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Cone Clutch
Martin

Créé par

Martin

21. août 2026NO
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Cone Clutch

Two shafts, one turning and one stopped, and you need to connect them without stopping the first. A cone clutch does it with friction on a tapered surface: push a male cone into a matching female cone and the taper multiplies your axial push into a much larger normal force on the friction faces, so a light spring or a modest lever grips hard. Because it is friction, engagement is gradual — the faces slip while speeds equalise, then lock — which means it can be engaged at any speed and will slip rather than break under overload. The taper angle is the whole design: too steep and it needs enormous force, too shallow and it wedges and will not release. This build uses a 12 degree half-angle in aluminium with an M8 engagement screw and measures the force multiplication directly.
Intermédiaire
4 hours 30 minutes

Consignes

1

Choose the taper angle deliberately

One angle decides whether the clutch works, needs a hydraulic ram, or refuses to let go.

  1. Set out a 12 degree half-angle cone on paper at full size.
  2. Mark the engagement diameter at 60 mm and the cone length at 30 mm.
  3. Note the relationship: normal force ≈ axial force ÷ sin(half-angle).
  4. At 12 degrees, sin is about 0.21, so the faces see roughly 5 times your push.

Why not go shallower for more multiplication? Below about 8 degrees the cone self-locks — friction on the taper exceeds the component trying to push it out, so the clutch stays engaged after you release the lever and must be levered apart. Above about 15 degrees the multiplication falls away and you need a heavy spring. Twelve degrees sits in the usable band, and that band is narrow.

Write the angle on both parts as you make them. A male cone at 12 degrees in a female at 14 contacts on one edge only, and the clutch will grip weakly then wear rapidly at that line.

Matériaux pour cette étape :

Graph PaperGraph Paper1 pad

Outils nécessaires :

Combination Square (12-inch)Combination Square (12-inch)
Digital Caliper 6-InchDigital Caliper 6-Inch
2

Make the matched cone pair

Cut both from the same setup if you possibly can — matched tapers are the whole job.

  1. From 25 mm aluminium round bar, cut a male cone body 60 mm long and file the 12 degree taper.
  2. Cut a female housing from the same bar and bore the matching internal taper.
  3. Bore both centres 8.0 mm for their shafts.
  4. Blue the male cone and push it into the female — the transfer should show contact along the whole face, not just at one end.
  5. File and re-test until contact is even.

What the patent-era clutches used: a cast iron cone faced with leather, cork or woven asbestos, because the facing gives a higher and more stable friction coefficient than metal on metal and wears in preference to the expensive part. Modern build spec (derived): bare aluminium for the demonstration, or glue a strip of leather to the male cone for a marked improvement in grip.

The blue transfer test here is the same technique as the three-plate method — contact patterns tell you what a measurement cannot.

Matériaux pour cette étape :

Aluminum Round Bar (6061, 1-inch x 12-inch)Aluminum Round Bar (6061, 1-inch x 12-inch)2 pièces

Outils nécessaires :

Hacksaw Frame with Blades (10-Pack)Hacksaw Frame with Blades (10-Pack)
Bench Vise (4-inch, Cast Iron)Bench Vise (4-inch, Cast Iron)
File SetFile Set
Cordless Drill/Driver (20V)Cordless Drill/Driver (20V)
Drill Bit Set (29-Piece, HSS)Drill Bit Set (29-Piece, HSS)
Digital Caliper 6-InchDigital Caliper 6-Inch
3

Mount both shafts and add the engagement lever

The male cone must slide along its shaft while still driving it.

  1. Mount both shafts in 608 bearings in plywood pillow blocks, fixed with M5 × 40 socket head cap screws × 4, M5 flat washers × 8 and M5 hex nuts × 4.
  2. Cut a key slot along the male shaft, or file a flat, so the cone slides axially but cannot rotate on it.
  3. Fit an M5 cup point set screw in the cone running in that slot.
  4. Make a fork lever engaging a groove in the cone's back face, pivoted on an M6 × 40 hex bolt.
  5. Fit a compression spring behind the cone so it defaults to ENGAGED.

Why spring-engaged rather than spring-released. If the operator lets go, or a linkage breaks, a spring-engaged clutch stays connected and the machine keeps driving; a spring-released one disconnects. Which default is safer depends entirely on the machine, and it is a decision worth making deliberately rather than by accident of layout.

The sliding-but-driving joint is the fiddly part. A flat on the shaft with a set screw riding on it is the simplest version and perfectly adequate here.

Matériaux pour cette étape :

Baltic Birch Plywood (3/4 inch, 24x30)Baltic Birch Plywood (3/4 inch, 24x30)1 feuille
Ball Bearing - Non-Flanged (8mm Bore, 22mm OD)Ball Bearing - Non-Flanged (8mm Bore, 22mm OD)4 pièces
M5 Flat WasherM5 Flat Washer8 pièces
M5 Hex NutM5 Hex Nut4 pièces
M5 Cup Point Set ScrewM5 Cup Point Set Screw2 pièces
Compression Spring SetCompression Spring Set1 jeu

Outils nécessaires :

Cordless Drill/Driver (20V)Cordless Drill/Driver (20V)
Drill Bit Set (29-Piece, HSS)Drill Bit Set (29-Piece, HSS)
Allen/Hex Key SetAllen/Hex Key Set
File SetFile Set
Coping SawCoping Saw
Combination Square (12-inch)Combination Square (12-inch)
4

Measure the multiplication, and the slip

Two numbers turn this from a demonstration into data.

  1. Hang a known weight on the engagement lever to produce a measured axial force.
  2. Wrap a cord round the output shaft and find the load at which it begins to slip.
  3. Compute the transmitted torque, then repeat at double the axial force.
  4. Now spin the input by hand and engage — note the moment of slip before speeds match.
Transmitted torque should rise roughly in proportion to axial force, and be several times what the same force would give on a flat friction disc of the same diameter — that is the taper doing its work. The slip on engagement is not a defect: it is what lets a cone clutch connect a stationary shaft to a spinning one without shock, and it is exactly what the dog clutch cannot do.

Outils nécessaires :

Digital Caliper 6-InchDigital Caliper 6-Inch
StopwatchStopwatch
5

History and where it belongs

Cone clutches were everywhere in early machinery and early cars, often leather-faced, because they deliver a lot of torque for a simple, compact part with one moving element. They were largely displaced in automobiles by the multi-plate and single-plate dry clutch, which spreads the same friction over more area in less axial length and is easier to cool.

They did not disappear. Cone synchronisers in every manual gearbox are cone clutches — small brass or friction-lined cones that spin the next gear up to speed before the dog teeth engage. So the modern gearbox uses BOTH approaches deliberately: the cone clutch to match speeds gently, then the dog clutch to lock positively. That combination is the direct answer to the trade-off in this batch.

The self-locking limit is real and worth respecting. The same wedging that makes shallow tapers grip hard is what makes Morse taper tool holders stay in a spindle without a drawbar — there, self-locking is the FEATURE. Same geometry, opposite intent, and the dividing line is the friction angle of the materials.

Against its siblings: the dog clutch cannot slip and so cannot be engaged at speed. The centrifugal clutch needs no operator at all but engages only at its designed speed. The cone clutch engages at any speed and slips under overload — forgiving, but it wears, and a worn clutch transmits less torque than it did when new.

Matériaux

8

Outils requis

10
Total estimé
€8.00

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