Skip to content

Deep Hole Drilling of Plastics: Nylon, PEEK, Acetal, and PTFE

Engineering plastics are not just soft metals — they are a different class of material with different drilling physics. Nylon absorbs coolant and swells during drilling. PEEK melts if the cutting speed is too high. Acetal chips and cracks at hole exit if the feed is not reduced. PTFE deforms under the cutting edge instead of shearing — producing a rough surface that looks like it was torn rather than cut. Drilling plastics requires understanding the material's thermal and mechanical behavior — not applying metal-drilling rules.

Material Characteristics

Plastic Properties Affecting Drilling

PlasticMelting Point (°C)Thermal Conductivity (W/m·K)Coefficient of FrictionWater Absorption (24 hr)Hardness (Shore D)Tensile Modulus (GPa)
Nylon 6/6 (PA66)2550.250.2–0.41.2–2.5%80–852.8–3.5
PEEK3430.250.1–0.30.1–0.5%85–903.5–4.0
Acetal (POM-H)1750.300.15–0.350.2–0.5%80–852.8–3.2
PTFE (Teflon)3270.250.04–0.10< 0.1%55–650.4–0.8
PET (polyester)2550.200.2–0.40.1–0.3%80–852.5–3.5
PVC (rigid)80–100 (softening)0.150.3–0.50.1–0.3%75–852.5–3.5
Polycarbonate (PC)2670.200.2–0.40.1–0.2%80–852.3–2.5
UHMWPE1350.400.1–0.2< 0.1%60–650.5–1.0

Drilling Challenges by Plastic

PlasticPrimary ChallengeSecondary ChallengeTypical Applications
Nylon 6/6Water absorption — swells during wet drilling — diameter changes after dryingStringy chips — built-up edge on drillBushings — gears — guide rails — insulators
PEEKHigh melting point — heat concentrates at cutting edge — thermal damageExpensive material — scrap cost highMedical implants — aerospace — semiconductor — oil/gas seals
Acetal (POM)Brittle at exit — chipping and crackingLow thermal stability — heat causes degradationPrecision mechanical parts — valves — pump components
PTFEVery soft — cutting edge pushes material instead of cuttingLow thermal conductivity — heat builds up — material deformsChemical processing — seals — gaskets — liners
Polycarbonate (PC)Stress cracking — coolant chemical attackStringy chips — poor chip breakingTransparent parts — medical — lighting — glazing
UHMWPEVery soft — smearing — poor chip formationLow melting point — chips melt and re-adhereWear strips — liners — food processing

Tool Selection

Tool Geometry for Plastics

FeatureRecommendationWhy
Cutting edgeVery sharp — 3–8 µm edge radiusPlastics cut by shearing — a sharp edge produces a clean cut — a dull edge pushes and smears
Rake angleHigh positive rake — 15–25°Reduces cutting forces — helps chip flow — reduces heat generation
Relief angle10–15°Prevents rubbing — rubbing generates heat that melts or degrades plastic
Point angle90–120° (lower for soft plastics — higher for filled)Lower point angle reduces thrust — reduces exit burr in soft plastics
Flute finishMirror polished — chrome plated or DLC coatedPrevents chip adhesion — plastic chips stick to rough flutes
Flute designWide, open flutes — large chip spacePlastics produce continuous stringy chips — need large flute volume
Helix angleHigh helix — 30–40°Improves chip evacuation — reduces cutting forces
Margin widthNarrow margins (0.1–0.3 mm)Reduces friction against hole wall — reduces heat generation

Coating Selection

CoatingFriction ReductionWear ResistanceBest ForNot Recommended For
DLC (diamond-like carbon)Excellent — lowest frictionGoodPTFE — UHMWPE — general plasticAbrasive-filled plastics
Chromium platingExcellent — smooth surfaceGoodNylon — acetal — generalHigh-temperature plastics
TiNModerateGoodFilled plastics — abrasive gradesSoft plastics (BUE formation)
Uncoated carbideModerateGoodMost plastics — general purposeSticky plastics (chip adhesion)
CVD diamondVery low frictionExcellentHighly abrasive filled plasticsUnfilled plastics (overkill)

Tool Material

Tool MaterialBest ForNotes
Micro-grain carbide (0.5–0.8 µm)All engineering plastics — standard choiceSharp edge possible — good wear resistance — best all-around
Ultrafine-grain carbide (0.2–0.5 µm)Filled plastics — abrasive gradesBetter edge retention — can produce very sharp edge
HSS (M42, T15)Short runs — soft plastics — low productionLower cost — sharp edge — but rapid wear in filled grades
PCD (polycrystalline diamond)High-production — abrasive filled plasticsVery long tool life — excellent surface finish — expensive

Drilling Parameters

PlasticCutting Speed (m/min)Feed Rate (mm/rev)Coolant Pressure (bar)Coolant TypeExpected Tool Life (m)
Nylon 6/6 (unfilled)80–1500.05–0.1520–50Water-based coolant 5–7% or mist/air50–200+
Nylon 6/6 (glass-filled)40–800.04–0.1030–60Water-based coolant 5–7%10–40
PEEK (unfilled)40–800.03–0.0840–80Water-based coolant 5–7% — high lubricity15–50
PEEK (glass/carbon-filled)20–500.03–0.0650–80Water-based coolant 7–8% — EP additives5–20
Acetal (POM)100–2000.05–0.1520–50Water-based coolant 5–7% or air100–300+
PTFE (unfilled)50–1200.03–0.1020–40Water-based coolant 5–7% or air/mist30–100
PTFE (filled)30–800.03–0.0830–50Water-based coolant 5–7%10–40
Polycarbonate60–1200.04–0.1230–50Water-based coolant 5–7% — avoid aggressive chemicals30–80
UHMWPE80–1500.05–0.1520–40Water-based coolant 5–7% or air/mist50–200+

Parameter Adjustment Guidelines

ConditionAdjustmentReason
Melting or smearing on drillReduce cutting speed 30–50% — increase coolant flowHeat generation too high — plastic melts at cutting edge
Rough surface finish in holeIncrease cutting speed — reduce feed — check tool sharpnessSmearing from dull tool — or feed too high for clean shear
Chipping at hole exit (acetal, polycarbonate)Reduce feed to 30–50% for last 3–5 mm — support exitBrittle plastics fracture at breakout if feed is too high
Oversize holeCheck thermal expansion of plastic — measure at room temperaturePlastic expands during cutting — contracts after cooling — measure after stabilization
Undersize hole (nylon, moisture-sensitive)Check water absorption — measure after drying if requiredNylon swells when wet — bore shrinks after drying
Chip packing in flutesIncrease coolant pressure — use polished flutes — reduce depth-to-diameter ratioPlastic chips are stringy and sticky — need high pressure and smooth flutes

Coolant Requirements

PlasticCoolant RecommendationCoolant ConcentrationSpecial Considerations
Nylon 6/6Water-based semi-synthetic5–7%Nylon absorbs water — dimension changes after drying — consider dry drilling or mist if dimensional stability critical
PEEKWater-based semi-synthetic — high lubricity5–8%PEEK has low thermal conductivity — adequate coolant flow essential — mist cooling may be insufficient for deep holes
Acetal (POM)Water-based semi-synthetic or air/mist5–7%Acetal is sensitive to chemical attack — verify coolant compatibility — avoid high-pH coolants
PTFEWater-based semi-synthetic or air/mist5–7%PTFE is chemically inert — compatible with most coolants — coolant mainly needed for chip evacuation
PolycarbonateWater-based synthetic only5–7%Polycarbonate stress-cracks in contact with alkaline solutions — avoid high-pH coolants — use neutral pH synthetic
UHMWPEWater-based or air/mist5–7%Low melting point — coolant essential for heat removal — mist may not be adequate

Quality Considerations

Quality IssuePlastic-Specific CauseMitigationInspection Method
Hole diameter variation — wet vs dryNylon absorbs water — swells when wet — shrinks when dryMeasure after drying if part will be used dry — or control moisture contentAir gauge — measure at controlled humidity
Surface finish — rough or tornDrill edge not sharp enough — plastic smears instead of shearingUse sharper edge — increase cutting speed — verify edge conditionProfilometer — Ra target < 1.6 µm
Hole exit chippingBrittle fracture at breakout — acetal — polycarbonateReduce feed at exit — support exit face — use lower point angleVisual — microscope
Thermal damage — white ring around holeHeat from cutting degrades plastic — PEEK — acetalReduce cutting speed — increase coolant flow — check drill wearVisual — hardness test near hole
Burr at hole exitSoft plastic pushed out instead of cut — PTFE — UHMWPEReduce feed at exit — use back-up support — sharp edgeVisual — deburring if needed
Hole taper — entry larger than exitDrill deflection in soft plastic — tool pressure pushes drill awayReduce feed — use guide bushing — stiffer drill — shorter overhangBore gauge — entry vs exit diameter
Stringy chip wrapping around drillContinuous chip — not breakingIncrease feed — use chip breaker geometry — high coolant pressure to evacuateChip form observation
Stress cracking — polycarbonateCoolant chemical attack — stress concentration at holeVerify coolant compatibility — use stress-relieved material — reduce feedVisual — crack detection

FAQ

What is the best drill geometry for drilling plastics?

The best drill geometry for plastics features: very sharp cutting edge (3–8 µm edge radius — a sharp edge shears the plastic cleanly — a dull edge pushes and smears — producing a rough surface and generating excessive heat). High positive rake angle (15–25° — reduces cutting forces — helps chip flow — reduces heat generation — plastics have low thermal conductivity and heat buildup is damaging). High helix angle (30–40° — improves chip evacuation — essential for continuous stringy plastic chips — standard twist drill helixes of 20–25° are inadequate for deep holes in plastics). Polished flutes (mirror finish or DLC/chrome coated — plastic chips adhere to rough flute surfaces — polished flutes prevent adhesion and improve chip flow). Narrow margins (0.1–0.3 mm — reduces friction against the hole wall — reduces heat generation from rubbing). The critical difference from metal-drilling geometry is the cutting edge sharpness — a drill that works well for steel will seem dull and produce a torn, smeared surface when used on plastic. Dedicated plastic-drilling tools with sharper edges and polished flutes are essential for quality results.

What cutting parameters should I use for deep hole drilling PEEK?

PEEK requires careful parameter selection because it has a high melting point (343°C) but low thermal conductivity (0.25 W/m·K) — heat concentrates at the cutting edge and cannot escape through the workpiece. Recommended parameters for unfilled PEEK: cutting speed 40–80 m/min (start at 50 m/min and adjust upward — if the hole surface shows signs of melting or a white heat-affected zone, reduce speed 20%). Feed rate 0.03–0.08 mm/rev (higher feed within range for roughing — lower feed for finishing — consistent feed is critical — don't let the tool dwell). Coolant pressure 40–80 bar (water-based coolant at 5–7% concentration — adequate coolant flow is essential — mist cooling is not sufficient for deep holes in PEEK — the heat generated cannot be removed by mist alone). For glass or carbon-filled PEEK grades: reduce cutting speed to 20–50 m/min (the filler is abrasive — higher speed accelerates tool wear — the filler also reduces the plastic's tendency to melt). Tool life for unfilled PEEK: 15–50 m of hole length per drill — for filled grades: 5–20 m. Use DLC-coated or uncoated micro-grain carbide with sharp edge — and replace the drill at the first sign of surface finish degradation.

How do I prevent hole exit chipping when drilling acetal?

Acetal (POM) is prone to chipping and cracking at the hole exit because it is more brittle than many other plastics — especially at room temperature. To prevent exit chipping: reduce feed rate at exit (program the last 3–5 mm of hole depth at 30–50% of the drilling feed rate — this reduces the thrust force at breakout — the lower force reduces the tendency for brittle fracture). Support the exit face (clamp a backing plate against the exit face — this supports the material around the hole and prevents the crack from propagating). Use a lower point angle (a 90–100° point angle reduces the thrust force compared to a standard 118–130° point — lower thrust = less exit pressure). Use sharp cutting edge (a sharp drill shears through the last material cleanly — a dull drill pushes and bends the material before breaking through — the bending action causes chipping). Pre-warm the material (acetal at 40–50°C is less brittle than at room temperature — if practical, warm the workpiece — this reduces chipping tendency significantly). If chipping still occurs after these measures, add a chamfer at the hole exit before drilling through — the chamfer removes the fragile edge that chips — creating a clean breakout.

Can I use standard metal-cutting coolants for drilling plastics?

Standard water-based metal-cutting coolants can be used for most engineering plastics but verify compatibility: Nylon — compatible with standard semi-synthetic coolants at 5–7% — but nylon absorbs water — parts will swell slightly during wet drilling — if dimensional stability after drying is critical, consider dry drilling or using mist coolant. PEEK — compatible with standard semi-synthetic coolants — adequate coolant flow is essential (PEEK generates significant heat). Acetal — verify coolant pH (acetal is sensitive to high-pH coolants — avoid coolants with pH > 9.5 — some coolants contain chemicals that attack acetal — check with coolant supplier). Polycarbonate — use only neutral-pH synthetic coolants (polycarbonate stress-cracks in contact with alkaline solutions — standard semi-synthetic coolants with pH > 8.5 can cause cracking — use a synthetic coolant formulated for plastics). For all plastics: avoid coolants containing aggressive biocides that may attack the plastic — check with the coolant manufacturer for plastic compatibility. For many short-hole applications in unfilled plastics, air or mist coolant is sufficient — chip evacuation is often the primary function of coolant in plastic drilling, not cooling (because the plastic itself does not conduct heat well — the coolant removes heat by convection).

Why do holes drilled in nylon change size after drilling?

Nylon absorbs water from water-based coolant — the nylon swells as it absorbs moisture, increasing the bore diameter. After drilling, if the part is dried (either by ambient drying or by heat treatment), the nylon shrinks as it loses moisture — the bore diameter decreases. The diameter change can be significant: nylon 6/6 absorbs 1.2–2.5% water in 24 hours of immersion — this translates to approximately 0.3–0.6% linear expansion. For a 10 mm hole: the bore could change by 0.03–0.06 mm between the wet (as-drilled) and dry (after storage) condition — significant for precision applications. To manage this: measure drilled holes after the part has reached equilibrium with its service environment (if the part will be used dry, dry the part after drilling and measure the bore in the dry condition). If the part will be used in a humid environment, condition the part to the expected humidity before final measurement. For precision bores in nylon, consider drilling slightly undersize (0.03–0.05 mm smaller than target for a 10 mm hole) to allow for swelling if the part will be used wet — or oversize if it will be used dry. The same effect occurs to a lesser degree in other moisture-absorbing plastics (nylon, some polyurethane grades) — PTFE, PEEK, acetal, and polycarbonate have very low water absorption and negligible dimensional change from moisture.


Drilling engineering plastics requires a different approach than drilling metals. Use sharp cutting edges (3–8 µm radius) with high positive rake angles and polished flutes. Run higher cutting speeds (40–200 m/min depending on plastic) with moderate feeds — reduce speed if melting occurs. Use coolant for chip evacuation and heat removal — but verify coolant compatibility with the specific plastic (polycarbonate requires neutral-pH synthetic coolant — acetal is sensitive to high pH — nylon absorbs water and swells). Manage exit chipping in brittle plastics by reducing feed at breakout. For nylon bores, account for dimensional change from moisture absorption — measure in the service condition. With the right tool geometry and parameters, deep hole drilling in plastics produces clean, accurate holes. This article reflects industry practice as of 2026.

Deep Hole Drilling Hub — Your Trusted Third-Party Industry Resource