Appearance
A gun drill is the only cutting tool where a regrind error of 0.1 mm at the cutting edge produces a hole that is 0.5 mm off-center at 500 mm depth. The geometry of the cutting head is not just about cutting — it is about the delicate balance of forces that keeps the drill tracking straight.
Overview
The gun drill cutting head combines multiple functions in a small space: cutting the workpiece material, guiding the tool through the bore, and directing high-pressure coolant to the cutting zone. The ground faces on the cutting head determine how well each function is performed. Incorrect sharpening angles cause poor surface finish, oversize or undersize holes, rapid tool wear, and drill breakage.
| Sharpening Quality Aspect | Well-Sharpened Drill | Poorly-Sharpened Drill |
|---|---|---|
| Hole diameter tolerance | IT8 or better | IT10 or worse |
| Surface finish | Ra 0.8 µm or better | Ra 3.2 µm or worse |
| Tool life per regrind | 100% (baseline) | 30–60% of baseline |
| Chip form | Consistent tight cones | Inconsistent, stringy |
| Risk of breakage | Low | Moderate to high |
Gun Drill Cutting Geometry
The gun drill cutting head has a single cutting edge divided into an outer (peripheral) section and an inner (center) section. The head typically has five or six ground faces:
| Face | Function | Location |
|---|---|---|
| Primary relief (outer) | Forms the main cutting edge at the periphery | Outer cutting edge |
| Inner relief | Forms the cutting edge at the center of the drill | Inner cutting edge |
| Secondary relief | Provides clearance behind the primary edge | Behind primary relief |
| Front clearance | Prevents rubbing on the bore face | Forward face |
| Oil clearance | Directs coolant flow to the cutting edge | Between inner/outer edges |
| Chamfer | Protects the outer corner from chipping | Peripheral corner |
Critical Angles
| Angle | Typical Range | Function | Effect of Incorrect Angle |
|---|---|---|---|
| Point angle | 120–140° | Determines cutting edge inclination | Too small: weak edge, chipping. Too large: high thrust forces, poor centering |
| Primary relief angle | 8–15° | Provides clearance on outer cutting edge | Too small: rubbing, heat. Too large: edge chipping, short tool life |
| Inner relief angle | 10–15° | Provides clearance on inner cutting edge | Similar to primary relief but affects center of drill |
| Secondary relief angle | 20–30° | Additional clearance behind primary edge | Insufficient: pad rubbing. Excessive: weak edge support |
| Front clearance angle | 0–5° | Prevents face rubbing | Too large: chip flow obstruction |
| Oil clearance angle | 20–30° | Directs coolant to cutting zone | Insufficient: poor chip evacuation |
The Point Configuration
The gun drill point has two critical dimensions:
| Dimension | Definition | Typical Value | Tolerance |
|---|---|---|---|
| Point offset (eccentricity) | Distance from drill center to point tip | D/4 (25% of diameter) | ±0.01 mm |
| Land width (Y dimension) | Width of the primary relief land | 0.25–1.0 mm (diameter-dependent) | ±0.05 mm |
The point offset creates the unbalanced cutting force that keeps the guide pads in contact with the bore wall. An offset that is too small reduces pad contact pressure, causing the drill to wander. An offset that is too large increases the bending moment on the drill, causing oversize holes and rapid guide pad wear.
Land width by diameter:
| Drill Diameter | Land Width (Y) |
|---|---|
| 2 – 5 mm | 0.10 – 0.25 mm |
| 5 – 10 mm | 0.20 – 0.40 mm |
| 10 – 20 mm | 0.40 – 0.70 mm |
| 20 – 40 mm | 0.70 – 1.20 mm |
Sharpening Sequence
The standard gun drill sharpening sequence consists of six steps, performed in order:
Step 1: Primary Relief (Outer Cutting Edge)
| Parameter | Setting |
|---|---|
| Down angle | 12° |
| Left/right angle | 30° toward outer periphery |
| Table angle | 20° |
| Grind until | Wear is removed from the full cutting edge; land width (Y) is restored |
The primary relief forms the main cutting edge at the outer diameter. The land width (Y) is the most critical dimension in this step — too narrow and the edge will chip; too wide and the drill will rub.
Step 2: Inner Relief (Center Cutting Edge)
| Parameter | Setting |
|---|---|
| Down angle | 12° |
| Left/right angle | 20° toward center |
| Table angle | 15° |
| Grind until | Point offset is restored to D/4 |
The inner relief forms the cutting edge from the center of the drill outward to the point. The intersection of the inner and primary relief faces defines the point tip and its offset from center.
Step 3: Secondary Relief
| Parameter | Setting |
|---|---|
| Down angle | 20–25° |
| Left/right angle | 30° toward outer periphery |
| Table angle | 20° |
| Grind until | Primary land width is 0.2–0.8 mm (diameter-dependent) |
The secondary relief provides additional clearance behind the primary relief. It reduces friction between the cutting head and the bore surface.
Step 4: Front Clearance
| Parameter | Setting |
|---|---|
| Down angle | 0° |
| Left/right angle | 0° |
| Table angle | 0° |
| Grind until | Clearance face just meets the primary and inner relief faces |
The front clearance prevents the forward face of the drill from rubbing against the bottom of the hole.
Step 5: Oil Clearance
| Parameter | Setting |
|---|---|
| Down angle | 25° |
| Left/right angle | 20° |
| Table angle | Varies by drill design |
| Note | Skip if not required by drill design |
The oil clearance provides a channel for coolant to flow between the inner and outer cutting edges.
Step 6: Chamfer (Peripheral Corner)
| Parameter | Setting |
|---|---|
| Angle | 10–20° from drill axis |
| Width | Approximately equal to land width (Y) |
| Critical rule | Must not extend into the primary relief area |
The chamfer protects the vulnerable outer corner of the cutting edge from chipping during entry and exit.
Sharpening Equipment
Manual Fixtures
Manual gun drill sharpening fixtures mount on a standard tool and cutter grinder:
| Fixture Type | Diameter Range | Adjustment Axes | Typical Cost |
|---|---|---|---|
| V-block with angle plate | 3–20 mm | 3 axes (down, left/right, table) | $500–$2,000 |
| Universal gun drill fixture (e.g., 50Q) | 3–40 mm | 4 axes with angle scales | $2,000–$5,000 |
| Indexable-head fixture | 2–45 mm | 5 axes with digital readout | $5,000–$12,000 |
Manual sharpening requires significant operator skill. The angles are set using graduated scales on the fixture, and the grinding feed is controlled manually. Typical cycle time: 5–15 minutes per drill.
Dedicated Gun Drill Sharpeners
| Model | Type | Diameter Range | Key Features |
|---|---|---|---|
| GD-600 | Bench grinder | 3–40 mm | 50Q fixture, 2800 RPM, 550 W motor |
| RT-205 (Vastuna) | Bench grinder | 2–45 mm | Angle-indexed grinding head, diamond wheel |
| MAC 20 (Cuoghi) | 4-axis CNC | 2–20 mm | Parametric programming, 3D interface |
| GENIUS (TGT) | 6-axis CNC | 1–300 mm | Hollow clamping for gun drills, steady rest |
| Schütte 325linear | 5-axis CNC | 1–100 mm | 0.1 µm resolution, SIGSpro software, wheel changer |
CNC Grinding Machine Considerations
| Feature | Why It Matters for Gun Drills |
|---|---|
| Minimum axis resolution < 0.001 mm | Gun drill angles are sensitive to 0.1° changes |
| Hollow clamping arrangement | Allows grinding without disassembling the drill from the tube |
| Programmable steady rest | Supports long gun drills during grinding |
| 3D simulation software | Verifies complex geometry before grinding |
| Automatic wheel dressing | Maintains wheel shape for consistent geometry |
| In-process probing | Measures after rough grind, compensates before finish grind |
Wheel Selection
| Grinding Step | Wheel Type | Grit Size | Notes |
|---|---|---|---|
| Rough grinding (carbide) | Diamond (resin bond) | 120–180# | High material removal |
| Finish grinding (carbide) | Diamond (resin bond) | 240–400# | Fine surface finish |
| Rough grinding (HSS) | CBN (vitrified or resin bond) | 120–180# | For HSS gun drills |
| Finish grinding (HSS) | CBN (vitrified or resin bond) | 240–400# | Fine surface finish |
| Edge honing (optional) | Silicon carbide brush or slurry | 600–1000# | Removes grinding burrs |
Quality Control
In-Process Inspection
| Check Point | Method | Acceptable Range |
|---|---|---|
| Point offset | Optical comparator or tool microscope | D/4 ± 0.01 mm |
| Primary relief angle | Angle gauge or optical measurement | Specified angle ± 0.5° |
| Land width (Y) | Optical measurement | Diameter-dependent (see table above) |
| Edge condition | 10–50× magnification | No chips, cracks, or burrs |
| Surface finish of ground faces | Profilometer or visual comparison | Ra ≤ 0.8 µm |
Optical Measurement Systems
| System | Measurement Capability | Repeatability |
|---|---|---|
| Tool microscope (manual) | Point offset, angles, land width | ±0.01 mm, ±0.5° |
| Optical comparator (profile projector) | Full geometry overlay on CAD | ±0.005 mm |
| ZOLLER pomBasic / mμFocus | Automated edge radius, angles, profile | ±1 µm, ±0.1° |
| Alicona Round Tool Alignment | 3D edge geometry, chipping, radius | ±0.5 µm |
| Walter Helicheck | Full tool geometry, 3D comparison | ±1 µm |
Automated Regrind Verification
Advanced regrind centers use automated inspection integrated with the grinding cycle:
text
Regrind cycle with integrated QC:
1. Measure incoming drill (optical) → compare to nominal geometry
2. Calculate stock removal required
3. Rough grind with compensation for wear
4. Intermediate optical measurement
5. Finish grind with fine compensation
6. Final optical inspection → generate measurement report
7. Pass/fail decision based on geometric tolerancesRegrind Documentation
For production operations, each regrind should be documented:
| Data Field | Purpose |
|---|---|
| Drill serial number | Traceability |
| Regrind number (1st, 2nd, etc.) | Track remaining tool life |
| Material removed (mm from cutting edge) | Compare to regrind allowance |
| Measured point offset | Verify geometry |
| Measured angles (primary, inner, secondary) | Verify geometry |
| Edge condition before and after | Detect damage trends |
| Operator ID | Accountability |
| Pass/fail result | Quality record |
Common Sharpening Errors
| Error | Symptom in Drilling | Correction |
|---|---|---|
| Point offset too small (< D/4) | Drill wanders, poor straightness, oversize hole | Increase offset angle on inner relief |
| Point offset too large (> D/4) | Oversize hole from excessive lateral force, rapid guide pad wear | Decrease offset angle |
| Primary relief angle too small | High cutting forces, heat buildup, rapid flank wear | Increase down angle in step 1 |
| Primary relief angle too large | Edge chipping, poor surface finish, short tool life | Decrease down angle |
| Land width (Y) too narrow | Edge chipping, short tool life | Reduce grinding time in step 1 |
| Land width (Y) too wide | Rubbing, heat, poor surface finish | Increase grinding time in step 1 |
| Burr on cutting edge | Poor surface finish, built-up edge, oversize hole | Deburr with fine stone or hone |
| Uneven inner/outer edge intersection | Stepped or discontinuous chip formation, vibration | Verify fixture alignment |
| Oil clearance omitted or too small | Poor chip evacuation, coolant flow restriction | Include step 5 or verify clearance |
| Chamfer too deep (into primary relief) | Reduced cutting edge length, oversize hole | Limit chamfer to land width |
| Excessive material removal per regrind | Reduced total tool life (fewer regrinds possible) | Remove minimum material to clean up wear |
Regrind Management
When to Regrind
| Wear Criterion | Measurement Method | Action |
|---|---|---|
| Flank wear > 0.2 mm | Optical microscope | Regrind |
| Surface finish degrades below Ra 1.6 µm | Profilometer | Regrind |
| Cutting force increases > 20% from baseline | Spindle load monitor | Regrind |
| Hole diameter shifts by > 0.02 mm | Air gauge or CMM | Regrind |
| Edge chipping visible at 10× magnification | Visual inspection | Regrind (may reduce regrind count) |
Regrind Allowance
| Drill Diameter | Material Removed per Regrind | Maximum Total Regrinds |
|---|---|---|
| 3 – 6 mm | 0.3 – 0.5 mm | 3 – 5 |
| 6 – 12 mm | 0.5 – 0.8 mm | 5 – 8 |
| 12 – 20 mm | 0.8 – 1.2 mm | 8 – 12 |
| 20 – 40 mm | 1.0 – 1.5 mm | 10 – 15 |
Removing more material than the recommended allowance per regrind reduces the total number of regrinds achievable over the tool life. The goal is to remove only enough material to reach clean, undamaged carbide.
Sharpen for consistency, not maximum tool life
The most common mistake in gun drill sharpening is trying to maximize holes per regrind by extending the interval between sharpening. This approach produces inconsistent hole quality — the last 20% of holes before regrind are typically out of tolerance or at risk of tool failure. A conservative regrind schedule (regrind at 70–80% of expected wear life) produces more consistent hole quality and reduces scrap.
Summary
| Aspect | Recommendation |
|---|---|
| Primary relief angle | 12° (typical), 8–15° range depending on material |
| Inner relief angle | 12°, maintaining point offset at D/4 |
| Secondary relief angle | 20–25° |
| Front clearance | 0–5° |
| Oil clearance | 20–30° (if required by drill design) |
| Chamfer | 10–20°, width equal to land width |
| Point offset | D/4 ± 0.01 mm |
| Grinding wheel | Diamond (carbide), 120–180# rough, 240–400# finish |
| Inspection method | Optical comparator or tool microscope |
| Regrind frequency | When flank wear > 0.2 mm or surface finish degrades |
| Maximum regrinds | 3–15 depending on diameter |
FAQ
What are the critical angles for gun drill sharpening?
The four critical angles are: (1) primary relief angle (8–15°) — controls cutting edge strength and clearance; (2) inner relief angle (10–15°) — controls point offset; (3) secondary relief angle (20–30°) — provides additional clearance; and (4) the point offset (D/4) — controls the force balance that keeps the drill tracking straight. The point offset is arguably the most critical single dimension — an error of 0.01 mm in point offset can produce a measurable change in hole diameter and straightness.
How often should a gun drill be sharpened?
Sharpen the gun drill when flank wear reaches 0.2 mm, when surface finish degrades below specification, or when hole diameter shifts by more than 0.02 mm from nominal. In production, track the number of holes per regrind and establish a scheduled replacement interval at 70–80% of the expected wear life. A typical carbide gun drill in steel achieves 500–3,000 holes per regrind depending on material and parameters.
Can gun drills be sharpened on a standard tool grinder?
Yes — most gun drills are sharpened on universal tool and cutter grinders using a specialized gun drill sharpening fixture. The fixture provides the multi-axis adjustment needed to set the primary relief, inner relief, secondary relief, front clearance, and oil clearance angles. Dedicated gun drill sharpeners (such as the GD-600 or RT-205) integrate the fixture with a suitable grinder in a single package.
What is the point offset and why is it important?
The point offset is the distance from the drill centerline to the tip of the cutting point, typically set at D/4 (25% of the drill diameter). This offset creates the unbalanced radial cutting force that presses the guide pads against the bore wall, providing the self-piloting action of the gun drill. If the offset is too small, the drill loses guidance and wanders. If too large, the lateral force increases, causing oversize holes and accelerated guide pad wear.
How do I check gun drill sharpening quality?
Use an optical comparator or tool microscope to measure: (1) point offset — should be D/4 ± 0.01 mm; (2) land width — compare to diameter-dependent table; (3) primary relief angle; (4) edge condition — check for chips, cracks, or burrs at 10–50× magnification. The surface finish of ground faces should be Ra ≤ 0.8 µm. Advanced shops use automated optical inspection systems (ZOLLER, Alicona, Walter Helicheck) for full geometry verification.
What causes a gun drill to chip at the outer corner?
Outer corner chipping is most often caused by: (1) insufficient chamfer — the sharp corner is vulnerable to impact during entry and exit; (2) excessive feed rate — the mechanical load exceeds the edge strength; (3) interrupted cuts (keyways, cross-holes) that impact the corner; or (4) excessive primary relief angle that leaves insufficient support behind the cutting edge.
Can a gun drill be sharpened too many times?
Yes. Each regrind removes material from the cutting head, reducing the diameter slightly and moving the guide pads closer to the cutting edge. When the cutting head diameter has been reduced by 0.2–0.5 mm (diameter-dependent), or when the remaining carbide thickness at the cutting edge is insufficient for structural support, the drill should be retired. The total number of regrinds ranges from 3–5 for small drills (< 6 mm) to 10–15 for larger drills (> 20 mm).
What is the difference between sharpening carbide and HSS gun drills?
Carbide gun drills require diamond grinding wheels (resin-bond diamond for fine finish); HSS drills use CBN wheels. Carbide is more brittle and requires sharper angles with better edge support to prevent chipping. HSS is tougher and can tolerate higher relief angles. The grinding feed rate should be lower for carbide to prevent thermal cracking — carbide is sensitive to thermal shock from aggressive grinding.
How do I know if a gun drill sharpening error is causing my drilling problem?
Compare the defect pattern to the error table: a wandering drill that produces oversize holes likely has insufficient point offset. Rapid edge wear suggests insufficient primary relief angle (the edge is rubbing). Edge chipping suggests excessive relief angle or insufficient chamfer. Inconsistent chip form across the cutting edge suggests uneven inner/outer edge intersection. The defect pattern almost always points to the specific sharpening error.
What equipment do I need to start sharpening gun drills in-house?
Minimum equipment: a universal tool and cutter grinder (or bench grinder with suitable speed range), a gun drill sharpening fixture with angle adjustment (V-block type or 50Q-type), diamond grinding wheels (120–180# rough, 240–400# finish), and an optical comparator or tool microscope for inspection. Total investment for a basic setup: $5,000–$15,000. For a CNC solution: $50,000–$200,000.
Gun drill sharpening parameters depend on drill diameter, carbide grade, workpiece material, and coating. The angles in this article are typical starting points for general-purpose steel drilling. Always verify with the drill manufacturer's recommendations. This article reflects industry knowledge as of 2026.