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Tide Mill
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20. uNcwaba 2026SE
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Tide Mill

A watermill that runs on the moon. Dam a creek or inlet with a gate that swings open on the flooding tide and shuts as the water turns; the pond fills itself twice a day, and the trapped head then drives a wheel as it drains back to the falling sea. No river is required, which is why tide mills appear exactly where rivers do not — on flat estuarine coasts with a decent tidal range. The catch is scheduling: the mill works when the tide says so, not when the miller does, and the useful window shifts about fifty minutes later every day. Millers worked night shifts on a lunar timetable. Tide mills are documented from at least the sixth century in Ireland and were in commercial use into the twentieth.
Ophakathi
2 hours

Imiyalelo

1

Build the pond and a one-way gate

The gate is the whole trick and it needs no mechanism.

  1. Make a tank divided by a wall — one side is the pond, the other the sea.
  2. Cut an opening in the wall and hang a flap that swings only toward the pond.
  3. Raise the sea level and watch the flap open; lower it and watch it shut.
Water pressure operates the gate, in both directions, with no linkage at all. A rising sea pushes it open and fills the pond; a falling sea lets the pond's own head press it closed. This is a check valve built at civil-engineering scale in the sixth century.

Materials for this step:

Baltic Birch Plywood (1/8 inch, 12x12, 10-Pack)Baltic Birch Plywood (1/8 inch, 12x12, 10-Pack)1 iphakethe
2

Measure the head and when you have it

Available power depends on the difference between pond and sea, and that changes constantly.

  1. Fill the pond at high water and close the gate.
  2. Lower the outside level in steps to simulate the ebb, recording the head each time.
  3. Plot head against time through a simulated tide.
You get almost nothing at high water, when the levels are equal, a good head through the middle of the ebb, and nothing again once the sea rises. That plot IS the working day — typically five or six hours per tide, twice a day, arriving at a different clock time each day.

Materials for this step:

Steel RulerSteel Ruler1 ucezu
StopwatchStopwatch1 ucezu
3

Fit a wheel that tolerates low head

The head is small and falling, so the wheel must suit that.

  1. Build an undershot or low-breastshot wheel in the outflow.
  2. Run water through and observe the speed as the head drops.
  3. Try a high overshot wheel and see it fail.
An overshot wheel needs water delivered above it — impossible here, where the head is a metre or two at best. Tide mills therefore use undershot or breastshot wheels, which are less efficient but work with what is available. The energy source dictates the machine.

Materials for this step:

Ball Bearing - Flanged (6,35 mm Bore, 1,27 cm OD)Ball Bearing - Flanged (6,35 mm Bore, 1,27 cm OD)2 izicucu
4

Estimate the energy stored

The pond is a battery, and you can size it.

  1. Measure the pond area and the usable head.
  2. Energy ≈ ρ × g × A × h² / 2 — the water's average fall is half the head.
  3. Divide by the working duration for average power.
The h² term is why tidal range matters so much more than pond size: doubling the range quadruples the energy from the same pond. That is exactly why tide mills clustered where the range is large, and why modern tidal schemes go to the Severn, the Rance and the Bay of Fundy.
5

History and context

The earliest excavated examples are remarkably old: Nendrum in Strangford Lough, Northern Ireland, has been dated by dendrochronology to the early seventh century, with an even earlier phase around 619. Tide mills then appear across Atlantic Europe — Brittany, Portugal, England, the Netherlands — and were carried to the American colonies, where several operated in New England.

They were commercially serious, not curiosities. Some ran into the twentieth century; the Eling tide mill in Hampshire still grinds. Their advantage was reliability of a kind rivers do not offer: a river fails in drought and floods in spate, while the tide simply arrives, forever, on a schedule known centuries in advance.

The scheduling cost was borne by people. Because high water shifts roughly fifty minutes later each day, a tide miller's working hours rotated through the whole clock over a fortnight, including the middle of the night. This is the oldest example of a workforce arranged around an intermittent renewable resource, and the arrangement was to make the humans flexible.

What it became: tidal barrage schemes — La Rance in France since 1966, Sihwa Lake in South Korea — are tide mills at national scale, with turbines instead of a wheel and often generating on both the flood and the ebb. The environmental objection is the same at both scales: a barrage changes the estuary it dams, and estuaries are among the most biologically productive places there are.

Izinto

4
Estimated Total
$6.00

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