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Copper Alloy C54400 · supply condition

Copper Alloy C54400-H10

Properties of the H10 condition, compared with the other C54400 tempers.

Heaviest cold-rolled temper of C54400 — maximum strength and spring properties with very little remaining ductility.

CNC machiningSheet metalSpecialty cost $$$$$

What is C54400-H10?

C54400-H10 is C54400 supplied in the H10 condition — heaviest cold-rolled temper of C54400 — maximum strength and spring properties with very little remaining ductility. C54400-H10 has a yield strength of 565 MPa (81.9 ksi) and a tensile strength of 605 MPa (87.7 ksi) — stronger than 93% of copper alloy grades. Elongation at break is 3% and the elastic modulus is 110 GPa (16 Msi). C54400-H10 has a density of 8.89 g/cm³ (0.321 lb/in³), heavier than 71% of copper alloy grades. It melts at 854°C (1,569 °F). H04 is the default condition FabDigit quotes; H10 is available on request or by drawing note.

Advantages

  • High strength — 565 MPa (81.9 ksi), better than 93% of copper alloy grades
  • Easy to machine — 80/100, better than 86% of copper alloy grades

Limitations

  • Limited ductility — 3%, worse than 97% of copper alloy grades
  • Limited service temperature — 150°C (302 °F), worse than 96% of copper alloy grades
  • Difficult to weld — 20/100, worse than 88% of copper alloy grades
  • Limited formability — 15/100, worse than 82% of copper alloy grades

C54400-H10 properties

Typical room-temperature values for C54400-H10 — 35 properties are specific to this condition; the rest are grade-level values shared by every C54400 temper. Each bar shows where the value sits among the copper alloy grades in FabDigit's library — further right is higher.

Physical3

C54400-H10 has a density of 8.89 g/cm³ (0.321 lb/in³), heavier than 71% of copper alloy grades. It melts at 854°C (1,569 °F).

Density8.89 g/cm³0.32 lb/in³
Melting Point (Solidus)854°C1,569 °F
Liquidus Temperature1,000°C1,832 °F

Mechanical12

C54400-H10 has a yield strength of 565 MPa (81.9 ksi) and a tensile strength of 605 MPa (87.7 ksi) — stronger than 93% of copper alloy grades. Elongation at break is 3% and the elastic modulus is 110 GPa (16 Msi).

Elastic (Young's) Modulus110 GPa16 Msi
Shear Modulus41 GPa5.9 Msi
Bulk Modulus105 GPa15.2 Msi
Poisson's Ratio0.34
Tensile Strength (Ultimate)605 MPa87.7 ksi
Yield Strength (0.2% offset)565 MPa81.9 ksi
Elongation at Break3%
Shear Strength350 MPa50.8 ksi
Fatigue Strength (Endurance Limit)210 MPa30.5 ksi
Hardness, Brinell190 HB
Hardness, Rockwell B96 HRB
Hardness, Vickers205 HV

Thermal6

C54400-H10 is rated for continuous service to 150°C (302 °F). It conducts heat at 87 W/m·K (50.3 BTU/hr·ft·°F), better than 52% of copper alloy grades. Thermal expansion is 17.3 µm/m·K (9.61 µin/in·°F).

Thermal Conductivity87 W/m·K50.3 BTU/hr·ft·°F
Specific Heat Capacity377 J/kg·K0.09 BTU/lb·°F
Thermal Expansion (CTE, 20–100 °C)17.3 µm/m·K9.6 µin/in·°F
Latent Heat of Fusion170 J/g73.1 BTU/lb
Max Service Temperature (continuous)150°C302 °F
Min Service Temperature-200°C-328 °F

Electrical3

C54400-H10 conducts electricity at 18 % IACS, better than 50% of copper alloy grades.

Electrical Conductivity18 % IACS
Electrical Resistivity9.6×10⁻⁸ Ω·m3.78 µΩ·in
Magnetic Responsenon-magnetic

Chemical & Environmental3

Corrosion resistance is good (60/100), worse than 69% of copper alloy grades.

Galvanic Potential (seawater, vs SCE)-0.28 V
Corrosion ResistanceGood60/100
Chemical Resistance SummarySame base resistance as softer tempers, but the high residual stress makes it clearly more prone to ammonia/amine stress-corrosion cracking.

Sustainability4

Producing a kilogram of C54400-H10 takes about 57 MJ of energy and emits 3.7 kg of CO₂ — less than 52% of copper alloy grades. Typical recycled content is 40%.

Embodied Energy (primary production)57 MJ/kg24,506 BTU/lb
Embodied Carbon (primary production)3.7 kg CO₂/kg
Embodied Water300 L/kg35.9 gal/lb
Typical Recycled Content40%

Manufacturability7

C54400-H10's machinability is very good (80/100, better than 86% of copper alloy grades); weldability poor (20/100); formability poor (15/100).

MachinabilityVery good80/100
Machinability Rating (AISI 1212 = 100 %)80%
WeldabilityPoor20/100
Formability (cold)Poor15/100
Brazeability / SolderabilityVery good75/100
PolishabilityVery good75/100
Anodizing Responsen/a — copper alloy; use tin, nickel or silver plating, or chemical patina/lacquer instead

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

Other C54400 tempers and conditions

C54400 is also supplied in 7 other conditions. The full side-by-side table is on the C54400 overview.

Working with C54400-H10

Is C54400 easy to machine?

Excellent screw-machine alloy (~80 % of free-cutting brass); lead gives short chips — use sharp positive-rake tools, high speed, light feeds and soluble-oil coolant.

Can C54400 be welded?

Fusion welding not recommended (lead causes hot cracking); join by soft soldering (excellent) or low-temperature silver brazing with care, or use mechanical/press fits.

Can C54400 be formed, bent or molded?

Hot working poor due to lead; cold form only in O61/H02 tempers — H04 and harder tolerate only gentle bends with generous radii.

What surface finishes work on C54400?

Takes a fine turned or buffed finish; electroplate with tin, nickel or silver, or apply chemical patina/lacquer — anodizing does not apply.

C54400 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
Sn3.5 – 4.54
Pbfree-machining addition3.5 – 4.54
Zn1.5 – 4.53
Pdeoxidiser/strengthener0.01 – 0.50.15
Fe≤ 0.1
Curemainder, Cu + named elements ≥ 99.5 %balance

C54400-H10 — frequently asked

What is C54400-H10 used for?

C54400-H10 is typically used for bearings, thrust washers and bushings. In short: free-machining phosphor bronze.

What is the yield strength of C54400-H10?

C54400-H10 has a typical yield strength of 565 MPa (81.9 ksi) and a tensile strength of 605 MPa (87.7 ksi) — stronger than 93% of copper alloy grades. Strength varies by condition: see the 8 listed tempers.

Is C54400-H10 easy to machine?

Yes — machinability is rated very good (80/100, better than 86% of copper alloy grades). Excellent screw-machine alloy (~80 % of free-cutting brass); lead gives short chips — use sharp positive-rake tools, high speed, light feeds and soluble-oil coolant.

Can C54400-H10 be welded?

Not readily — weldability is rated poor (20/100). Fusion welding not recommended (lead causes hot cracking); join by soft soldering (excellent) or low-temperature silver brazing with care, or use mechanical/press fits.

What surface finishes work on C54400-H10?

Takes a fine turned or buffed finish; electroplate with tin, nickel or silver, or apply chemical patina/lacquer — anodizing does not apply.

Can C54400-H10 be formed, bent or molded?

Hot working poor due to lead; cold form only in O61/H02 tempers — H04 and harder tolerate only gentle bends with generous radii.

What is the maximum service temperature of C54400-H10?

C54400-H10 is rated for continuous use to about 150°C (302 °F). Strength falls off well before that limit — check the elevated-temperature data for load-bearing parts.

What is the difference between C54400-H04 and C54400-O61?

H04 is the default condition — standard stocked temper for screw-machine bushings, bearings and fasteners — best balance of strength and chip control. O61: choose when maximum ductility for bending, staking or heading is needed before finish machining. Yield strength is 393 MPa in H04 versus 130 MPa in O61.

Can FabDigit make parts in C54400-H10?

Yes — C54400-H10 is available for CNC machining and sheet metal with instant online pricing. Upload a STEP file to get a price and a DFM check.

Sources

  1. ASTM B139/B139M Phosphor Bronze Rod, Bar and ShapesASTM International (2017)
  2. CDA Alloy Datasheet C54400Copper Development Association (copper.org) (2023)
  3. ASM Handbook Vol. 2 — Properties of Nonferrous AlloysASM International (1990)

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.