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Ti-6Al-4V (Grade 5) Titanium

Comprehensive technical guide to Ti-6Al-4V (Grade 5) titanium alloy — the most widely used titanium alloy in aerospace, medical, and industrial applications. Properties, chemical composition, machining guidelines, and specifications.

Grade 5Ti-6Al-4V
PropertyValue
Density4.43 g/cm³
Tensile Strength950 MPa
Yield Strength880 MPa
Hardness36 HRC
Max Temp400°C

Quick Answer

What is Ti-6Al-4V (Grade 5) titanium?
Ti-6Al-4V is an alpha-beta titanium alloy containing 6% aluminium and 4% vanadium. It is the most commonly specified titanium alloy, accounting for approximately 50% of global titanium consumption. Grade 5 offers an outstanding strength-to-weight ratio, excellent corrosion resistance, and proven biocompatibility, making it the default choice for aerospace structures, medical implants, and high-performance industrial components.

Chemical Composition

Element Weight %
Titanium (Ti) balance
Aluminium (Al) 5.50–6.75
Vanadium (V) 3.50–4.50
Iron (Fe) ≤ 0.40
Oxygen (O) ≤ 0.20
Carbon (C) ≤ 0.08
Nitrogen (N) ≤ 0.05
Hydrogen (H) ≤ 0.015

Mechanical Properties

Property Value
Density 4.43 g/cm³
Tensile Strength 950 MPa (min)
Yield Strength (0.2% offset) 880 MPa (min)
Elongation 14%
Reduction of Area 36%
Hardness 36 HRC
Modulus of Elasticity 114 GPa
Max Service Temperature 400°C
Melting Point 1660°C
Fatigue Strength (10⁷ cycles) 510 MPa

Machinability

Grade 5 titanium is more challenging to machine than aluminium or steel due to its low thermal conductivity (7 W/m·K), high chemical reactivity, and work-hardening characteristics. Successful machining requires rigid setups, sharp carbide tooling, and generous coolant application.

Operation Speed (SFM) Feed (IPT) DOC
Rough Milling 150–250 0.004–0.008 0.100–0.200
Finish Milling 200–300 0.003–0.005 0.010–0.050
Turning 200–350 0.005–0.012 0.050–0.150
Drilling 50–120 0.002–0.006
Tapping 20–40

Key considerations:

  • Use micro-grain carbide or PCD tooling with honed edges
  • High-pressure coolant (1000+ PSI) directed at the cutting zone is critical
  • Climb milling preferred to reduce work hardening
  • Rigid fixturing with minimal overhang; titanium spring-back requires compensation
  • Peel milling and trochoidal toolpaths improve tool life in deep cavities
  • Avoid dwell or rubbing — feed must be maintained to prevent work hardening

Typical Applications

  • Aerospace: Airframe structural components, landing gear, engine brackets, fan blades, fasteners
  • Medical: Orthopaedic implants (hips, knees, trauma plates), surgical instruments, dental implants
  • Semiconductor: Vacuum chamber components, wafer handling end-effectors, chamber liners
  • Automotive: Connecting rods, valves, exhaust systems, springs
  • Marine: Propeller shafts, seawater piping, underwater connectors
  • Energy: Oil and gas downhole tooling, geothermal components, subsea hardware
  • Defence: Armour plating, missile components, structural aircraft parts
  • ASTM B265 — Titanium and Titanium Alloy Strip, Sheet, and Plate
  • ASTM B348 — Titanium and Titanium Alloy Bars and Billets
  • ASTM F136 — Wrought Ti-6Al-4V ELI for Medical Implants (surgical implant grade)
  • AMS 4911 — Titanium Alloy Sheet, Strip, and Plate (aerospace)
  • AMS 4928 — Titanium Alloy Bars, Wire, Forgings, and Rings (aerospace)
  • ISO 5832-3 — Implants for Surgery — Ti-6Al-4V Wrought Alloy
  • 5-Axis CNC Machining — Complex aerospace and medical geometries from solid billet
  • CNC Milling & Turning — Standard precision machining with dedicated titanium toolpaths
  • Wire EDM — Suitable for Grade 5; slower than steel but produces excellent surface finish
  • Additive Manufacturing (DMLS) — Grade 5 is the most common titanium alloy for powder-bed fusion
  • Welding — TIG and laser weldable; requires inert gas shielding and stress relief
  • Heat Treatment — Solution treatment and aging (STA) can increase strength to 1170 MPa