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Centrifugal Governor
Martin

Criado por

Martin

27. julho 2026NO
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Centrifugal Governor

An engine with no governor speeds up when the load comes off and slows when it goes on. A mill driven by one produces uneven cloth; a lathe cuts unevenly; a threshing machine jams. Somebody has to stand at the throttle all day.

The governor removes that person. Two weighted balls hang from a spindle driven by the engine. Spin faster and they swing outward; the linkage they carry pulls the throttle closed. Slow down and they drop, and the throttle opens again. The machine measures its own speed and corrects it, with no measurement, no decision and no operator anywhere in the loop.

Build it as a hand-cranked model and you can see the whole idea in thirty seconds: the disturbance itself supplies the correction. That is feedback control, and this is the object that put it into industry.

Intermediário
5 hours

Instruções

1

Mount a vertical spindle in two bearings

Fit a 6 mm steel rod vertically in two bearings on a baseboard so it turns freely and cannot wobble. Everything hangs off this spindle, so slop here shows up as vibration everywhere.

Materiais para este passo:

Steel RodSteel Rod1 peça
2

Fix a collar near the top

Clamp a fixed collar to the spindle 40 mm below the top. The upper arms pivot from this collar and it never moves.

3

Fit a sliding sleeve below it

Fit a second collar that slides freely up and down the spindle while turning with it. This sleeve is the output of the whole machine — its height is the measurement of speed.

4

Make two arms with weights

Cut two arms 120 mm long and fix an equal mass to the end of each — steel balls or nuts of 60-100 g. The two must match in mass and length or the assembly runs out of balance.

Materiais para este passo:

Steel Ball BearingSteel Ball Bearing2 peças

Ferramentas necessárias:

Digital ScaleDigital Scale
5

Hinge the arms to the fixed collar

Pin each arm to the fixed collar so it swings only outward and inward in a vertical plane, freely, with no stiffness in the joint.

6

Link the arms to the sliding sleeve

Connect each arm to the sliding sleeve with a short link pinned at both ends. Now when the arms rise, the sleeve is pulled up; when they fall, it drops.

7

Check the geometry through its full travel

Lift the arms by hand from hanging to nearly horizontal and confirm nothing binds or goes over centre. A governor that jams at one end of its travel is worse than none at all.

8

Drive the spindle

Drive the spindle from a hand crank through a belt or a pair of gears. A crank is enough to demonstrate everything; a small motor with a speed control is better for measurement.

9

Find the speed at which the arms lift

Turn slowly and increase speed until the arms just begin to rise. Count turns against a stopwatch and write the figure down. Below this speed the weights simply hang.

Ferramentas necessárias:

StopwatchStopwatch
10

Plot sleeve height against speed

Measure the sleeve height at five different speeds and plot the two against each other. The curve is the governor's characteristic — every mechanism that follows depends on this one relationship.

Ferramentas necessárias:

Measuring RulerMeasuring Ruler
Notebook and PencilNotebook and Pencil
11

Change the ball mass and re-measure

Swap in heavier balls and repeat. Heavier weights do not simply lower the lift-off speed the way most people predict — take the measurements rather than guessing, and compare against your first curve.

12

Change the arm length and re-measure

Now change the arm length instead, keeping the same balls. Arm length shifts the whole curve — this is the adjustment an engineer actually used to set an engine's working speed.

13

Connect the sleeve to a throttle plate

Link the sliding sleeve through a bell crank to a pivoting flap standing in for the steam valve, arranged so rising sleeve closes the flap. Get that sense the wrong way round and the mechanism drives the engine to destruction instead of steadying it.

14

Demonstrate the correction

Crank faster and watch the flap close; slow down and watch it open. Nothing is being measured or decided — the same rotation that is the problem is also the sensor.

15

Make it hunt

Lengthen the linkage or add mass to the sleeve, and the governor starts to overshoot and oscillate around its speed instead of settling. That instability is called hunting, and provoking it deliberately is the most useful thing this model does.

16

Damp the hunting

Add friction at the sleeve or a light spring against its travel, and the oscillation dies away. You have just built, by hand, the fix that nineteenth-century engineers spent decades formalising.

17

History & Context

Not Watt's invention. Christiaan Huygens described a centrifugal governor in the seventeenth century, and the device was already in use on windmills and water wheels, where it regulated the gap and pressure between millstones as the sails turned faster or slower. James Watt designed his first governor in 1788, at the suggestion of his partner Matthew Boulton, adapting the mill mechanism to the steam engine. He is often called its inventor; he was its most consequential adopter.

Why the steam engine needed it more than the mill did. A windmill's speed is set by weather. A steam engine's speed is set by its load, which in a factory changes every time a machine is engaged or disengaged. Constant speed under changing load is what makes a single engine able to drive a whole mill through line shafting — and the governor is what delivers it.

The limit built into the mechanism. A simple governor cannot hold exactly one speed. To open the throttle further it must let the balls sit lower, and the balls only sit lower if the engine is running slower. So a heavier load settles at a slightly lower speed than a light one. The governor shrinks the variation rather than abolishing it — a property later called droop, and the reason proportional control alone is never quite enough.

Then it became mathematics. As engines ran faster, governors began to hunt, and nobody could say in advance which designs would be stable. James Clerk Maxwell answered that in 1868 with a paper called On Governors, analysing the motion as a differential equation and deriving conditions for stability. It is a founding document of control theory. The line from a pair of spinning brass balls to modern feedback control runs straight through that paper.

Materiais

2

Ferramentas necessárias

4

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