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Deep Hole Drilling of Copper and Copper Alloys

Copper does not cut — it tears. A pure copper chip under a microscope shows a surface of ductile rupture, not clean shear. The chip is continuous, gummy, and long enough to wrap around the drill shank three times before it breaks under its own weight. In deep hole drilling, where the chip must travel the full length of the bore to be evacuated, a continuous copper chip is a guaranteed tool failure. The solution is not to cut the material more efficiently — it is to force the chip to break at the cutting edge by controlling the feed, the coolant pressure, and the tool geometry with precision that exceeds what is needed for steel. Copper deep hole drilling is a test of process discipline. Get the parameters right and the holes are clean, straight, and smooth. Get them wrong and the tool breaks within seconds of entering the material.

Copper Alloy Families and Machinability

Machinability Classification

ClassificationRating (% of free-cutting brass)ExamplesDeep Hole Drilling Difficulty
Free-machining80–100%C36000 (leaded brass), C14500 (tellurium copper), C14700 (sulphur copper)Low
Moderate40–60%C18200 (chromium copper), C15000 (zirconium copper), CuNi30Moderate
Difficult20–30%C11000 (ETP copper), C10200 (OFHC), C10100 (oxygen-free)High
Very difficult10–20%C17200 (beryllium copper), CuCr1Zr, tough-pitch copperVery high

Key Copper Alloys for Deep Hole Drilling Applications

AlloyDesignationTensile StrengthConductivity (% IACS)ApplicationDrilling Challenge
ETP copperC11000220–260 MPa101%Cooling plates, electrical busbarsSevere BUE, long chips
OFHC copperC10200220–270 MPa102%Vacuum components, electronicsSevere BUE, chip control
Deoxidised copperC12000/C12200 (DHP)220–280 MPa85–95%Heat exchangers, plumbingModerate BUE
Chromium copperC18200350–450 MPa80%Resistance welding electrodesModerate, lower BUE
Zirconium copperC15000350–420 MPa93%High-temp electricalModerate
CuCr1Zr450–550 MPa80–92%Rocket engines, mouldsModerate — alloy hardens
Beryllium copperC172001,200–1,400 MPa22–25%Downhole tools, bearingsLow BUE, high tool wear
CuNi30350–450 MPa5–10%Marine heat exchangersModerate, work-hardening
Tellurium copperC14500250–300 MPa93%Electrical connectorsEasy — free machining
Leaded brassC36000340–470 MPa26%Fittings, valvesEasy — chips break naturally

WARNING

The machinability rating of copper is not about tool wear — it is about chip control. Free-machining copper alloys contain lead, tellurium, or sulphur that act as chip breakers by creating stress raisers in the chip. Pure copper has none of these. A gun drill that lasts for 500 holes in C14500 tellurium copper may last only 5 holes in C11000 ETP copper before a chip jam breaks the tool. Do not assume that parameters from one copper alloy transfer to another.

Built-Up Edge and Chip Control

The BUE Problem

Built-up edge (BUE) is the dominant failure mode in copper deep hole drilling:

BUE ParameterCharacteristic
Formation temperature150–300°C (lower than steel)
Adhesion strengthHigh — copper welds to carbide
BUE stabilityUnstable — builds, breaks off, re-forms
Effect on bore surfaceTearing, poor finish, oversize holes
Effect on tool lifeEdge chipping when BUE breaks away

Chip Morphology Control

Chip TypeCharacteristicDesirabilityHow to Achieve
Long ribbon chipContinuous, snarled, metres longNeverLow feed, dull tool, insufficient coolant
Spiral chipCoiled, diameter > hole diameterAcceptableModerate feed, sharp tool
C-shaped chipShort, curved, compactIdealOptimised feed + coolant pressure
Segmented chipBroken into short piecesGoodHigh feed + vibration assistance

Feed rate is the dominant parameter controlling chip morphology in copper drilling. The 2025 optimisation study on oxygen-free copper (TU1) found that:

  • Feed rate has the most significant effect on chip shape (p < 0.0001)
  • Cutting speed has a secondary effect (p = 0.0254)
  • Coolant pressure has a tertiary effect (p = 0.3968)

Chip Breaking Strategies

StrategyMechanismEffectiveness
Increase feed rateThicker chip bends and breaks more easilyMost effective single parameter
High coolant pressure (> 2.0 MPa)Hydraulic force breaks chip, flushes segmentsEssential — prevents packing
Ultrasonic vibration assistanceIntermittent cutting segments chip at sourceVery effective for pure copper
Step feed (peck drilling)Retract tool to break chipReduces productivity
Chip breaker geometryGroove on rake face curls chip to breakingTool must be custom-ground

Tool Selection and Geometry

Carbide Grade Selection

Copper TypeRecommended GradeCoatingWhy
Pure copper (C11000, C10200)K10–K15Uncoated or DLCSharp edge essential — coatings can increase BUE
Chromium/zirconium copperK15–K20TiAlN or uncoatedModerate wear resistance needed
Beryllium copper (C17200)K20–K30TiAlN or AlCrNHigh hardness requires tougher grade
CuNi30K15–K20TiAlNWork-hardening requires wear resistance
Brass / free-machiningK10–K15UncoatedLow wear — coating unnecessary

Edge Geometry for Copper

Geometry FeatureRecommendedWhy
Rake angle8–15° positivePositive rake reduces cutting forces and BUE formation
Point angle110–120°Lower angle reduces thrust, helps chip curl
Edge preparationSharp (0.005–0.015 mm hone)Sharp edge cuts cleanly; honed edge increases BUE
Flute finishPolished (< Ra 0.2 µm)Reduces friction for chip evacuation
MarginsNarrow (0.2–0.4 mm)Reduces friction against bore wall
Clearance angles12–18°Generous clearance prevents rubbing

TIP

A polished flute is worth more than any coating in copper deep hole drilling. Copper chips adhere to rough surfaces, building up layer by layer until the flute is blocked. A gun drill flute polished to Ra 0.1 µm or better will evacuate chips reliably; a standard-ground flute at Ra 0.4–0.8 µm will accumulate copper build-up within the first 50 mm of drilling. Diamond paste polishing of the flute after regrinding is standard practice in copper gun drilling shops.

Gun Drilling Parameters

DiameterCopper TypeCutting Speed (m/min)Feed (mm/rev)Coolant PressureExpected Chip Form
3–6 mmPure copper (C11000, C10200)30–500.008–0.0252.0–2.5 MPaC-shaped to spiral
3–6 mmCuCr1Zr, CrCu40–600.010–0.0301.8–2.4 MPaC-shaped
3–6 mmBeCu (C17200)20–350.005–0.0151.5–2.0 MPaSegmented
3–6 mmBrass (C36000)60–1000.020–0.0601.0–1.5 MPaNatural chip breaking
6–12 mmPure copper35–550.015–0.0352.0–2.5 MPaC-shaped
6–12 mmCuNi3030–500.012–0.0301.5–2.0 MPaSegmented
6–12 mmFree-machining copper80–1200.030–0.0801.0–1.5 MPaShort, broken
12–20 mmPure copper30–500.020–0.0452.0–2.5 MPaC-shaped to spiral

Optimised Parameters from Research

The 2025 multi-objective optimisation study on TU1 oxygen-free copper (10 mm diameter, L/D ≈ 50) using RSM and genetic algorithm found:

ParameterOptimal ValueEffect on Chip Evacuation
Cutting speed47.1 m/minSecondary influence (p = 0.0254)
Feed rate0.019 mm/revDominant influence (p < 0.0001)
Coolant pressure2.4 MPaTertiary influence (p = 0.3968)
ResultChip evacuation coefficient 3.30Predominantly C-shaped chips

BTA Drilling Parameters

For larger diameters in copper alloys, BTA drilling is used:

DiameterCopper TypeCutting Speed (m/min)Feed (mm/rev)Coolant FlowCoolant Pressure
20–40 mmPure copper25–450.04–0.10200–350 L/min1.5–2.0 MPa
20–40 mmCuCr1Zr30–500.05–0.12200–350 L/min1.2–1.8 MPa
20–40 mmBrass60–1000.08–0.20150–250 L/min0.8–1.2 MPa
40–80 mmPure copper20–350.06–0.15300–500 L/min1.2–1.8 MPa

BTA drilling of copper requires careful attention to the guide pads. The high ductility of copper can cause material to smear onto the carbide pads, reducing the bore burnishing effect and creating a poor surface finish. PCD-tipped guide pads are recommended for production quantities in pure copper.

Coolant Strategy

Copper-Specific Coolant Requirements

ParameterRecommendationWhy
Coolant typeNeat oil (high EP) or syntheticWater-based coolant increases BUE in copper
Pressure2.0–2.5 MPa (300–360 PSI) for pure copperHydraulic chip breaking
Flow rateAdequate for chip transportCopper chips are heavy — high velocity needed
Filtration≤ 20 µmCopper fines are adhesive — prevent recirculation
Temperature control20–30°CThermal stability for precision holes
Chlorine-freeRequired for electrical applicationsChlorine causes corrosion in electrical contacts

Coolant Pressure vs. Chip Form

Coolant PressureChip FormTool Life
< 1.5 MPaLong ribbons, frequent jammingVery poor — tool breakage likely
1.5–2.0 MPaMixed spiral and C-shapedPoor-moderate
2.0–2.4 MPaPredominantly C-shapedGood
> 2.4 MPaShort C-shaped and segmentedBest

Applications

Copper Cooling Plates

ApplicationMaterialHole PatternKey Requirement
Furnace cooling stavesOFHC or DHP copperParallel channels, 10–25 mm diameterLeak-tight, good thermal contact
Heat shields (furnace)Pure copper (> 99.95% Cu)Deep-drilled cooling channelsNo welding joints — minimises leakage
Power electronics coolingC11000 or CuCr1ZrSmall diameter, tight pitchPositional accuracy, surface finish
Fusion reactor componentsCuCrZrDeep, small-diameter channelsPrecision, defect-free bores

Electrical Components

ComponentMaterialDrilling Requirement
Resistance welding electrodesC18200 (CrCu)Cooling channel through centre
Electrical busbarsC11000Connection holes, deep and accurate
Switchgear componentsC14500 (TeCu)Precision small holes
Rotor short circuit ringsOFHC copperDeep holes for connector pins

Heat Exchangers

ApplicationMaterialCondition
Marine condensersCuNi30Seawater corrosion resistance
Desalination plantsCuNi30 or DHP copperTube sheet and support plate holes
Hydraulic coolersBrass or CuNiSmall diameter deep holes

Surface Finish and Quality

Expected Results

Copper TypeAs-Drilled Ra (Gun Drilling)After Reaming RaApplication
Pure copper (C11000)0.8–1.6 µm0.4–0.8 µmCooling plates
CuCr1Zr0.6–1.2 µm0.3–0.6 µmHigh-performance cooling
Beryllium copper0.3–0.6 µm0.15–0.3 µmDownhole tools
Brass0.4–0.8 µm0.2–0.4 µmFittings, connectors

Common Defects

DefectCauseFix
Built-up edge on toolLow cutting speed, insufficient coolantIncrease speed, increase coolant pressure
Oversize boreTool deflection from BUEReduce feed, sharpen tool, check BUE
Rough bore surfaceBUE fragments embedded in boreIncrease coolant pressure, polish flutes
Chip packing (tool breakage)Continuous chip, insufficient pressureIncrease feed, increase coolant pressure, use peck cycle
Bell-mouth at entryAbrasive entry burr from ductile chipUse entry bush, chamfer entry
Spiral chip in boreFeed too lowIncrease feed rate

FAQ

Q: Why is copper difficult to deep hole drill? Copper is highly ductile and forms long, continuous chips that are difficult to evacuate from deep holes. It also readily forms built-up edge (BUE) because copper welds to the cutting edge at cutting temperatures. These two problems — chip evacuation and BUE — are the primary failure modes in copper deep hole drilling.

Q: What cutting speed is recommended for gun drilling pure copper? 30–50 m/min for diameters 3–20 mm. The 2025 optimisation study on oxygen-free copper found 47.1 m/min to be optimal for 10 mm diameter holes with L/D ≈ 50. Lower speeds increase BUE risk; higher speeds increase heat without improving chip breaking.

Q: What coolant pressure is needed for deep hole drilling copper? Minimum 2.0 MPa (300 PSI), recommended 2.0–2.5 MPa for pure copper. For free-machining copper alloys and brass, lower pressure (1.0–1.5 MPa) is acceptable. The high pressure provides hydraulic chip breaking — the coolant jet physically breaks the ductile chip into manageable segments.

Q: What is the best carbide grade for gun drilling copper? K10–K15 uncoated carbide for pure copper provides the sharpest edge, which is essential for clean cutting. DLC (diamond-like carbon) coating can reduce BUE by providing a non-stick surface. Avoid TiAlN for pure copper — it increases BUE formation.

Q: How does feed rate affect chip formation in copper drilling? Feed rate is the dominant parameter controlling chip morphology. Higher feed rates produce thicker, more rigid chips that break into C-shaped segments. Lower feeds produce thin, ribbon-like chips that wrap around the tool. The optimal feed for pure copper gun drilling is 0.019–0.035 mm/rev.

Q: Can gun drilling be used for beryllium copper? Yes, but with caution. C17200 beryllium copper at full hardness (35–42 HRC) requires K20–K30 carbide, reduced speeds (20–35 m/min), and lower feeds (0.005–0.015 mm/rev). BUE is less of a problem than with pure copper, but tool wear is higher due to the material's hardness.

Q: What chip form should be targeted in copper deep hole drilling? C-shaped chips are ideal. They are short, curved segments that flush easily through the bore and coolant chip pan. Spiral chips are acceptable if they break into short coils. Long ribbon chips indicate a problem — reduce speed or increase feed.

Q: Can ultrasonic vibration assistance help with copper deep hole drilling? Yes. Research on ECu 57 electrolytic copper (Heisel et al., CIRP Annals 2008) showed that 20 kHz ultrasonic axial vibration significantly improves chip form and reduces drilling torque. Vibration assistance is particularly effective for pure copper where chip breaking is most difficult.

Q: What are the main applications for deep-drilled copper components? Cooling plates for furnaces and power electronics (gun-drilled channels for water cooling), resistance welding electrodes (central cooling bore), electrical busbars (connection holes), heat exchanger tube sheets, and marine condenser components.

Q: Is brass easier to deep hole drill than pure copper? Yes, significantly. Free-machining brass (C36000) contains lead that acts as a chip breaker, producing short, broken chips naturally. Brass can be drilled at 60–100 m/min with standard gun drills, standard coolant pressure, and without special chip breaking measures.

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