those changes the weight of water the hull pushes aside. Gases do it too: a hot-air balloon floats in air for exactly the reason a cork floats in water, since hot air inside the envelope weighs less than the cold air it pushes out of the way. And the whole idea is old. Archimedes worked out the rule about the weight of the fluid displaced more than two thousand years ago, and shipbuilders still use it unchanged.

Before this lesson

Connects to

At GCSE this becomes

  • Upthrust from the pressure difference across a submerged object, density as the test for floating, and Archimedes' principle written as an equation.

Where to next

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