Drill Bit Point Angle: 118° vs 135° and When to Use Each

Choosing between a 118-degree and a 135-degree drill point is not
simply a choice between “general purpose” and “hard metal.” The correct
point must match the workpiece, drill diameter, machine rigidity, feed
method and hole requirement. This guide gives buyers and production
engineers a practical starting point, while making clear where a cutting
trial is still required.

Two precision twist drill points showing different 118-degree and 135-degree geometries above a steel test plate
Point angle works together with split geometry, lip equality, workpiece material and machine rigidity.

Quick answer: 118° or 135°?

Starting condition Usually start with Why
Mild steel, aluminum, wood, plastic and hand-fed general work 118° Lower thrust and easy entry in many softer materials
Stainless steel, alloy steel and harder stock 135° split point Shorter chisel edge, stronger point and less walking
Thin sheet where exit burr matters 135° split point or step drill Better centering; the exact result depends on feed and support
Flexible drill press or hand drill 118° or robust 135° geometry Avoid brittle, overly aggressive geometry
CNC production with rigid workholding Application-specific 135°/140°
geometry
Higher repeatability and better control of chip load

The angle is only one part of the point. A poorly ground 135° point
can perform worse than a concentric 118° point with equal lips.

What the point angle changes

The included angle changes the length of each cutting lip, the
thickness of material beneath the edge and the axial force required to
enter the workpiece. A flatter point generally has a shorter chisel edge
and stronger cutting edge. A sharper point enters with less axial
contact but can have less edge support.

Effect 118° point 135° point
Point profile More pointed Flatter
Typical thrust Often lower in softer material Can require firm, controlled feed
Edge support Moderate Stronger near the point
Walking resistance Fair; center punch may help Better when correctly split
Typical use General-purpose drilling Tougher alloys and production work

How a 118° drill behaves

A conventional 118° point is common on general-purpose HSS drills. It
works well when the workpiece is not very hard, the operator needs easy
entry, and the machine does not provide high thrust. It is also easy for
many shops to resharpen consistently.

Its limitations appear when the material work-hardens, the surface is
curved or the hole must begin without a pilot. A large unsplit chisel
edge can rub before the cutting lips engage. If the operator hesitates,
stainless steel can harden locally and rapidly damage the drill.

How a 135° split point
behaves

A 135° split point reduces the effective chisel edge and creates
additional cutting facets near the center. This improves self-centering
and reduces the tendency to skate across a smooth surface. The flatter
point also provides more support behind the cutting edge.

Split-point quality must be inspected. The split facets should be
symmetrical and should meet close to the drill axis. If one lip is
longer or one split is deeper, the drill can cut oversize, create a
bell-mouthed entrance or load one corner until it chips.

Choose by workpiece material

Workpiece Practical starting point Additional requirement
Aluminum alloys 118°–130°, polished flute Prevent built-up edge; use adequate chip space
Low-carbon steel 118° or 135° Select by machine, hole depth and productivity target
Stainless steel 135° split point Positive feed, low runout and suitable coolant
Hardened steel 135°–140° carbide geometry Verify hardness and machine rigidity first
Brass and copper Controlled-rake geometry Prevent grabbing; angle alone is insufficient
Plastics Sharp, low-heat geometry Support the exit and avoid melting

Diameter and hole depth
matter

Small drills have a relatively thick chisel edge compared with their
diameter, so web thinning and point symmetry become especially
important. Larger drills create higher torque and more chip volume. For
holes deeper than roughly three drill diameters, chip evacuation and
coolant delivery can dominate the result more than the nominal point
angle.

Hole condition Geometry priority
Shallow through-hole Point angle, exit support and burr control
Blind hole Point length, usable depth and bottom profile
Deep hole Flute volume, coolant access and peck strategy
Curved surface Split point, spotting and workholding

Match the point to the
machine

A hand drill, bench drill and machining center do not hold the tool
with the same rigidity. Carbide and aggressive split points need stable
holders and controlled feed. On a flexible machine, a tougher cobalt
drill may survive interrupted contact better than a brittle carbide
tool, even if carbide is faster in a rigid CNC setup.

Check spindle runout, chuck condition, holder projection and
workpiece clamping before blaming the angle. Point geometry cannot
compensate for a drill rotating eccentrically.

Feed, speed and coolant

Do not reduce feed until the drill only rubs. Each cutting lip needs
enough chip load to cut beneath the work-hardened surface. Set
rotational speed from drill diameter, tool substrate, coating and
workpiece—not from point angle alone. Use cutting oil or a validated
coolant process for stainless and alloy steel; keep aluminum chips from
welding to the flute.

Failure diagnosis

Symptom Likely cause Corrective action
Drill walks at entry Unsplit point, curved surface, excessive runout Spot, use a correct split point, inspect holder
One lip wears first Unequal lips or runout Regrind symmetrically; measure TIR
Blue/burned point Excess speed, rubbing, poor coolant Reduce speed, restore feed and coolant
Oversized hole Point asymmetry, runout or unstable setup Inspect drill, chuck, spindle and clamping
Chipped corners Excess feed, interrupted cut or brittle tool Stabilize entry; select tougher substrate/geometry

How buyers should
specify point geometry

An RFQ should state diameter range, length, substrate (HSS, M35, M42
or carbide), coating, point angle, split-point requirement, workpiece
material and hardness, hole depth, machine type and target hole
tolerance. “135° drill” alone does not define the lip relief, web
thinning or acceptable point concentricity.

Incoming inspection
checklist

Check What to verify
Point angle Within the agreed drawing tolerance
Lip length Both lips equal within the agreed limit
Chisel/split Symmetrical and centered
Runout Measured at a defined distance from the holder
Surface finish No burns, grinding cracks or coating buildup
Trial holes Diameter, roundness, burr, surface and tool life

Start with workpiece hardness and machine rigidity, then choose
substrate and point style. Confirm with a controlled trial using
recorded speed, feed, coolant and hole depth. Compare cost per
acceptable hole rather than purchase price per drill.

FAQ

Is 135° always better than
118°?

No. It is often better for harder alloys and self-centering, but a
118° point can be easier to feed in softer materials and flexible
equipment.

Does a 135° point need a
pilot hole?

A correctly made split point often starts without a pilot on a flat
surface, but curved, scaled or critical surfaces may still require
spotting.

Can a 118° drill be reground
to 135°?

Often yes if enough material remains, but the web and relief must
also be corrected. The finished tool should be inspected and
trialed.

Which angle is best for
stainless steel?

A 135° split point is a strong starting choice, combined with cobalt
or suitable carbide, positive feed, low runout and adequate coolant.

ENGINEERING KNOWLEDGE

Related Drill Bit Engineering Guides

Continue from product type into geometry, coating, hole quality, regrinding and deep-hole process control.

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