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Cobalt-Chrome Alloy L605 · print state

Cobalt-Chrome Alloy L605-HIP

Properties of the HIP condition, compared with the other L605 tempers.

Choose for AM or cast parts needing closed porosity, homogenised structure and best ductility/fatigue for flight or implant hardware.

CNC machiningSpecialty cost $$$$$

What is L605-HIP?

L605-HIP is L605 in the HIP condition — choose for AM or cast parts needing closed porosity, homogenised structure and best ductility/fatigue for flight or implant hardware. L605-HIP has a yield strength of 480 MPa (69.6 ksi) and a tensile strength of 980 MPa (142 ksi) — weaker than 80% of cobalt-chrome alloy grades. Elongation at break is 50% and the elastic modulus is 225 GPa (32.6 Msi). L605-HIP has a density of 9.13 g/cm³ (0.33 lb/in³), heavier than 98% of cobalt-chrome alloy grades. It melts at 1,329°C (2,424 °F). Solution Annealed is the default condition FabDigit quotes; HIP is available on request or by drawing note.

Advantages

  • Forms and bends easily — 60/100, better than 95% of cobalt-chrome alloy grades
  • Ductile — tolerates forming and impact — 50%, better than 93% of cobalt-chrome alloy grades
  • High service temperature — 980°C (1,796 °F), better than 93% of cobalt-chrome alloy grades
  • Readily welded — 72/100, better than 93% of cobalt-chrome alloy grades

Limitations

  • Poor heat conductor — 9.4 W/m·K (5.43 BTU/hr·ft·°F), worse than 100% of cobalt-chrome alloy grades
  • High embodied carbon — 19 kg CO₂/kg, worse than 95% of cobalt-chrome alloy grades
  • Low strength — 480 MPa (69.6 ksi), worse than 80% of cobalt-chrome alloy grades

L605-HIP properties

Typical room-temperature values for L605-HIP — 10 properties are specific to this condition; the rest are grade-level values shared by every L605 temper. Each bar shows where the value sits among the cobalt-chrome alloy grades in FabDigit's library — further right is higher.

Physical3

L605-HIP has a density of 9.13 g/cm³ (0.33 lb/in³), heavier than 98% of cobalt-chrome alloy grades. It melts at 1,329°C (2,424 °F).

Density9.13 g/cm³0.33 lb/in³
Melting Point (Solidus)1,329°C2,424 °F
Liquidus Temperature1,410°C2,570 °F

Mechanical14

L605-HIP has a yield strength of 480 MPa (69.6 ksi) and a tensile strength of 980 MPa (142 ksi) — weaker than 80% of cobalt-chrome alloy grades. Elongation at break is 50% and the elastic modulus is 225 GPa (32.6 Msi).

Elastic (Young's) Modulus225 GPa32.6 Msi
Shear Modulus87 GPa12.6 Msi
Bulk Modulus178 GPa25.8 Msi
Poisson's Ratio0.29
Tensile Strength (Ultimate)980 MPa142 ksi
Yield Strength (0.2% offset)480 MPa69.6 ksi
Elongation at Break50%
Reduction in Area50%
Shear Strength620 MPa89.9 ksi
Fatigue Strength (Endurance Limit)470 MPa68.2 ksi
Charpy V-Notch Impact (RT)90 J66.4 ft·lbf
Hardness, Brinell245 HB
Hardness, Rockwell B98 HRB
Hardness, Vickers255 HV

Thermal6

L605-HIP is rated for continuous service to 980°C (1,796 °F). It conducts heat at 9.4 W/m·K (5.43 BTU/hr·ft·°F), worse than 100% of cobalt-chrome alloy grades. Thermal expansion is 12.3 µm/m·K (6.83 µin/in·°F).

Thermal Conductivity9.4 W/m·K5.4 BTU/hr·ft·°F
Specific Heat Capacity385 J/kg·K0.09 BTU/lb·°F
Thermal Expansion (CTE, 20–100 °C)12.3 µm/m·K6.8 µin/in·°F
Latent Heat of Fusion270 J/g116 BTU/lb
Max Service Temperature (continuous)980°C1,796 °F
Min Service Temperature-196°C-321 °F

Electrical3

L605-HIP conducts electricity at 1.9 % IACS, worse than 54% of cobalt-chrome alloy grades.

Electrical Conductivity1.9 % IACS
Electrical Resistivity8.9×10⁻⁷ Ω·m35 µΩ·in
Magnetic Responsenon-magnetic

Chemical & Environmental3

Corrosion resistance is very good (82/100), better than 67% of cobalt-chrome alloy grades.

Galvanic Potential (seawater, vs SCE)-0.25 V
Corrosion ResistanceVery good82/100
Chemical Resistance SummaryExcellent high-temperature oxidation and hot-gas/sulfidation resistance to ~1000 °C; very good resistance to body fluids and chloride pitting; good in oxidizing acids and molten salts, but attacked by hot concentrated reducing acids (HCl, H₂SO₄) and by strongly carburizing atmospheres over long exposures.

Sustainability4

Producing a kilogram of L605-HIP takes about 250 MJ of energy and emits 19 kg of CO₂ — more than 91% of cobalt-chrome alloy grades. Typical recycled content is 30%.

Embodied Energy (primary production)250 MJ/kg107,481 BTU/lb
Embodied Carbon (primary production)19 kg CO₂/kg
Embodied Water500 L/kg59.9 gal/lb
Typical Recycled Content30%

Manufacturability8

L605-HIP's machinability is poor (18/100, better than 91% of cobalt-chrome alloy grades); weldability very good (72/100); formability good (60/100).

MachinabilityPoor18/100
Machinability Rating (AISI 1212 = 100 %)12%
WeldabilityVery good72/100
Formability (cold)Good60/100
CastabilityGood55/100
Brazeability / SolderabilityVery good70/100
PolishabilityVery good80/100
Anodizing Responsen/a — cobalt-base alloy is not anodized; use passivation, electropolishing or thermal oxide/coatings

Values are nominal handbook figures for design screening. Certified mill or lot data ships with every FabDigit order on request.

Other L605 tempers and conditions

L605 is also supplied in 4 other conditions. The full side-by-side table is on the L605 overview.

Working with L605-HIP

Is L605 easy to machine?

Machine like a work-hardening superalloy: rigid setups, positive-rake carbide or ceramic tooling, low speed / heavy feed, flood coolant and no dwelling to avoid glazing and rapid tool wear.

Can L605 be welded?

Readily GTAW/PAW/EB/laser welded with matching L605 filler (AMS 5796); keep heat input low, use clean argon shielding and re-solution anneal heavily restrained or cold-worked joints.

Can L605 be formed, bent or molded?

Cold forms well when annealed but hardens fast — allow generous bend radii, interstage anneals at 1175–1230 °C; hot work at 1150–1230 °C and finish above ~1050 °C.

What surface finishes work on L605?

Not anodizable; use pickling/passivation, electropolishing or fine mechanical polishing (excellent mirror finish for implants), plus aluminide or thermal-barrier coatings for hot-gas parts.

L605 chemical composition (wt %)

Limits by weight percent from the governing specification, written the way the spec states them — a single maximum for impurities, a range for alloying elements, and the base element as balance. Nominal is the typical mid-range value.

ElementSpec limit (wt %)Nominal
Cr19 – 2120
W14 – 1615
Ni9 – 1110
Fe≤ 31.5
Mn1 – 21.5
C0.05 – 0.150.1
Si≤ 0.40.2
P≤ 0.04
S≤ 0.03
Cobalance, nominally ~51 %balance

L605-HIP — frequently asked

What is L605-HIP used for?

L605-HIP is typically used for combustion liners and transition ducts, turbine and exhaust valves, hot-gas ducting and seals, high-temperature springs, afterburner and nozzle components and surgical implants and stents. In short: aerospace high-temp cobalt.

What is the yield strength of L605-HIP?

L605-HIP has a typical yield strength of 480 MPa (69.6 ksi) and a tensile strength of 980 MPa (142 ksi) — weaker than 80% of cobalt-chrome alloy grades. Strength varies by condition: see the 5 listed tempers.

Is L605-HIP easy to machine?

Not especially — machinability is rated poor (18/100, better than 91% of cobalt-chrome alloy grades). Machine like a work-hardening superalloy: rigid setups, positive-rake carbide or ceramic tooling, low speed / heavy feed, flood coolant and no dwelling to avoid glazing and rapid tool wear.

Can L605-HIP be welded?

Yes — weldability is rated very good (72/100). Readily GTAW/PAW/EB/laser welded with matching L605 filler (AMS 5796); keep heat input low, use clean argon shielding and re-solution anneal heavily restrained or cold-worked joints.

What surface finishes work on L605-HIP?

Not anodizable; use pickling/passivation, electropolishing or fine mechanical polishing (excellent mirror finish for implants), plus aluminide or thermal-barrier coatings for hot-gas parts.

Can L605-HIP be formed, bent or molded?

Cold forms well when annealed but hardens fast — allow generous bend radii, interstage anneals at 1175–1230 °C; hot work at 1150–1230 °C and finish above ~1050 °C.

What is the maximum service temperature of L605-HIP?

L605-HIP is rated for continuous use to about 980°C (1,796 °F). Strength falls off well before that limit — check the elevated-temperature data for load-bearing parts.

What is the difference between L605 Solution Annealed and L605-HIP?

Solution Annealed is the default condition — standard mill condition for sheet, plate, bar and tube — maximum ductility and formability, best corrosion and creep behaviour baseline. HIP: choose for AM or cast parts needing closed porosity, homogenised structure and best ductility/fatigue for flight or implant hardware. Yield strength is 460 MPa in Solution Annealed versus 480 MPa in HIP.

Can FabDigit make parts in L605-HIP?

Yes — L605-HIP is available for CNC machining with instant online pricing. Upload a STEP file to get a price and a DFM check.

Sources

  1. AMS 5537 — Cobalt Alloy Sheet, Strip and Plate (UNS R30605)SAE International (2020)
  2. AMS 5759 — Cobalt Alloy Bars, Forgings and Rings (UNS R30605)SAE International (2019)
  3. ASTM F90 — Wrought Co-20Cr-15W-10Ni Alloy for Surgical Implant ApplicationsASTM International (2021)
  4. HAYNES 25 alloy technical dataHaynes International (2020)
  5. ASM Handbook Vol.1 & Vol.2 — Superalloys / Cobalt-base alloysASM International (1990)
  6. Additive manufacturing (LPBF) L605 mechanical property compilationspeer-reviewed AM literature / powder producer datasheets (2023)

Property data is compiled from published supplier and standards handbooks and normalised for comparison. Nothing on this page is a certification — request mill certs, CoC or material test reports with your order.