Reference — Draining a district: how flood-control machinery actually works
REF108 · r1 · 2026-09-06 · Reference Researcher · Reference, not a design proposal. Decides nothing. First revision. Written because World and Mystery now builds the district's mystery out of drainage machinery — a weir, a race, a drum, sluices, valves, a gravity drain, a pump hall — and Brief D019 has expanded the project to many districts. That vocabulary is being invented from scratch. The real field is documented, and its mechanisms are stranger and more useful than invented ones. Companion to REF101, which does the same for the current. Sources read: World and Mystery, Brief D019, Design Document, Reference.
This proposes nothing. Sourced fact is in the body; anything that follows for this project is set apart, labelled as inference, and belongs to the world designer and the proposed Campaign/Districts designer. A game is not a polder and nothing here says a real mechanism would play well.
1. A polder, and why the pumping never stops
A polder is "a low-lying tract of land that forms an artificial hydrological entity, enclosed by embankments" — dikes (Wikipedia: Polder). Water gets in continuously and by several routes: "Water enters the low-lying polder through infiltration and water pressure of groundwater, or rainfall, or transport of water by rivers and canals. This usually means that the polder has an excess of water, which is pumped out or drained by opening sluices at low tide."
The important structural fact is that there is no finished state. Drainage is not an achievement that holds; it is a standing obligation against a permanent inflow.
2. One pump cannot lift water far enough, so the pumps are chained
This is the fact most worth having.
At Kinderdijk, "a system of 19 windmills was built around 1740" to drain the Alblasserwaard, where "the drained soil continued to subside, while the level of the river rose." The mills could not do it in one lift. Each had "a limited capacity to bridge water level differences, but just able to pump water into a reservoir at an intermediate level between the soil in the polder and the river." That reservoir "could then be pumped out into the river by other windmills whenever the river level was low enough." The site became a UNESCO World Heritage Site in 1997 (Wikipedia: Kinderdijk).
So a historic drainage system is a staircase: water is raised in stages, by separate machines, into an intermediate holding level, and only then discharged.
Bearing on the expanded campaign (inference, for the world designer and the proposed Campaign/Districts designer). D019 asks for many districts. Kinderdijk is a historically attested structure in which the parts of a drainage system are stages of one machine rather than a list of places — each district lifting the next one's water, failure upstream changing what is possible downstream, and the order mattering because the levels are ordered. That is one available shape among many, and choosing it is not this page's call.
3. Discharge is a timing problem, not a power problem
The Kinderdijk sentence worth reading twice is "whenever the river level was low enough; the river level has both seasonal and tidal variations." The water waits in the intermediate reservoir until the outside world permits it to leave. The pumps can be working perfectly and the system still cannot discharge.
Bearing (inference). A drainage system's binding constraint is often an external cycle nobody controls, not the machinery. The design already has a dispatch clock the player reads and steers around; that a real drainage district has a second, independent, external clock of the same character is offered as a fact, not a proposal.
4. Some sluice gates need no power at all
From Wikipedia: Sluice — a sluice being "a water channel containing a sluice gate, a type of lock to manage water flow and water level":
| Gate | How it operates |
|---|---|
| Flap sluice gate | "Fully automatic", works like a check valve, hinged at the top, driven by pressure differential with no external intervention |
| Fan gate | Invented by Jan Blanken, 1808; "opens using water pressure alone, requiring no external power" |
| Needle sluice | Thin needles held against a frame by the water pressure itself |
| Vertical rising gate | A plate sliding vertically, controlled by machinery — the most common type in open channels |
| Radial / rising sector gate | Cylindrical surface gates on radial arms, sometimes counterweighted |
And on the relationship between two words the world page uses separately: when a sluice gate is lowered, "water may spill over the top, in which case the gate operates as a weir" — a weir being a structure that allows overflow. The same object can be either, depending on its position.
Bearing (inference). In a design where electrical power is the scarce resource and the central rule, real drainage engineering supplies a whole class of devices that work without power — driven by the water's own pressure — alongside a class that needs it. That distinction is authentic, free, and already close to the powered/unpowered split the design uses.
5. The trap in the fiction: draining the land makes it sink
Peat, once drained and exposed to air, oxidises and the ground subsides. Water levels are then lowered again to keep pace, which drives further oxidation. Stated in the literature as a loop:
"water levels are periodically lowered to keep pace with soil subsidence. Consequently, soil subsidence continues, causing increasing water management costs." — van Asselen et al., Pressurized drainage can effectively reduce subsidence of peatlands, PIAHS 382, 2020
Figures from that paper: expected "average soil subsidence rates of 7 mm yr⁻¹" at Polder Spengen, and cumulative subsidence in the Netherlands of "2–4 m" since medieval times. Wikipedia's polder article gives the mechanism: "Polder land made up of peat (former marshland) will sink in relation to its previous level, because of peat decomposing when exposed to oxygen from the air."
Bearing (inference). This is a real, measured, self-reinforcing loop in which the act of keeping the land dry is what makes it need more keeping dry. A colony whose pump is the thing slowly ruining the ground it stands on is not a designer's conceit; it is what happened to the Netherlands over several centuries. Whether it belongs in this game — and it may not, since the design has deliberately excluded upkeep and decay — is entirely the world designer's and PM's call.
What this page does not claim
Not engineering advice, and not a claim that any real mechanism would play well, be readable, or be cheap: a game is not a polder and this page proposes no rule. No claim about feasibility, scope or cost — all gated. No claim that the campaign should be structured as a staircase, that districts should be ordered by water level, or that subsidence should exist in the game; §§2 and 5 are labelled inferences handed to the roles that own those decisions. Nothing here is a correction to the world page, whose invented machinery is internally consistent and is not in question.
Sources
- Wikipedia: Polder — definition, inflow routes, discharge by sluice at low tide, peat subsidence mechanism
- Wikipedia: Kinderdijk — 19 mills, c. 1740, staged lift into an intermediate reservoir, discharge when the river is low, UNESCO 1997
- Wikipedia: Sluice — gate types, the unpowered gates, and when a gate becomes a weir
- Wikipedia: Drainage mill — windpumps, and the Archimedean screw used where only a small lift is required
- van Asselen et al. (2020), Pressurized drainage can effectively reduce subsidence of peatlands — lessons from polder Spengen, Proc. IAHS 382, 741–746 — subsidence rates and the drainage/subsidence feedback loop
- REF101 — the companion page on what the current does in that water
Bookkeeping
Method. Encyclopedia articles and one open-access peer-reviewed paper, fetched read-only on 2026-09-06. Nothing was built, prototyped or tested.
Claims found and deliberately left out, because I could not verify them from a primary source and this section does not repeat search summaries as fact: that a single scoop wheel lifts water roughly 1–1.5 m, and that Simon Stevin invented the multi-mill staged lift in 1589. Both appeared in secondary summaries; neither is on this page. The staged-lift principle itself is sourced from Kinderdijk's own article, which states it without attaching a number or an inventor.
Corrections. Kill any statement here with a counter-source and it goes.
