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Gray & Ductile Iron Deep Hole Drilling: Parameters and Tools

Gray cast iron is the ideal deep hole drilling material — its graphite flakes act as a built-in chip breaker and lubricant. Ductile iron, with its spherical graphite structure, is the opposite: it produces long, stringy chips and high cutting forces that punish tool edges. The same drilling parameters cannot be used for both, yet many shops try.

Material Fundamentals

Gray Cast Iron (GG)

Gray cast iron contains graphite in flake form. During machining:

PropertyEffect on Deep Hole Drilling
Graphite flakesAct as chip breakers — chips fragment naturally
Free graphiteProvides lubricating layer at the tool-chip interface
Low ductilityLow cutting forces, excellent chip evacuation
AbrasiveFlake tips cause mild abrasive wear on tool

Ductile (Nodular) Cast Iron (GGG)

Ductile iron contains graphite in spherical (nodular) form:

PropertyEffect on Deep Hole Drilling
Spherical graphiteNo chip-breaking effect — long, continuous chips
Higher strength1.5–2× the cutting forces of gray iron
Higher toughnessGreater heat generation at cutting zone
Work-hardening tendencyCan form built-up edge on insert
Ferritic vs. pearliticFerritic (130 HB) easier; pearlitic (250 HB) more abrasive
ParameterGray Iron (GG-25)Ductile Iron (GGG-50)
Tensile strength250 MPa500 MPa
Hardness180–220 HB170–230 HB
Elongation< 1%7–22%
Thermal conductivity~50 W/m·K~36 W/m·K
Machinability ratingExcellent (baseline)70–80% of gray iron

Warning: The chip formation difference is the single most important factor in deep hole drilling. Gray iron produces short, broken chips that evacuate easily through gun drill flutes or BTA drill tubes. Ductile iron produces long helical chips that can pack and clog — requiring chip breaker geometries, higher coolant flow, and more frequent monitoring.

Gun Drilling Parameters

Mitsubishi MAS Gun Drills (Carbide)

Drill DiameterGray Cast IronDuctile Cast Iron
Speed (SFM)Feed (IPR)
:---::----------::----------:
3–6 mm (Ø0.125–0.234")130–2600.004–0.008
6–10 mm (Ø0.250–0.391")195–3600.004–0.012
10–20 mm (Ø0.406–0.781")230–4250.008–0.016

Metric equivalents:

Drill DiameterGray Cast IronDuctile Cast Iron
Speed (m/min)Feed (mm/rev)
:---::----------::-------------:
3–6 mm40–800.10–0.20
6–10 mm60–1100.10–0.30
10–20 mm70–1300.20–0.40

Tungaloy Gun Drills (Carbide)

MaterialCutting Speed (m/min)Feed (mm/rev) by Drill Diameter
Ø3–5 mm
Gray iron (200 HB)20–500.05–0.15
Ductile iron (300 HB)20–500.03–0.10

Tip: Tungaloy's conservative values are suitable for older machines or less rigid setups. Mitsubishi's ranges reflect modern CNC deep hole drilling machines with high-pressure coolant. For production environments with rigid setups and through-coolant, use the Mitsubishi ranges. For job-shop environments or variable conditions, use Tungaloy's ranges as a conservative starting point.

BTA Drilling Parameters

Cutting Speed and Feed

MaterialConditionHardness (HB)Cutting Speed (m/min)Feed (mm/rev)
Gray iron (GG)Ferritic/pearlitic160–22070–1000.10–0.25
Ductile iron (GGG)Ferritic13050–800.10–0.25
Ductile iron (GGG)Pearlitic25050–800.10–0.38
Malleable ironPearlitic23050–800.10–0.25

Feed selection depends on drill diameter. As a general guideline:

Drill Diameter (mm)Feed Range (mm/rev)
20–400.10–0.18
40–800.12–0.22
80–1200.15–0.25
120–2000.18–0.30

Insert Grade Selection (ISCAR FINEBEAM)

The ISCAR BTA drilling catalogue recommends:

MaterialHardness (HB)First ChoiceFor Fracture ResistanceFor Wear Resistance
Gray iron (GG)160IC908IC806IC9025
Nodular iron (GGG)250IC908IC806IC9025
Malleable iron230IC908

Grade characteristics:

GradeCoatingSubstrateApplication
IC908CVD Al₂O₃ + TiCNMedium-hardFirst choice for cast irons — balanced wear and toughness
IC806CVD multilayerToughInterrupted cuts, casting skin, unstable conditions
IC9025CVD Al₂O₃HardHigh-speed finishing, abrasive wear conditions
IC520PVD TiAlNMediumGeneral purpose
IC948PVDToughSteel and cast iron in unstable conditions

Chipbreaker selection:

ChipbreakerFeed RangeApplication
G (General)StandardFirst choice for gray and ductile iron
HF (High Feed)1.5–2× standardHigher productivity, ductile iron with good chip breaking

Warning: For ductile iron, always use the HF (high feed) chipbreaker when feed rates exceed 0.20 mm/rev. Standard chipbreakers at high feed produce chips too thick to curl properly, leading to jamming in the drill tube.

CGI (Compacted Graphite Iron) Machining

Compacted graphite iron (CGI) has a vermicular graphite structure that falls between gray and ductile iron. It is increasingly used for diesel engine blocks, brake discs, and high-performance castings.

PropertyGray IronCGIDuctile Iron
Graphite formFlakeVermicularSpherical
Relative machinability100%~83%70–80%
Tool wear mechanismAbrasionAdhesion + abrasionAbrasion + deformation
Chip formationBrokenSemi-brokenContinuous
Cooling strategyStandard coolantMQL preferredStandard coolant

CGI Deep Hole Drilling Parameters

Based on research using carbide drills in CGI-450 (420 MPa UTS, 210–265 HB):

ParameterRecommended Value
Cutting speed (carbide)80–100 m/min
Feed (per rev)0.10–0.20 mm/rev
Coolant strategyMQL 5 mL/h or compressed air
Tool coatingMulti-layer PVD (TiAlN/AlCrN)
Expected tool life (4 mm drill)2,900+ holes (MQL)

CGI tool life is strongly affected by coolant strategy:

Coolant ConditionTool Life (holes, 4 mm Ø)
Dry639
Dry + compressed air2,969
MQL 5 mL/h2,948
MQL 20 mL/h2,685

Tip: For CGI deep hole drilling, MQL at low flow rates (5 mL/h) provides the best tool life. Flood coolant can reduce tool life in CGI by washing away lubricating graphite debris that would otherwise protect the cutting edge.

Coolant Parameters

BTA drilling of cast irons requires adequate coolant flow for chip evacuation.

Flow Rate Calculation

For BTA drilling: Q = 4.5 × D (L/min), where D = drill diameter in mm

Drill Diameter (mm)Coolant Flow (L/min)Coolant Pressure (MPa)
20902–3
401802–3
602702–3
803602–3
1004503–4
1506753–4
2009003–4

Coolant Type

CoolantGray IronDuctile IronCGI
Soluble oil (5–8%)✓ Recommended✓ Recommended⚠ Flood can reduce life
Straight oil✓ Good finish✓ Good✓ Acceptable
MQL✓ Best for CGI
Compressed air✓ Acceptable

Chip Control

Chip form directly determines success in deep hole drilling of cast irons.

Chip TypeGray IronDuctile IronCGI
Natural formShort broken chipsLong helical chipsSemi-broken chips
Target chip typeC-type (broken)C-type or short spiralC-type
Chip breaker neededStandardHF or aggressiveStandard to HF
Evacuation difficultyLowHighMedium

For ductile iron chip control:

  • Increase feed rate to promote chip breakage (0.15–0.30 mm/rev minimum)
  • Use chip breaker geometry with positive rake
  • Maintain coolant pressure at or above 2.5 MPa
  • Reduce feed if chips exceed 1/3 of tube cross-section

Problem Solving

ProblemLikely CauseSolution
Rapid flank wear (gray iron)Speed too high, abrasive graphiteReduce speed, switch to IC9025
Built-up edge (ductile iron)Low speed, no coatingIncrease speed, use PVD-coated grade
Chip packing (ductile iron)Inadequate chip breakingIncrease feed, use HF chipbreaker
Oversize boreInsert wear or vibrationCheck insert condition, adjust speed
Poor surface finishWorn guide padsReplace or index guide pads
Tool chatterFeed too low for materialIncrease feed rate
Broken inserts (ductile iron)Interrupted cut or hard spotSwitch to IC806 (tougher grade)
Coolant pressure dropClogged filter or chip blockageCheck filter, clear drill tube

Application Guide

ApplicationRecommended ProcessKey Parameters
Small holes < 20 mm Ø, gray ironGun drilling70–130 m/min, 0.10–0.40 mm/rev
Small holes < 20 mm Ø, ductile ironGun drilling50–100 m/min, 0.07–0.30 mm/rev
Medium holes 20–80 mm Ø, gray ironBTA drilling70–100 m/min, 0.12–0.22 mm/rev
Medium holes 20–80 mm Ø, ductile ironBTA drilling50–80 m/min, 0.12–0.25 mm/rev
Large holes > 80 mm Ø, gray ironBTA drilling60–90 m/min, 0.15–0.25 mm/rev
Large holes > 80 mm Ø, ductile ironBTA drilling50–70 m/min, 0.15–0.30 mm/rev
CGI (any diameter)Gun or BTA with MQL80–100 m/min, 0.10–0.20 mm/rev
Casting with skin/hard spotsBTA with IC806Reduce speed 20%, increase feed 10%

FAQ

What is the main difference between drilling gray iron and ductile iron?

Gray iron produces short, broken chips due to its flake graphite structure, making deep hole drilling relatively straightforward. Ductile iron produces long, continuous chips that require aggressive chip breakers, higher coolant flow, and tougher insert grades. Cutting speeds for ductile iron should be 30–40% lower than for gray iron.

What cutting speed should be used for gun drilling gray iron?

60–130 m/min depending on drill diameter, with larger diameters allowing higher speeds. For conservative starting conditions, begin at 60–80 m/min and increase based on tool wear observation.

ISCAR IC908 is the first choice for nodular/ductile iron (GGG). For interrupted cuts or casting skin, switch to IC806 (tougher). For high-speed finishing with abrasive wear, IC9025 is preferred.

How is coolant flow calculated for BTA drilling of cast iron?

Q = 4.5 × D (L/min), where D is the drill diameter in mm. For a 100 mm diameter BTA drill, minimum coolant flow is 450 L/min at 3–4 MPa.

Why is CGI harder to machine than gray iron?

CGI (compacted graphite iron) has vermicular graphite that does not provide the same chip-breaking or lubricating effect as gray iron's flake graphite. It also lacks the MnS layers that form on the cutting edge during gray iron machining, resulting in adhesion wear and higher cutting forces.

What is the best coolant strategy for CGI deep hole drilling?

MQL at low flow rates (5 mL/h) provides the best tool life in CGI — up to 2,948 holes in tests, versus 639 holes dry. Flood coolant can actually reduce tool life in CGI by washing away protective graphite debris.

What chip form should be targeted in ductile iron deep hole drilling?

C-type (broken) chips are ideal. If chips are long and stringy, increase feed rate or switch to an HF (high feed) chipbreaker geometry. Chips should not exceed 1/3 of the drill tube cross-section to ensure reliable evacuation.

What causes oversize bores in cast iron BTA drilling?

The most common causes are worn or chipped peripheral inserts, worn guide pads, or excessive vibration. Check insert condition first — a worn peripheral insert increases the effective cutting diameter.

Can gun drilling be used for CGI?

Yes, but with reduced parameters. Start at 80–100 m/min with 0.10–0.20 mm/rev feed. Use multi-layer PVD coated carbide tools. MQL at low flow rates significantly improves tool life compared to flood coolant.

What ISO standards govern cast iron machining?

ISO 513 classifies tungsten carbide grades for cast iron (K-group). ISO 185 covers gray iron grades (GG-15 to GG-40). ISO 1083 covers ductile iron grades (GGG-35 to GGG-80). ISO 513:2012 specifies the classification system for hard cutting materials including carbides for cast iron machining.

Conclusion

Gray iron and ductile iron require fundamentally different approaches in deep hole drilling. Gray iron's flake graphite structure makes it one of the most forgiving materials for gun drilling and BTA — natural chip breaking, low cutting forces, and good surface finish at speeds up to 130 m/min. Ductile iron's spherical graphite structure demands tougher insert grades (ISCAR IC908 first choice), aggressive chip breaker geometries (HF for feeds above 0.20 mm/rev), cutting speeds reduced by 30–40%, and higher coolant flow for reliable chip evacuation. CGI occupies a middle ground with machinability approximately 83% of gray iron, best addressed with MQL coolant strategy at low flow rates. Across all three cast iron types, the fundamental principle remains the same: chip control is the critical success factor, and the insert grade, chip breaker geometry, and coolant parameters must be selected to produce broken, easily evacuated chips.

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