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Twist Drill
Forge

Ṣẹ́dá nipasẹ̀

Forge

2. Oṣù Kẹjọ 2026NO
12
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Twist Drill

Before 1863 a machinist forged his own drills, and a hole was as round as the smith was lucky. The twist drill made a hole a specified size — which is the precondition for a bolt that fits any hole of that name.

US 38,119, Stephen A. Morse of East Bridgewater, Massachusetts, granted 7 April 1863. The drawing sheet is headed simply “Bit”; the indexes catalogue it as “Improvement in drill-bits”. The claim is the helical flute: not a decorative twist, but a screw-shaped groove that does three jobs at once — it forms the cutting lip, it carries the chip up and out of the hole, and it lets coolant down. A flat spade bit does only the first.

Chip evacuation is the unglamorous half. A drill that cuts beautifully and cannot clear its own swarf packs the hole, seizes and snaps.

Olùbẹ̀rẹ̀
45 minutes

Ìlànà

1

Read the claim before you build

Morse claims a helical flute doing three jobs: form the cutting edge, eject the chip, admit coolant. Write the three down; you will test each separately.

2

Look at a real drill under magnification

Examine one bit with the magnifier. Find the two cutting lips, the two flutes, the web between them, and the margin that rubs the hole wall.

Tools needed:

Drill Bit SetDrill Bit Set
Magnifying GlassMagnifying Glass
3

Measure the shank against the name

Measure the shank diameter with the caliper and compare with the size stamped on the bit. The stamped name is a promise; check it.

Tools needed:

Drill Bit SetDrill Bit Set
Vernier CaliperVernier Caliper
4

Measure the point angle

Lay the bit on paper, trace the point, and measure the included angle with the protractor. General-purpose drills are ground to 118°.

Materials for this step:

Graph PaperGraph Paper1 ewé

Tools needed:

ProtractorProtractor
Drill Bit SetDrill Bit Set
5

Model the helix on paper

Cut a right triangle of paper 40 mm tall with a 60 mm base and wrap it around the brass rod. The hypotenuse traces a helix. This is why a flute is a screw.

Materials for this step:

Graph PaperGraph Paper1 ewé

Tools needed:

Sharp ScissorsSharp Scissors
Brass RodBrass Rod
6

Change the helix angle

Cut a second triangle 40 mm tall with a 20 mm base and wrap it. The steeper helix is what a drill for soft metal uses — faster chip lift, weaker edge.

Materials for this step:

Graph PaperGraph Paper1 ewé

Tools needed:

Sharp ScissorsSharp Scissors
Brass RodBrass Rod
7

Mark a centre before drilling

Mark a centre on the board. An unmarked start lets the point wander and the hole is oval before it is deep.

Materials for this step:

Flat Wooden BoardFlat Wooden Board1 ẹyọ

Tools needed:

Permanent MarkerPermanent Marker
8

Drill a test hole

Drill one hole through the board with a 6 mm bit, steady pressure, letting the flutes clear.

Materials for this step:

Flat Wooden BoardFlat Wooden Board1 ẹyọ

Tools needed:

Drill Bit SetDrill Bit Set
9

Measure the hole, not the drill

Measure the finished hole with the caliper. It is almost always larger than the bit. Record the difference — that gap is why reamers exist.

Tools needed:

Vernier CaliperVernier Caliper
10

Drill five more and measure each

Drill five holes and measure all five. The spread, not the average, is what an engineer designs around.

Materials for this step:

Flat Wooden BoardFlat Wooden Board1 ẹyọ

Tools needed:

Drill Bit SetDrill Bit Set
Vernier CaliperVernier Caliper
11

Deliberately pack the flutes

Drill deep without withdrawing. Feel the drill bind as chips pack. Withdraw, clear, continue. This is Morse's second job failing in your hands.

Materials for this step:

Flat Wooden BoardFlat Wooden Board1 ẹyọ

Tools needed:

Drill Bit SetDrill Bit Set
12

Test whether the hole is a gauge

Try a #6-32 screw in a hole drilled to fit it. If it passes in every hole you drilled, you have made an interchangeable part.

Materials for this step:

#6-32 Machine Screw#6-32 Machine Screw6 ẹyọ
13

Compare with a chisel-cut hole

Cut a hole the old way with the craft knife. Measure it. The comparison is the entire argument for the twist drill.

Materials for this step:

Flat Wooden BoardFlat Wooden Board1 ẹyọ

Tools needed:

Craft KnifeCraft Knife
Vernier CaliperVernier Caliper
14

History & Context

US 38,119, “Improvement in Drill-Bits”, Stephen Ambrose Morse of East Bridgewater, Massachusetts, granted 7 April 1863. Morse went on to found the Morse Twist Drill and Machine Company of New Bedford in 1864.

Not that Morse. Stephen A. Morse has no connection to Samuel F. B. Morse of the telegraph and the code. The coincidence of surname misleads often enough to be worth stating.

The manufacturing problem behind the patent. A helical flute is easy to draw and hard to cut. Morse's early drills were made by twisting a flat bar — hence ‘twist drill’, a name that describes an obsolete manufacturing method rather than the finished geometry. Milling the flutes into a solid round blank came later and gave a far more consistent tool. Joseph R. Brown's universal milling machine of 1862 was developed at the request of Frederick Howe specifically to machine spiral grooves in twist drills — the drill and the machine that makes it arrive together, each demanding the other.

Why it belongs in a metrology batch. A named drill size is a physical standard distributed to every workshop in the world. When a drawing says ‘6 mm hole’ and any shop can produce one, the drawing becomes portable. The Morse taper — his self-holding shank taper — is still a live standard on machine tools today, which makes it one of the longest-surviving dimensional standards in engineering.

Àwọn ohun-èlò

3

Àwọn irinṣẹ́ tó nílò

8

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