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Scotch Yoke
Martin

सिर्जनाकर्ता

Martin

21. अगस्ट 2026NO

Scotch Yoke

A crank pin runs in a slot cut across a sliding yoke, so rotating the crank drives the yoke back and forth. Unlike a connecting rod, the motion produced is a pure sine wave — no second-harmonic distortion at all — and the mechanism is far shorter because there is no rod length to accommodate. The price is paid at the slot: the pin slides as well as rolls, so contact pressure and wear concentrate on two faces, and side load on the yoke guides is high. This build is a working desk model in 18 mm birch plywood and 6 mm aluminium, dimensioned for a 40 mm crank throw giving 80 mm of stroke, assembled with M4 and M5 hardware and a 608 bearing on the crank pin to convert most of that sliding into rolling.
मध्यम
4 hours

निर्देशनहरू

1

Cut the baseplate and mark the centreline

Everything else is located from one line, so this line decides whether the model runs or binds.

  1. Cut a baseplate 300 × 150 mm from 18 mm Baltic birch plywood.
  2. Scribe a centreline down the 300 mm length with the combination square.
  3. Mark the crank centre 90 mm from the left end, on the centreline.
  4. Centre-punch that point.

Modern build spec (derived). 18 mm ply is chosen because it takes an M5 thread insert or a through-bolt without splitting, and it stays flat. A cast iron bed does the same job in the original machines; here rigidity comes from thickness.

Punch every hole centre before drilling. A drill bit started on unpunched plywood wanders across the grain, and a crank centre 1 mm out of place shows up as a visible wobble over the 80 mm stroke.

Materials for this step:

Baltic Birch Plywood (3/4 inch, 24x30)Baltic Birch Plywood (3/4 inch, 24x30)1 पाना

Tools needed:

Jigsaw (Variable Speed, Orbital)Jigsaw (Variable Speed, Orbital)
Combination Square (12-inch)Combination Square (12-inch)
Center PunchCenter Punch
Digital Caliper 6-InchDigital Caliper 6-Inch
2

Make the crank disc and fit the pin

The crank throw sets the stroke exactly — stroke is twice the throw, with no approximation.

  1. Cut a 100 mm disc from 6 mm aluminium flat bar stock, or from 18 mm ply if working in wood only.
  2. Drill the centre 8.0 mm for the main shaft.
  3. Mark the pin centre 40 mm from the disc centre and drill 5.0 mm.
  4. Fit an M5 × 30 socket head cap screw as the crank pin, secured behind the disc with an M5 flat washer and M5 hex nut.
  5. Slip a 608 bearing (8 mm bore, 22 mm OD) over a stepped bush on the pin so the bearing outer race is what contacts the slot.

What the patent-era machines used: a hardened steel pin running directly in a bronze-lined slot, oiled by hand. Modern build spec (derived): a 608 sealed bearing on an M5 pin — the same job, no oiling, and it converts sliding contact into rolling contact at the one place this mechanism wears fastest.

Check the throw with the caliper before assembly: measure centre-to-centre, not edge-to-edge. A 1 mm error here becomes a 2 mm stroke error.

Materials for this step:

Aluminum Flat Bar (1x1/4 inch, 36-inch)Aluminum Flat Bar (1x1/4 inch, 36-inch)1 टुक्रा
M5 Flat WasherM5 Flat Washer2 टुक्रा
M5 Hex NutM5 Hex Nut2 टुक्रा
Ball Bearing - Non-Flanged (8mm Bore, 22mm OD)Ball Bearing - Non-Flanged (8mm Bore, 22mm OD)1 टुक्रा

Tools needed:

Cordless Drill/Driver (20V)Cordless Drill/Driver (20V)
Drill Bit Set (29-Piece, HSS)Drill Bit Set (29-Piece, HSS)
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
Allen/Hex Key SetAllen/Hex Key Set
3

Cut the yoke slot to the bearing, not to a number

The slot width is the single fit that decides whether it runs sweetly or rattles.

  1. Cut the yoke 180 × 60 mm from 18 mm ply.
  2. Measure your bearing's actual outer diameter with the caliper — a 608 is nominally 22 mm but measure it.
  3. Mark a slot across the yoke's width, 100 mm long, at the measured OD plus 0.2 mm.
  4. Drill a 20 mm hole at each end of the slot, then join the holes with the coping saw.
  5. File the two long faces straight and parallel, testing with the bearing as you go.
Aim for the bearing to fall through the slot under its own weight but with no perceptible side play. Too tight and the yoke jams at mid-stroke where the pin speed is highest; too loose and it knocks audibly at both ends of travel. This is a fit you achieve by filing and testing, not by measuring once.

Materials for this step:

Baltic Birch Plywood (3/4 inch, 24x30)Baltic Birch Plywood (3/4 inch, 24x30)1 पाना

Tools needed:

Coping SawCoping Saw
Drill Bit Set (29-Piece, HSS)Drill Bit Set (29-Piece, HSS)
File SetFile Set
Digital Caliper 6-InchDigital Caliper 6-Inch
Bench Vise (4-inch, Cast Iron)Bench Vise (4-inch, Cast Iron)
4

Build the guides and set the assembly order

Order matters here — get it wrong and you cannot reach a fastener.

  1. Cut two guide rails 200 × 25 mm from 6 mm aluminium flat bar.
  2. Clamp both rails to the baseplate in their final positions and drill through rail and base together, 4.2 mm, four holes per rail.
  3. Countersink the underside of the baseplate.
  4. Fit the crank disc and its bearing FIRST, then slide the yoke into place, then fit the second guide rail.
  5. Fix each rail with M4 × 25 socket head cap screws × 8, M4 flat washers × 16 and M4 nylon insert lock nuts × 8.
  6. Set the running clearance by slipping a sheet of paper between yoke and rail before final tightening, then withdraw it.

Why lock nuts: this mechanism reverses direction twice per revolution, and every reversal is a shock load through the guides. Plain nuts walk loose within minutes of running; nylon insert lock nuts do not. That is a specification decision, not a preference.

Drilling rail and base together is what guarantees the two rails end up parallel. Marking and drilling them separately accumulates error and the yoke will bind at one end of its travel.

Materials for this step:

Aluminum Flat Bar (1x1/4 inch, 36-inch)Aluminum Flat Bar (1x1/4 inch, 36-inch)1 टुक्रा
M4 Socket Head Cap ScrewM4 Socket Head Cap Screw8 टुक्रा
M4 Flat WasherM4 Flat Washer16 टुक्रा
M4 Nylon Insert Lock NutM4 Nylon Insert Lock Nut8 टुक्रा

Tools needed:

Cordless Drill/Driver (20V)Cordless Drill/Driver (20V)
Drill Bit Set (29-Piece, HSS)Drill Bit Set (29-Piece, HSS)
Countersink Drill Bit Set (5-Piece)Countersink Drill Bit Set (5-Piece)
Allen/Hex Key SetAllen/Hex Key Set
Combination Square (12-inch)Combination Square (12-inch)
5

Measure the motion, and history

Prove the sine wave before reading further.

  1. Mark the crank rim every 30 degrees.
  2. Turn the crank one increment at a time and measure the yoke position with the caliper at each.
  3. Plot position against angle — you get a clean sinusoid.
  4. Now compute the same plot for a crank and connecting rod of equal throw and compare.

The connecting rod's curve is NOT a sine — it is skewed, because the rod's angularity makes the piston move faster on one half of the stroke than the other. That skew is the second harmonic that engine balancing has to deal with. The Scotch yoke has none of it, which is its genuine advantage.

History. The mechanism is old and its name is disputed; it appears in 19th century machine practice and is documented in the standard mechanism catalogues of the period, including Brown's Five Hundred and Seven Mechanical Movements of 1868. It has been applied in steam pumps, in the Bourke engine, in some radial engines and widely in test rigs where a true sinusoidal motion is required.

The honest limit, which is why it is not in your car. The pin slides along the slot as it rotates, and the sliding velocity is highest exactly where side force is greatest. In a high-speed engine that means unacceptable wear at the slot faces, and lubricating a reciprocating slot is much harder than lubricating a rotating bearing. The connecting rod wins in engines not because its motion is better but because it wears far less. This build sidesteps most of that with a rolling bearing — a modern option the original had no access to, and precisely the kind of substitution worth recording.

Where it sits among its siblings: the Geneva drive converts rotation into intermittent rotation; the Scotch yoke converts rotation into pure reciprocation; a crank and rod does the same job with less wear and a distorted waveform. Three answers, three different costs.

Tools needed:

Digital Caliper 6-InchDigital Caliper 6-Inch

सामग्री

8

आवश्यक उपकरणहरू

12
Estimated Total
$2.00

सम्बन्धित ब्लुप्रिन्ट

यी ब्लुप्रिन्टहरूले ज्ञान साझा गर्छन् — प्रविधि, सामग्री वा सिद्धान्त

CC0 सार्वजनिक डोमेन

यो ब्लुप्रिन्ट CC0 अन्तर्गत जारी गरिएको छ। तपाईं अनुमति नसोधी प्रतिलिपि, परिमार्जन, वितरण र प्रयोग गर्न सक्नुहुन्छ।

ब्लुप्रिन्ट मार्फत उत्पादनहरू किनेर सिर्जनाकर्तालाई सहयोग गर्नुहोस् सिर्जनाकर्ता कमिसन विक्रेताले तोकेको, वा यो ब्लुप्रिन्टको नयाँ संस्करण बनाउनुहोस् र आम्दानी बाँड्न आफ्नो ब्लुप्रिन्टमा जडानको रूपमा समावेश गर्नुहोस्।

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