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Automatic Screw Machine
Martin

Erstellt von

Martin

4. August 2026NO
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Automatic Screw Machine

A lathe with a skilled operator makes one good part at a time. The automatic screw machine makes the same part all day without one — because the sequence itself has been built into a rotating drum of cams. The machine does not need to be told what to do next; its shape is the instruction.

US 147,291, “Improvement in Machines for Making Metal Screws”, Christopher M. Spencer of Hartford, Connecticut, filed 17 December 1873 and granted 10 February 1874. The claim is automatic reversal: a clutch drum shifts between two pulleys turning opposite ways, so the cutting dies engage and disengage on their own instead of an operator shifting a belt by hand at every cycle.

Precision about what this patent is. Spencer is also credited with the “brain wheel” — the cam drum that carries a whole machining sequence — on his 1873 Hartford turret lathe. That is a different mechanism from the one claimed here, and this blueprint keeps them apart. Spencer's fame before either was the Spencer repeating rifle of 1860.

Anfänger
45 minutes

Anweisungen

1

Write the sequence you want repeated

List, in order, the operations to turn one part: feed stock, turn to diameter, form the head, cut the thread, part off. Five actions, always the same order.

Benötigte Werkzeuge:

Notebook and PencilNotebook and Pencil
2

Cut a cam disc from plywood

Cut a 150 mm disc of plywood. Mark its centre and drill it to fit the dowel rod.

Materialien für diesen Schritt:

Baltic Birch PlywoodBaltic Birch Plywood1 Blatt

Benötigte Werkzeuge:

Craft KnifeCraft Knife
Steel Ruler (30cm)Steel Ruler (30cm)
3

Divide the disc into the cycle

With the protractor, divide the rim into five sectors sized to your five operations — not equal, but proportional to how long each one takes.

Materialien für diesen Schritt:

Baltic Birch PlywoodBaltic Birch Plywood1 Blatt

Benötigte Werkzeuge:

ProtractorProtractor
Permanent MarkerPermanent Marker
4

Cut the profile

Cut the rim away in each sector to the depth that action needs. The rim height is now a graph of the cycle.

Materialien für diesen Schritt:

Baltic Birch PlywoodBaltic Birch Plywood1 Blatt

Benötigte Werkzeuge:

Craft KnifeCraft Knife
File SetFile Set
5

Mount the cam on an axle

Push the dowel rod through the centre hole and rest the ends in two notched blocks so the cam turns freely.

Materialien für diesen Schritt:

Dowel RodDowel Rod1 Stück
Flat Wooden BoardFlat Wooden Board1 Stück

Benötigte Werkzeuge:

Wood GlueWood Glue
6

Add a follower

Pivot a card-stock lever so its tip rides on the cam rim. The lever is your cutting slide.

Materialien für diesen Schritt:

Card Stock (Heavy, 50 Sheets)Card Stock (Heavy, 50 Sheets)1 Blatt
#6-32 Machine Screw#6-32 Machine Screw1 Stück

Benötigte Werkzeuge:

Sharp ScissorsSharp Scissors
7

Turn one full cycle by hand

Rotate the cam once slowly. Watch the follower run through all five positions and return to the start.

Benötigte Werkzeuge:

Notebook and PencilNotebook and Pencil
8

Measure the follower travel at each sector

Record the follower's height at the centre of each sector with the steel rule. Those five numbers are the program.

Materialien für diesen Schritt:

Graph PaperGraph Paper1 Blatt

Benötigte Werkzeuge:

Steel Ruler (30cm)Steel Ruler (30cm)
9

Change the part by changing the cam

File one sector 3 mm deeper. Turn the cycle again and record the new travel. You have just reprogrammed the machine without touching the machine.

Materialien für diesen Schritt:

Baltic Birch PlywoodBaltic Birch Plywood1 Blatt

Benötigte Werkzeuge:

File SetFile Set
Steel Ruler (30cm)Steel Ruler (30cm)
10

Add the reversing idea

Wrap string around the dowel in two opposite directions and pull each in turn. Spencer's claim replaces your two hands with a clutch that picks one of two counter-rotating pulleys.

Materialien für diesen Schritt:

Cotton Kitchen StringCotton Kitchen String1 Meter

Benötigte Werkzeuge:

Notebook and PencilNotebook and Pencil
11

Time ten cycles

Turn the cam ten times at a steady rate and time it. Divide by ten for the cycle time — the number a shop actually buys.

Materialien für diesen Schritt:

Graph PaperGraph Paper1 Blatt

Benötigte Werkzeuge:

Notebook and PencilNotebook and Pencil
12

Compare against doing it by hand

Now perform your five operations as five separate hand movements, reading the list each time. Time ten of those. The ratio is the machine's real argument.

Materialien für diesen Schritt:

Graph PaperGraph Paper1 Blatt

Benötigte Werkzeuge:

Notebook and PencilNotebook and Pencil
13

Inspect a real three-jaw chuck's repeatability

Clamp the brass rod in the lathe chuck, mark it, release and re-clamp five times, checking run-out each time with the dial indicator. Automation is worthless if holding is not repeatable.

Materialien für diesen Schritt:

Brass RodBrass Rod1 Stück

Benötigte Werkzeuge:

Lathe Chuck 3-JawLathe Chuck 3-Jaw
Dial IndicatorDial Indicator
14

History & Context

US 147,291, “Improvement in Machines for Making Metal Screws”, Christopher Miner Spencer (1833-1922), Hartford, Connecticut. Filed 17 December 1873, granted 10 February 1874. The claim is a clutch drum that shifts drive between two oppositely rotating pulleys, reversing the screw rod automatically so the dies engage and withdraw without a hand on a belt.

What this patent is not. Spencer's celebrated “brain wheel” is a cam drum carrying an entire machining sequence, fitted to the automatic turret lathe he built in Hartford in 1873. Popular accounts fold the two into one invention. They are separate mechanisms and only one of them is the subject of this document. Where sources merge them, the document wins.

Why the screw came first. Screws are small, are needed in enormous numbers, and each one requires an identical multi-step sequence — the ideal first case for automation. The class of machine Spencer's work founded is still called a screw machine even when it is making something else entirely, and its descendants are today's CNC lathes with bar feeders.

The deeper idea. A cam is a physical program: a shape that stores a sequence and replays it exactly, forever, with no memory and no operator. Every argument later made about numerical control — that the instruction should be separable from the machine and cheap to change — is already visible here, where changing the part means filing a new cam.

Spencer before machine tools. He patented the Spencer repeating rifle in 1860; several hundred thousand were made during the American Civil War. The interchangeable-parts discipline he learned in armouries is exactly what he brought to the screw machine.

Materialien

8

Benötigte Werkzeuge

10

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