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Steelyard Balance
Mark

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Mark

20. agosto 2026FI
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Steelyard Balance

An equal-arm balance needs a set of weights matching whatever you might weigh — to weigh a sack of grain you must own a sack's worth of brass. A steelyard needs one. The beam pivots off-centre, the load hangs from the short arm, and a single counterweight slides along the long arm until it balances; where it stops is the answer, read off a scale marked on the beam. Because the long arm multiplies the counterweight's effect, a weight of a kilogram can measure ten. Roman traders carried them everywhere and Roman examples survive in large numbers, often with two or three suspension points so one beam covers several ranges. The mathematics is the law of the lever, and the instrument turns it into a scale you can read.
Principiante
45 minutes

Istruzioni

1

Find the law of the lever yourself

Establish the rule before building anything that relies on it.

  1. Balance a rigid bar on a central pivot.
  2. Hang a known mass at a measured distance on one side.
  3. Balance it with a different mass on the other and record both distances.
You will find mass × distance equal on both sides, every time. A 100 g mass at 20 cm balances a 200 g mass at 10 cm. That product — the moment — is the only thing the beam cares about.

Materiali per questo passaggio:

Mild Steel BarMild Steel Bar1 bar
Digital Kitchen ScaleDigital Kitchen Scale1 pezzo
Steel RulerSteel Ruler1 pezzo
2

Move the pivot off centre

Now break the symmetry deliberately.

  1. Re-hang the beam so the pivot sits near one end.
  2. Hang the load from the SHORT arm.
  3. Slide a single counterweight along the LONG arm until it balances.
One counterweight now handles a wide range of loads, because what changes is not the weight but its distance. This is the entire economic argument for the steelyard: a merchant carries one weight instead of a boxful.

Materiali per questo passaggio:

Cotton Twine (for bundling)Cotton Twine (for bundling)1 rotolo
3

Graduate the beam

Turn the balance point into a reading.

  1. Hang a known mass and mark where the counterweight balances.
  2. Repeat for several known masses.
  3. Check the spacing between your marks.
The marks come out evenly spaced — double the load and the counterweight sits twice as far out. That linearity is why a steelyard can be graduated once and read directly, unlike a spring balance whose scale depends on the spring.
4

Add a second pivot for a second range

Roman steelyards commonly have two or three suspension hooks. Build the second.

  1. Fit another pivot point closer to the load end.
  2. Hang from that one and re-graduate.
  3. Compare the two scales.
Shifting the pivot changes the arm ratio and therefore the range — a shorter load arm means a bigger multiplication and a heavier capacity, at the cost of resolution. One beam, several scales, chosen by which hook you hang it from. Look at a surviving Roman example and the multiple scales are usually marked on different faces of the beam.
5

History and context

The steelyard is Roman in its familiar form — the Latin is statera — and hundreds survive from across the empire, in bronze, often with decorated counterweights cast as busts. Similar unequal-arm balances appear independently in China as the gancheng, and the type is old enough that a single origin is not worth asserting.

Its weakness is exactly its strength. Because the reading depends on a DISTANCE rather than on comparing two weights directly, a steelyard can be falsified in ways an equal-arm balance cannot: shave the beam, shift the pivot, use a counterweight that is slightly light, or file the graduations. Medieval market regulation is full of provisions about checking and stamping steelyards, and the equal-arm balance kept its reputation for honesty for that reason — with two equal arms, any tampering shows up when you swap the pans.

The name has nothing to do with steel. It is generally traced to the Steelyard, the London trading base of the Hanseatic League on the Thames, where such balances were in daily use. The etymology is contested, and it is worth flagging as a folk explanation rather than a settled fact.

Still in service. Doctors' beam scales work this way — a sliding poise along a graduated arm — and so do many mechanical crane and lorry scales. The moment principle also underlies the crane's load chart and the counterweight on a tower crane, which is a steelyard the size of a building.

Materiali

4

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