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Gun Drill Selection Guide: Choosing the Right Tool

Gun drill selection determines the upper limit of what your process can achieve — hole straightness, surface finish, tool life, and productivity. No amount of parameter optimization compensates for a poorly chosen drill. Matching the drill construction, geometry, grade, and coating to the specific workpiece material and hole specification is the first and most important step in process design.

Gun Drill Construction Types

Comparison of Construction Styles

Construction TypeDiameter RangeDepth CapabilityCost per ToolTypical Applications
Solid carbide1–20 mmUp to 100×DMediumSmall diameters, precision, high production
Brazed tip (carbide head, steel shank)6–40 mmUp to 150×DLow to mediumGeneral purpose, most common type
Replaceable tip12–40 mmUp to 100×DMedium (tip only)High production, quick changeover
Indexable insert20–65 mmUp to 80×DHigherLarge diameters, roughing

Tip: Brazed tip gun drills account for approximately 80% of deep hole drilling applications. They offer the best balance of cost, performance, and flexibility. Solid carbide drills are preferred for small diameters (< 6 mm) where shank rigidity is critical.

Brazed Tip Gun Drill Components

ComponentMaterialFunction
Carbide tipMicrograin or sub-micrograin carbideCutting edge, chip forming
Braze jointCopper-silver alloyJoins tip to shank
Steel shankAlloy steel (4140, 4340)Provides length and rigidity
Coolant holeBrass or steel tubeDelivers coolant to cutting edge
Driver padHardened steel or carbideDrives the drill from the holder

Tip Geometry Selection

Geometry Options by Material

Workpiece MaterialPoint AngleClearance AngleRake AngleEdge Preparation
Low-carbon steel30–35°8–12°0–3° positiveHoned edge
Medium-carbon steel25–30°8–10°0–2° positiveSlight hone
Alloy steel (4140, 4340)25–30°8–10°0° neutralT-land + hone
Stainless steel (304, 316)20–25°10–14°3–5° positivePolished rake face
Stainless steel (precipitation-hardened)22–28°8–12°2–4° positivePolished + hone
Aluminum30–35°12–15°5–8° positiveSharp edge
Cast iron25–30°6–8°−2–0° negativeChamfered edge
Titanium20–25°10–14°3–5° positivePolished + hone
Inconel / superalloys18–22°12–16°5–8° positivePolished + large hone

Point Geometry Variations

Geometry TypeCharacteristicBest For
Standard single-angleOne grinding angle on each facetGeneral purpose, most materials
Double-anglePrimary + secondary angle on ODImproved edge strength on hard materials
Radius pointRounded tip profileSoft materials, interrupted cuts
Split pointSecondary grind on chisel edgeReduced thrust force, better centering
Stepped pointMultiple diametersRough and finish in one pass

Carbide Grade Selection

Grade Characteristics

Grade TypeGrain Size (µm)Hardness (HRA)ToughnessWear ResistanceBest For
Micrograin0.5–0.891–93GoodExcellentGeneral purpose, steel
Sub-micrograin0.2–0.592–94Very goodVery goodHard materials, abrasive
Nanograin< 0.293–95FairSuperiorHigh-speed finishing
Coarse grain1.0–3.089–91ExcellentGoodInterrupted cuts, heavy feeds
Material GroupRecommended ISO GradeRecommended Carbide TypeCobalt Content
Steel (low-carbon)K10–K20Micrograin6–8%
Steel (alloy)K15–K25Micrograin7–9%
Stainless steelK20–K30Sub-micrograin9–11%
Cast ironK05–K15Micrograin5–7%
AluminumK10–K20Micrograin6–8%
TitaniumK25–K35Sub-micrograin10–12%
Inconel / superalloysK30–K40Sub-micrograin11–14%

Coating Selection

Coating Types and Benefits

Coating TypeHardness (HV)Max TemperaturePrimary BenefitBest Material Match
TiN (Titanium Nitride)2,300600°CGeneral purpose, low costSteel, cast iron
TiCN (Titanium Carbonitride)3,000700°CHigher wear resistanceAlloy steel, stainless
TiAlN (Titanium Aluminum Nitride)3,300900°CHigh-temperature performanceTitanium, Inconel, hard steel
AlTiN (Aluminum Titanium Nitride)3,500900°COxidation resistance, hard materialsSuperalloys, hardened steel
AlCrN (Aluminum Chromium Nitride)3,2001,100°CMaximum heat resistanceInconel, titanium
Diamond (CVD)8,000600°CNon-ferrous, abrasive materialsAluminum (high Si), composites
No coatingLow cost, simple regrindGeneral steel, cast iron

Coating Decision Matrix

ApplicationRecommended CoatingWhy
Production steel, generalTiN or TiCNGood wear resistance, economical
Stainless steelTiAlN or AlTiNHigh-temperature stability prevents BUE
Titanium and superalloysAlTiN or AlCrNMaximum thermal protection
High-silicon aluminumDiamond (CVD)Resistance to abrasive silicon
Cast iron, low-volumeNo coating or TiNCost-effective, easy to regrind
Interrupted cutsTiCNTough coating with good adhesion

Shank Types and Drive Configurations

Shank Styles

Shank TypeDiameter RangeFeaturesBest For
Cylindrical (straight)3–40 mmSimple, low costStandard holder
Whistle notch6–40 mmNotch for set screw retentionPositive drive, most common
Flatted (single or double)10–40 mmGround flats for driveHigh torque, large diameters
Threaded15–65 mmScrew-in connectionHeavy-duty, high feed
Captive (quick-change)10–40 mmQuick-release mechanismHigh-production, frequent changes

Drive Considerations

FactorRecommendation
Torque < 10 N·mWhistle notch or cylindrical with set screw
Torque 10–50 N·mDouble-flatted shank
Torque > 50 N·mThreaded connection
Speed > 5,000 RPMPrecision-ground cylindrical, balanced
Quick-change neededCaptive shank system

Diameter-to-Length Ratio

Selection Impact

L/D RatioConstruction RecommendationSpecial Considerations
< 20:1Any construction typeStandard selection
20:1–50:1Brazed tip, steel shankCheck shank straightness, use steady rests
50:1–100:1Brazed tip, heavy-wall shankReduced feed, critical alignment
100:1–150:1Brazed tip, special straightnessVery low feed, premium shank material
> 150:1Special order onlyDrastically reduced parameters

Selection Workflow

Step-by-Step Selection Process

StepActionKey Questions
1Define hole specificationsDiameter, depth, tolerance, surface finish
2Identify workpiece materialMaterial group, hardness, inclusion content
3Select construction typeBrazed tip for general, solid carbide for small
4Choose tip geometryPoint angle and clearance per material
5Select carbide gradeMatch ISO grade to material group
6Choose coatingBased on material and production volume
7Determine shank typeBased on torque and drive system
8Verify L/D ratioConfirm construction supports depth
9Select coolant hole sizeMatch to pressure and flow requirements
10Confirm with supplierValidate selection before ordering

FAQ

What is the most common gun drill construction type?

The brazed tip gun drill (carbide tip brazed onto a steel shank) is the most common, accounting for approximately 80% of deep hole drilling applications. It offers the best balance of cost and performance, with the carbide tip providing a sharp cutting edge and the steel shank providing rigidity and lower cost.

How do I choose between TiN, TiAlN, and AlTiN coating?

Choose TiN for general steel drilling at moderate speeds. Choose TiAlN for stainless steel and when running at higher speeds where heat generation is greater. Choose AlTiN (higher aluminum content) for titanium, Inconel, and superalloys where cutting edge temperature exceeds 800°C. AlTiN's aluminum oxide layer that forms at high temperature provides thermal barrier protection.

What point angle should I use for stainless steel gun drilling?

Use a flatter point angle of 20–25° for stainless steel. The shallower angle reduces thrust force and allows the cutting edge to shear cleanly, reducing work hardening and built-up edge formation. Combine with a positive rake angle (3–5°) and a polished rake face for best results.

When should I use a replaceable tip gun drill instead of brazed tip?

Use replaceable tip drills when: production volume is high enough to justify the higher initial tool holder cost (typically > 500 holes per setup), fast tip changes are needed to minimize downtime, or you want to eliminate the need for in-house regrinding. The tip itself costs more than regrinding a brazed drill, so the economics favor replaceable tips only at higher volumes.

What carbide grade is best for drilling Inconel?

Use a sub-micrograin carbide grade (ISO K30–K40) with 11–14% cobalt content for Inconel and superalloys. The higher cobalt content provides the toughness needed to resist the extreme edge pressure and notch wear that occurs when machining these materials. Pair with an AlTiN or AlCrN coating for thermal protection.


Gun drill selection is a systematic process — match the tool to the material, the coating to the heat, and the shank to the torque. Time spent on selection pays back in tool life and hole quality. This article reflects industry practice as of 2026.

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