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Gun Drill Regrinding: Angles, Equipment & Quality Checks

A gun drill does not wear out — it dulls. And a dull gun drill reground correctly will outperform a new gun drill reground poorly. The difference between a drill that delivers 20 metres of hole per regrind and one that scrapes the bore after five is almost never the carbide grade. It is the quality of the regrind.

When to Regrind

Flank Wear Measurement (VB)

Tool wear on gun drills is measured by the flank wear width (VB) on the cutting edge:

Drill DiameterMaximum VB Before Regrind
< 15 mm0.2–0.4 mm
> 15 mm0.4–0.6 mm

Regrind when VB reaches these limits. Continuing past these thresholds causes:

  • Rapid acceleration of wear (the cutting edge breaks down exponentially after the wear land passes a critical width)
  • Increased cutting forces that can separate the carbide tip from the steel shank
  • Bore surface degradation
  • Guide pad overheating and galling

Visual and Process Signs

SignIndicationAction
Dull appearance on cutting edgeWear approaching limitMeasure VB and schedule regrind
Surface finish degradation on holeEdge breakdownImmediate regrind — finish will worsen rapidly
Spindle power increase > 15%Increased friction from worn edgeRegrind before overload causes tip fracture
Chip form changing (longer, stringier)Edge geometry alteredRegrind — chip control depends on sharp edges
Audible change in cutting soundEdge breakdown or chippingStop cut and inspect immediately

Tip: Time-based regrinding — regrinding at a fixed interval based on metres drilled — is more reliable than waiting for visual signs of wear. Track metres per regrind for each drill diameter and material combination. When tool life per regrind drops by more than 20% from the established baseline, investigate the cause before regrinding again.

Gun Drill Geometry Overview

Key Angles

AngleSymbolFunction
Point angleθ1Determines chip thickness distribution and centring ability
Primary relief angleθ2Provides clearance behind the cutting edge — prevents rubbing
Secondary relief angleθ3Additional clearance behind primary relief — reduces friction
Rotating angleθ4Rotation applied between primary and secondary relief grinds
Honing angleθhEdge preparation angle — strengthens the cutting edge
Honing widthHWidth of the honed land on the cutting edge

Angle Effects on Cutting

ParameterEffect of IncreasingEffect of Decreasing
Point angle (θ1)Better centring, higher radial forceReduced centring, lower radial force
Primary relief (θ2)Less friction, weaker edgeStronger edge, more friction
Secondary relief (θ3)More chip clearance, weakened supportStronger edge support, less clearance
Honing width (H)Stronger edge, more cutting forceSharper edge, less edge strength

Regrinding Equipment

Diamond Wheel Specifications

OperationWheel TypeGrit SizeDiameter
Flank grindingDiamond cup wheel280–400100–200 mm
ThinningDiamond straight wheel280–400100–200 mm
Finishing/polishingCeramic lap with spray diamond600

Grit selection guide:

  • 280 grit — rough grinding, fast material removal
  • 360 grit — general-purpose regrinding (Accu-Finish "Gator" wheel)
  • 400 grit — finishing, better surface quality on cutting edge
  • 600 grit — fine finishing, polishing

Sharpening Fixture

The Accu-Finish gun drill sharpening fixture is the industry standard for manual regrinding. Key features:

ComponentSpecification
Slotted guide plateAligned to zero mark on table
Holder blockClamps drill level
Angle gate insert60.1° (#001-328)
Flat gate insert#011-329 (modifiable for different drill shapes)

CNC Tool Grinders

For high-volume regrinding, CNC tool and cutter grinders offer automated, repeatable geometry:

MachineKey FeatureBest For
ANCA MX7 ULTRAP-axis with Arobotech steady restSingle-clamping regrind, high precision
ANCA TX7+Interchangeable P-axisMixed production, flexible
Cuttermaster GS seriesFixed-angle fixtureManual regrind, small shops

Step-by-Step Regrinding Procedure

Step 1: Pre-Grinding Inspection

  • Measure VB to confirm regrind is needed
  • Inspect for chips or cracks in the carbide tip
  • Clean the drill thoroughly to remove coolant residue
  • Check guide pad condition — pads should be replaced if worn beyond 0.1 mm

Step 2: Primary Relief Grinding

Parameter3/4 Round Drill1/2 Round Drill
Down angle12°12°
Left table angle30°20°

Grind until all wear has been removed from the cutting edge. The "Y" dimension (distance from primary relief to the cutting edge) should be:

Drill DiameterRecommended Y
2.5–5 mm0.25–0.50 mm
5–10 mm0.50–0.75 mm
10–18 mm0.75–1.00 mm

Warning: Grinding the Y dimension too large removes excessive carbide and reduces the number of regrinds achievable from the tool. Grinding it too small leaves wear on the edge. Stop grinding as soon as the wear痕迹 is completely removed.

Step 3: Inner Relief

Parameter3/4 Round Drill1/2 Round Drill
Down angle12°12°
Right table angle20°15°
TargetMaintain D/4 offsetD/4 offset

The inner relief establishes the centre offset (typically D/4 from the drill centreline). This offset creates the single-lip cutting action that defines gun drilling.

Step 4: Secondary Relief

ParameterValue
Down angle20°
Table angle30° left (3/4 round) or 20° left (1/2 round)
Y dimension after stepMaintain 0.2–0.8 mm from primary relief

For Tungaloy drill types, secondary relief angle (θ3) ranges from -24° to -26° for DMX-F types, with the ridge line between primary and secondary relief brought to the drill centre.

Step 5: Front Clearance

ParameterValue
Down angle0° (centre)
Table angle0° (centre)
TargetGrind until the clearance face just reaches the bottom of the primary relief

Step 6: Thinning

Thinning (cross-thinning or X-type) re-establishes the chip splitting geometry at the drill point:

Drill Typeβ1β2β3Notes
DSX, DSE140–145°38–42°108–112°Standard cross-thinning
DSC-F132–138°38–42°108–112°Leave R 0.05–0.1 mm
DSC150–156°40–50°100–105°Leave 0.05–0.1 mm of secondary relief
DSC-FQ132–138°38–42°123–127°Radius R1–5

Wheel: 280–400 grit diamond straight-type, 100–200 mm diameter.

Step 7: Honing

Honing strengthens the cutting edge by removing the microscopic irregularities left by grinding:

ParameterSpecification
Honing angle (θh)-20°
Honing width (H)0.03–0.10 mm
Rough honingElectro-deposited diamond file, ~170 grit
Finish honingDiamond hand stick, 400–600 grit
Effect on tool lifeProper honing can extend tool life up to 300%

The honing width varies by application:

  • 0.03–0.05 mm — fine finishing, light cuts
  • 0.05–0.08 mm — general-purpose steel drilling
  • 0.08–0.10 mm — interrupted cuts, tough materials

Step 8: Peripheral Chamfer

ParameterValue
Angle from drill axis10–20°
WidthApproximately equal to the Y dimension
MethodHand rotate against the wheel

The chamfer removes the sharp corner at the periphery. The chamfer must not enter the primary relief area.

Angular Specifications by Drill Type

Tungaloy Series

TypePoint Angle θ1Primary Relief θ2Secondary Relief θ3Rotating Angle θ4
DSX, DSE-20°-7° to -10°
DSC-12°
DSC-F-25°-2°
DMX-F-25°-10° to -12°-24° to -26°
DSS-20°

Note: For DSX and DSE types, rotate the drill by 5° (θ4) after primary relief, then grind secondary relief. For DMX-F and DSC-F types, grind secondary relief without rotating the drill.

Quality Verification

Critical Specifications After Regrinding

CheckSpecificationMethod
Lip height difference≤ 0.02 mmDial indicator or sparkout grinding observation
Primary relief anglePer drill type specificationAngular gauge or pre-set fixture
Secondary relief anglePer drill type specificationAngular gauge
Centre offset (Y)Per drill diameter (D/4 to D/3)Calibrated magnifier or optical comparator
Honing width0.03–0.10 mmOptical comparator (20–50× magnification)
Edge conditionNo chips, cracks, or grinding burnsVisual inspection (10–20× magnification)
Thinning symmetrySymmetrical both sidesOptical comparator

Inspection Procedure

  1. Visual inspection — 10–20× magnification. Check for:

    • Chipped or fractured cutting edges
    • Grinding burns (discolouration indicates overheating)
    • Burrs on the cutting edge
  2. Lip height measurement — The most critical quality parameter. Both cutting edges must be within 0.02 mm of each other. Uneven lip height causes:

    • One-sided cutting load
    • Oversize holes
    • Rapid edge failure
  3. Geometry verification — Check primary and secondary relief angles against specification for the drill type.

  4. Test hole — Drill one test hole in the target material. Acceptable results:

    • Surface finish within specification
    • Chip form matches expected type (C-type or small broken chips)
    • Diameter within tolerance
    • Spindle power within 10% of baseline

Common Regrinding Errors

ErrorCauseConsequencePrevention
Asymmetric geometryUneven material removal during grindingOversize hole, deviationVerify lip height after grinding
Burnt edgeFeed rate too high, insufficient coolantReduced tool life, surface degradationReduce feed, ensure coolant flow
Excessive honingHoning width > 0.10 mmHigh cutting forces, poor surface finishMeasure honing width optically
Insufficient reliefRelief angle too smallEdge rubbing, overheatingVerify relief angle before removing from fixture
Offset errorInner relief ground incorrectlyPoor centring, hole deviationVerify D/4 offset dimension
Chamfer entering primary reliefChamfer ground too deepWeak peripheral edge, chippingStop chamfer before primary relief zone
Coolant hole blockageGrinding debris entering coolant passageCoolant starvation at cutting zoneClean coolant holes with compressed air after grinding

Regrinding Frequency and Tool Life

Expected Regrind Cycles

Drill TypeTypical RegrindsTotal Drilling Life per Tip
Standard carbide gun drill15–20150–400 metres (steel)
Small diameter (< 6 mm)10–1550–150 metres
Large diameter (> 20 mm)20–25200–500 metres
PVD-coated gun drill8–12100–250 metres

Factors Affecting Regrind Life

FactorEffect on Regrinds per Tip
Material hardness20% reduction per 100 HB above 200 HB
Coolant conditionUp to 50% reduction with contaminated coolant
Edge preparation (honing)Up to 300% improvement with proper honing
Grinding qualityUp to 100% variation between good and poor regrinds
Cutting parameters30% reduction if parameters exceed recommended range

Tip: Track regrind number on each drill by marking the shank with a numbered tag. This allows correlation between regrind quality and tool life, and prevents drills from being reground beyond the safe number of cycles. Most carbide tip fractures after repeated regrinding are predictable — they occur because the tip has been reground to the point where insufficient carbide remains to withstand cutting forces.

FAQ

When should a gun drill be reground?

Regrind when flank wear (VB) reaches 0.2–0.4 mm for drills under 15 mm, or 0.4–0.6 mm for larger drills. Time-based regrinding (every 10–20 metres depending on material) is more reliable than visual inspection.

280–400 grit diamond cup wheels for flank grinding and 280–400 grit diamond straight wheels for thinning. Use 600 grit or a ceramic lap with spray diamond for finishing. Coarser grits remove material faster but leave a rougher edge.

What is the most critical quality parameter after regrinding?

Lip height difference — the two cutting edges must be within 0.02 mm of each other. Uneven lip height is the most common cause of oversize holes and poor straightness after regrinding.

What is the Y dimension in gun drill regrinding?

The Y dimension is the distance from the primary relief grind to the cutting edge. It should be 0.25–1.00 mm depending on drill diameter (larger drills = larger Y). Grinding Y too large wastes carbide and reduces the number of regrinds; too small leaves wear on the edge.

What is the centre offset and why does it matter?

The centre offset (typically D/4 from the drill centreline) creates the single-lip cutting action of the gun drill. It is established during inner relief grinding. An incorrect offset causes poor centring, hole deviation, and uneven cutting edge loading.

How many times can a gun drill be reground?

Standard carbide gun drills can be reground 15–20 times before the carbide tip is consumed. Small diameter drills (under 6 mm) achieve 10–15 regrinds. Track regrind count — tip fracture after repeated regrinding is predictable.

Can I hand-grind a gun drill?

No. Gun drill regrinding requires a dedicated sharpening fixture (such as the Accu-Finish system) or a CNC tool grinder. Hand grinding produces asymmetric geometry that will cause the drill to deviate immediately on entry.

What honing is required after regrinding?

Honing at -20° angle with a width of 0.03–0.10 mm. Rough hone with 170 grit diamond file, finish with 400–600 grit diamond stick. Proper honing can extend tool life by up to 300% by removing grinding irregularities and strengthening the cutting edge.

Does regrinding affect the coolant hole?

If the regrind removes more material than necessary, the coolant hole exit can become enlarged or distorted, reducing coolant velocity at the cutting edge. Always inspect the coolant hole opening after regrinding. Clean any debris from the coolant hole with compressed air.

How do I verify regrinding quality?

Inspect under 10–20× magnification for edge chips, grinding burns, and burrs. Measure lip height difference (≤ 0.02 mm). Check the Y dimension against specification. Finally, drill a test hole and verify surface finish, diameter tolerance, and chip form.

Conclusion

Gun drill regrinding is a defined procedure that must be followed in sequence: primary relief, inner relief (establishing D/4 centre offset), secondary relief, front clearance, thinning, honing, and peripheral chamfer. The equipment requirements are specific — diamond cup wheels (280–400 grit), a dedicated sharpening fixture or CNC tool grinder, and optical measurement capability for lip height verification (≤ 0.02 mm tolerance). A gun drill properly maintained through this procedure will deliver 15–20 regrinds and hundreds of metres of drilling life. A drill reground with incorrect angles, uneven lip height, or missing honing will fail within the first few metres — and the failure will be attributed to the tool, not to the regrind quality that actually caused it.

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