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Engineering · Machining guide

How to machine Ti-6Al-4V (Grade 5).

Titanium 6Al-4V is the aerospace and medical workhorse — but its low thermal conductivity, work-hardening tendency, and chemical reactivity at high temperature make it tricky to machine well. This guide covers cutting parameters, tool selection, coolant strategy, and the fire-safety considerations specific to titanium chips.

Common AMS
4928 / 4911
UTS (annealed)
950 MPa
Density
4.43 g/cc
Machinability
22 / 100

01 · Why it’s hard

Heat, work-hardening, chemistry.

Titanium 6Al-4V’s thermal conductivity is 6.7 W/m·K — even lower than Inconel. Heat concentrates at the tool edge instead of escaping into the chip. The alloy also work-hardens rapidly under cutting pressure, and at temperatures above ~500 °C it reacts with carbon (in the tool) and oxygen (in the air).

The combination is unforgiving. Run too fast and the cutting edge weakens; run too slow and the tool dwells, the workpiece work-hardens, and the next pass starts with harder material. Climbing tool wear correlates with workpiece carbon contamination — meaning the part itself starts to absorb tool material, with downstream consequences for fatigue performance.

02 · Tool selection

Carbide. Coated. Sharp.

  • Sub-micron-grain coated carbide

    PVD AlTiN or TiAlN coating. Sub-micron grain for better edge integrity. Avoid CVD coatings — they can fracture under titanium’s cyclic chip loads.

  • Sharp positive-rake geometry

    Honed cutting edges (0.0004–0.0008″) — sharp enough to cut clean, robust enough not to chip. Negative rake creates more heat and is wrong for titanium.

  • Avoid HSS

    High-speed steel doesn’t survive titanium’s heat. Tap operations are the only common HSS use, and even those wear quickly.

  • Solid carbide end mills, 4-flute or 6-flute

    Standard for most milling. 4-flute for harder-to-evacuate features, 6-flute for higher MRR on open surfaces.

  • PCD for finishing on Ti ELI / medical work

    Polycrystalline diamond inserts in finish-pass conditions. Ultra-clean surface and dimensional consistency for surgical implants.

03 · Cutting parameters

Numbers that work.

Operation Tool SFM IPT / IPR DOC
Roughing turn Coated carbide 60–100 0.012–0.018 IPR 0.060–0.150″
Finishing turn Coated carbide 100–180 0.005–0.010 IPR 0.020″
End mill (rough) Solid carbide 150–250 0.003–0.006 IPT 0.5–1.0× dia
End mill (finish) Solid carbide 200–300 0.001–0.003 IPT 0.030″
Drilling Solid carbide 60–120 0.002–0.005 IPR
Tapping HSS or carbide 10–25
Reaming Coated carbide 30–60 0.001–0.002 IPR

Ti-6Al-4V machines about 4–6× faster than Inconel 718 at the cutting edge but still 1/3 the SFM of stainless. Don’t use stainless feeds and speeds in titanium.

04 · Coolant + chip safety

Flood it. Manage chips.

  • Flood coolant, high pressure

    High-pressure through-tool (1000+ PSI when available) is best. Coolant breaks chips and cools the cutting edge. Mineral-based water-soluble coolant with EP additives. Avoid chlorinated additives on Ti work — chloride can drive stress-corrosion cracking.

  • Titanium chips are flammable

    Fine, dry titanium chips burn aggressively at high temperature. A dry tap operation that overheats can ignite chip turnings. Our larger Swiss machine (the Tsugami B0326II) has integrated fire suppression for this reason. For mill operations, keep coolant flowing and don’t let chip pack-in form.

  • Don’t mix titanium chips with steel chips

    Cross-contamination is a real concern for medical and aerospace work. Dedicated chip carts and disposal procedures are standard.

  • Dry machining works for short cycles

    For quick prototyping or single-pass operations on small parts, dry can work — but only with proper ventilation and immediate chip disposal. Production work runs flooded.

05 · ELI / Grade 23 — medical implants

Tighter rules for surgical work.

  • No carbon contamination from tools

    Use dedicated tooling, not shared with carbon-steel work. Carbon pickup at the cutting edge is a real concern for fatigue-rated implant material.

  • PCD inserts for final finish

    Diamond inserts give the cleanest possible surface for biocompatibility and validation work.

  • Validation-aware coolant

    Some medical-device customers require specific coolant chemistry (low-residue, sulfur-free, biocidal-controlled). Confirm coolant brand and lot before production runs on validated material.

  • AMS 4930 for Grade 23 bar

    Extra-low-interstitial Ti-6Al-4V — same chemistry, tighter limits on iron, oxygen, carbon. Medical implant standard (bars, forgings, rings, annealed). See the AMS spec cross-reference for related specs.

Technically reviewed by the True Precision Machining engineering team · Last reviewed June 2026

Standards referenced: AMS 4928, AMS 4911, AMS 4930

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