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Tungsten Alloy Pure W · print state

Tungsten Alloy Pure W-HIP

Properties of the HIP condition, compared with the other Pure W tempers.

Pick for large, complex or additively made W parts needing pore-free, leak-tight, isotropic material without a wrought texture.

CNC machiningSheet metalSpecialty cost $$$$$

What is Pure W-HIP?

Pure W-HIP is Pure W in the HIP condition — pick for large, complex or additively made W parts needing pore-free, leak-tight, isotropic material without a wrought texture. Pure W-HIP has a yield strength of 380 MPa (55.1 ksi) and a tensile strength of 480 MPa (69.6 ksi) — weaker than 100% of tungsten alloy grades. Elongation at break is 1% and the elastic modulus is 395 GPa (57.3 Msi). Pure W-HIP has a density of 19.15 g/cm³ (0.692 lb/in³), heavier than 62% of tungsten alloy grades. It melts at 3,422°C (6,192 °F). As Rolled is the default condition FabDigit quotes; HIP is available on request or by drawing note.

Limitations

  • Low strength — 380 MPa (55.1 ksi), worse than 100% of tungsten alloy grades
  • Low fracture toughness — 8 MPa·√m (7.28 ksi·√in), worse than 100% of tungsten alloy grades
  • Limited ductility — 1%, worse than 90% of tungsten alloy grades

Pure W-HIP properties

Typical room-temperature values for Pure W-HIP — 11 properties are specific to this condition; the rest are grade-level values shared by every Pure W temper. Each bar shows where the value sits among the tungsten alloy grades in FabDigit's library — further right is higher.

Physical3

Pure W-HIP has a density of 19.15 g/cm³ (0.692 lb/in³), heavier than 62% of tungsten alloy grades. It melts at 3,422°C (6,192 °F).

Density19.15 g/cm³0.69 lb/in³
Melting Point (Solidus)3,422°C6,192 °F
Liquidus Temperature3,422°C6,192 °F

Mechanical16

Pure W-HIP has a yield strength of 380 MPa (55.1 ksi) and a tensile strength of 480 MPa (69.6 ksi) — weaker than 100% of tungsten alloy grades. Elongation at break is 1% and the elastic modulus is 395 GPa (57.3 Msi).

Elastic (Young's) Modulus395 GPa57.3 Msi
Shear Modulus156 GPa22.6 Msi
Bulk Modulus310 GPa45 Msi
Poisson's Ratio0.28
Tensile Strength (Ultimate)480 MPa69.6 ksi
Yield Strength (0.2% offset)380 MPa55.1 ksi
Elongation at Break1%
Reduction in Area4%
Compressive Strength2,000 MPa290 ksi
Shear Strength600 MPa87 ksi
Fatigue Strength (Endurance Limit)260 MPa37.7 ksi
Fracture Toughness (K_IC)8 MPa·√m7.3 ksi·√in
Charpy V-Notch Impact (RT)3 J2.2 ft·lbf
Hardness, Brinell335 HB
Hardness, Rockwell C33 HRC
Hardness, Vickers350 HV

Thermal6

Pure W-HIP is rated for continuous service to 500°C (932 °F). It conducts heat at 168 W/m·K (97.1 BTU/hr·ft·°F), better than 76% of tungsten alloy grades. Thermal expansion is 4.5 µm/m·K (2.5 µin/in·°F).

Thermal Conductivity168 W/m·K97.1 BTU/hr·ft·°F
Specific Heat Capacity133 J/kg·K0.03 BTU/lb·°F
Thermal Expansion (CTE, 20–100 °C)4.5 µm/m·K2.5 µin/in·°F
Latent Heat of Fusion192 J/g82.5 BTU/lb
Max Service Temperature (continuous)500°C932 °F
Min Service Temperature20°C68 °F

Electrical3

Pure W-HIP conducts electricity at 30 % IACS, better than 64% of tungsten alloy grades.

Electrical Conductivity30 % IACS
Electrical Resistivity5.6×10⁻⁸ Ω·m2.2 µΩ·in
Magnetic Responsenon-magnetic

Chemical & Environmental3

Corrosion resistance is good (60/100), better than 50% of tungsten alloy grades.

Galvanic Potential (seawater, vs SCE)-0.12 V
Corrosion ResistanceGood60/100
Chemical Resistance SummaryResists most mineral acids (HCl, H2SO4, HNO3) and molten glass/metals at RT; attacked by HF+HNO3 mixtures, hot alkali plus oxidizers, H2O2 and molten alkali nitrates. Oxidizes rapidly in air above ~500 °C forming volatile WO3.

Sustainability3

Producing a kilogram of Pure W-HIP takes about 400 MJ of energy and emits 27 kg of CO₂ — more than 74% of tungsten alloy grades. Typical recycled content is 30%.

Embodied Energy (primary production)400 MJ/kg171,969 BTU/lb
Embodied Carbon (primary production)27 kg CO₂/kg
Typical Recycled Content30%

Manufacturability8

Pure W-HIP's machinability is not recommended (10/100, better than 52% of tungsten alloy grades); weldability not recommended (10/100); formability not recommended (5/100).

MachinabilityNot recommended10/100
Machinability Rating (AISI 1212 = 100 %)8%
WeldabilityNot recommended10/100
Formability (cold)Not recommended5/100
CastabilityNot recommended3/100
Brazeability / SolderabilityGood60/100
PolishabilityVery good70/100
Anodizing Responsen/a — tungsten is not conventionally anodized; use CVD/PVD coatings, Ni plating or Si/oxide barriers for oxidation protection

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

Other Pure W tempers and conditions

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

Working with Pure W-HIP

Is Pure W easy to machine?

Treat as a brittle hard metal: grinding, EDM/wire-EDM and laser cutting are preferred; if turning/milling, use rigid setups, negative-rake carbide or CBN, low speed, heavy flood coolant and preheat 200–400 °C to avoid chipping.

Can Pure W be welded?

Essentially unweldable by arc processes — electron-beam or laser welding in high vacuum with preheat is possible but the weld recrystallizes and becomes brittle; joining is normally by brazing (Ni-, Cu-, Ag-Cu-Ti fillers) or mechanical/diffusion bonding.

Can Pure W be formed, bent or molded?

No practical cold forming; roll, swage, forge or bend hot (typically 1000–1500 °C, above the DBTT) with intermediate stress-relief anneals; complex shapes come from powder pressing, CIP+sinter+HIP or LPBF.

What surface finishes work on Pure W?

Not anodizable; grind and lap to a fine finish, then electropolish or acid-clean; for oxidation service above 500 °C apply Si/aluminide, CVD/PVD or Ni/Cr diffusion coatings, and use Ni or Au plating for solderability.

Pure W 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
Mo≤ 0.010
Fe≤ 0.010
Ni≤ 0.010
C≤ 00
Ohigher in as-sintered and printed material≤ 0.010
Si≤ 00
Al≤ 00
Ca≤ 00
Cr≤ 00
Cu≤ 00
Mg≤ 00
Kdoped (AKS) wire grades intentionally higher≤ 05×10⁻⁴
WPurity on a metallic basis, ASTM B760/GB/T 3875 class≥ 99.95 (balance)

Pure W-HIP — frequently asked

What is Pure W-HIP used for?

Pure W-HIP is typically used for X-ray tube anodes, radiation shielding blocks and collimators, GTAW welding electrodes, furnace hot-zone elements and shields, ion- and plasma-facing components and EDM electrodes. In short: high-density tungsten rod.

What is the yield strength of Pure W-HIP?

Pure W-HIP has a typical yield strength of 380 MPa (55.1 ksi) and a tensile strength of 480 MPa (69.6 ksi) — weaker than 100% of tungsten alloy grades. Strength varies by condition: see the 8 listed tempers.

Is Pure W-HIP easy to machine?

Not especially — machinability is rated not recommended (10/100, better than 52% of tungsten alloy grades). Treat as a brittle hard metal: grinding, EDM/wire-EDM and laser cutting are preferred; if turning/milling, use rigid setups, negative-rake carbide or CBN, low speed, heavy flood coolant and preheat 200–400 °C to avoid chipping.

Can Pure W-HIP be welded?

Not readily — weldability is rated not recommended (10/100). Essentially unweldable by arc processes — electron-beam or laser welding in high vacuum with preheat is possible but the weld recrystallizes and becomes brittle; joining is normally by brazing (Ni-, Cu-, Ag-Cu-Ti fillers) or mechanical/diffusion bonding.

What surface finishes work on Pure W-HIP?

Not anodizable; grind and lap to a fine finish, then electropolish or acid-clean; for oxidation service above 500 °C apply Si/aluminide, CVD/PVD or Ni/Cr diffusion coatings, and use Ni or Au plating for solderability.

Can Pure W-HIP be formed, bent or molded?

No practical cold forming; roll, swage, forge or bend hot (typically 1000–1500 °C, above the DBTT) with intermediate stress-relief anneals; complex shapes come from powder pressing, CIP+sinter+HIP or LPBF.

What is the maximum service temperature of Pure W-HIP?

Pure W-HIP is rated for continuous use to about 500°C (932 °F). Strength falls off well before that limit — check the elevated-temperature data for load-bearing parts.

What is the difference between Pure W As Rolled and Pure W-HIP?

As Rolled is the default condition — default stocked wrought condition for plate, sheet and foil: highest strength and hardness, fibrous texture, minimum room-temperature ductility still usable for flat parts and shielding. HIP: pick for large, complex or additively made W parts needing pore-free, leak-tight, isotropic material without a wrought texture. Yield strength is 700 MPa in As Rolled versus 380 MPa in HIP.

Can FabDigit make parts in Pure W-HIP?

Yes — Pure W-HIP 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 B760 – Tungsten Plate, Sheet and FoilASTM (2022)
  2. ASTM B777 / ASTM B459 tungsten product specificationsASTM (2020)
  3. GB/T 3875 / GB/T 4181SAC (2017)
  4. ASM Handbook Vol.2 — Properties of Refractory MetalsASM International (1990)
  5. Tungsten material properties (sintered, rolled, forged, wire)Plansee SE (2023)
  6. Pure tungsten product dataMidwest Tungsten Service (2023)
  7. CRC Handbook of Chemistry and Physics — physical constants of WCRC Press (2020)

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.