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Corliss Valve Gear
Paulice

Creado por

Paulice

30. julio 2026US
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Corliss Valve Gear

An early steam engine let steam push the piston for the whole stroke and then dumped it, still under pressure, out the exhaust. That wasted steam is wasted coal. The fix is to admit steam for only part of the stroke and let it expand for the rest — but that means a valve that opens, then snaps shut at a precise, adjustable moment, every stroke, forever.

Corliss's gear does exactly that. A single eccentric rocks one wrist-plate, and the wrist-plate works all four valves — two for admission, two for exhaust. The admission valves are tripped: pulled open, then released to slam shut under a spring, with the release point set by the governor. Fast cutoff, driven by the engine's own speed.

The result is regulation and economy at once — the engine holds its speed against a changing load and burns far less coal doing it.

US Patent 6,162, "Cut-off and working the valves of steam-engines", granted 10 March 1849 to George H. Corliss of Providence, Rhode Island (reissued 1851, No. 206).

Intermedio
45 minutes

Instrucciones

1

Read the granted title carefully

US 6,162 is "Cut-off and working the valves of steam-engines" — a valve gear, not an engine. The whole patent is about when the valves move.

Herramientas necesarias:

Notebook and PencilNotebook and Pencil
2

Cut a base and mark four valve ports

On a plywood base, mark four points around a central pivot: two admission (top), two exhaust (bottom). This is the layout Corliss uses.

Materiales para este paso:

Baltic Birch PlywoodBaltic Birch Plywood1 hoja

Herramientas necesarias:

Combination PliersCombination Pliers
3

Pivot a wrist-plate at the centre

Mount a disc that can rock a few degrees each way on a central pin. This is the wrist-plate — one part that will drive all four valves.

Materiales para este paso:

Dowel RodDowel Rod1 pieza
4

Link a single eccentric to the wrist-plate

Make an offset crank on a shaft and connect it by a rod to the wrist-plate. Turn the shaft: the wrist-plate rocks back and forth from one input.

Materiales para este paso:

Mild Steel Rod (6mm)Mild Steel Rod (6mm)1 pieza
5

Connect all four valves to the wrist-plate

Run four link-rods from the wrist-plate to four pivoting "valves". One rocking plate now opens and closes all four in sequence. Turn the shaft and watch the cycle.

6

Watch admission open before exhaust closes

Note the timing: an admission valve opens as its exhaust closes, on each side alternately. The single plate enforces the correct order automatically.

7

Add a trip and a return spring to one admission valve

Instead of linking the admission valve rigidly, let the wrist-plate pull it open through a catch, with a spring trying to close it. This is the trip mechanism.

Materiales para este paso:

Galvanised Steel WireGalvanised Steel Wire1 metro
8

Release the catch mid-stroke and watch it snap shut

Set the catch to release partway through the opening. The valve is yanked shut by the spring almost instantly — far faster than a linked valve. Fast cutoff is the whole point.

9

Move the release point and time the closure

Shift where the catch releases and mark the shaft angle at closure each time with the stopwatch cycle. Earlier release = steam admitted for less of the stroke = earlier cutoff.

Herramientas necesarias:

StopwatchStopwatch
10

Tie the release point to a sliding weight

Connect the catch position to a weight that stands in for the governor. Move the weight "out" and the cutoff comes earlier. Now speed controls fuel admission.

11

Compare a rigid valve against the tripped one

Run one side rigid, one side tripped. The rigid valve opens and closes slowly and symmetrically; the tripped valve opens gently and closes like a trap. That sharp closure is what saves steam.

12

Measure the wrist-plate's swing angle

With a protractor, measure how few degrees the wrist-plate actually rocks. A small, precise oscillation runs the whole valve set — elegance through geometry.

Herramientas necesarias:

ProtractorProtractor
13

History & Context — the engine that ran an exposition

The patent. US 6,162, "Cut-off and working the valves of steam-engines", granted 10 March 1849 to George H. Corliss of Providence, Rhode Island, and reissued 13 May 1851 as No. 206. The reissue matters: a granted patent can be re-examined and re-granted with amended claims, and this one was.

What the claim actually covers. Corliss claims the use of a wrist-plate to carry the valve motion from a single eccentric to four separate valves, and the use of releasing (trip) valves with variable cutoff under governor control. Both halves matter. The wrist-plate is the mechanical economy — one moving part times four valves, in the right order, for free. The trip-and-drop cutoff is the thermodynamic economy — steam is admitted for only part of the stroke and then expands, and the exact cutoff point is set by the governor, so the engine trims its own fuel to the load.

Why the trip is cleverer than a linked valve. A valve linked rigidly to the drive opens and closes at the same slow, symmetric rate. Corliss instead has the wrist-plate latch the admission valve open and then release it, letting a spring (or a falling weight, the "dashpot") slam it shut in a fraction of the time. A sharp cutoff wastes almost no steam in a half-open valve. Steps 7 to 11 build and measure exactly that difference.

Regulation as a side effect of the same mechanism. Because the governor sets the release point, a Corliss engine holds its speed remarkably steady as the load changes — an early, elegant example of feedback control built into linkage rather than electronics. The governor does not throttle the steam (which wastes it); it changes how long steam is admitted.

What it became. The Corliss engine dominated heavy stationary power for half a century — mills, waterworks, factories — precisely because it burned perhaps a third less coal than the engines it replaced. Its most famous moment came at the 1876 Centennial Exhibition in Philadelphia, where a single gigantic Corliss engine in Machinery Hall drove the shafting for the entire building's exhibits through a forest of belts. When it was ceremonially started, it became the symbol of American industrial power. The valve gear you modelled here is what made it sip coal while doing it.

Materiales

4

Herramientas requeridas

4

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