Hiduron Forgings

Hiduron 130 / 191 closed-die + open-die forged blanks up to 800 kg

Hiduron forgings are Cu-Ni-Al closed-die and open-die blanks supplied as the upstream feedstock for downstream-machined subsea connector bodies, flange blanks, valve spindle blanks, pump shaft blanks and naval main-engine components. Closed-die route covers up to 50 kg per piece on near-net-shape forged blanks with the grain flow oriented to the loaded direction; open-die route covers up to 600 kg per piece on cylinder, disc and stepped-shaft blanks where the closed-die press tonnage is insufficient. Forging stock is upset-forged from Hiduron round bar with the upset ratio chosen to keep the gamma-prime response unchanged through the forged section. Every forging is supplied in solution-annealed condition by default, with the gamma-prime age performed at the customer site or as a finishing step at TorqBolt. The forging carries EN 10204 type 3.1 mill test certificate including macro-etch verification of the grain-flow pattern and ultrasonic to ASTM B16.5 / EN 12451.

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Hiduron Chemical Composition (Cu-Ni-Al Family)

The Hiduron family chemistry is a small Cu-Ni-Al window with manganese as the principal differentiator between Hiduron 130 and Hiduron 191. The Cu balance plus the controlled Ni, Al and Fe land the gamma-prime Ni3Al precipitation response on solution-anneal plus age. Hiduron 191 carries the higher manganese addition for solid-solution strengthening on top of the gamma-prime precipitation, which lifts the room-temperature yield and tensile envelope above the Hiduron 130 baseline.

ElementHiduron 130 typical, percentHiduron 191 typical, percentRole
Copper (Cu)balance (~80 to 82)balance (~76 to 78)Matrix; seawater corrosion resistance
Nickel (Ni)14.0 to 15.514.0 to 15.5Strengthening partner for gamma-prime Ni3Al
Aluminium (Al)2.7 to 3.41.5 to 2.5Gamma-prime former; precipitation hardening
Iron (Fe)1.0 to 2.00.5 to 1.5Grain refinement; corrosion modifier
Manganese (Mn)up to 0.754.0 to 5.0Solid-solution strengthening (191)
Silicon (Si)up to 0.10up to 0.10Deoxidation residual
Lead (Pb)up to 0.02up to 0.02Tramp limit for hot workability
Carbon (C)up to 0.05up to 0.05Tramp limit

Hiduron Mechanical Properties (Solution Annealed + Aged)

Both grades develop their strength on the solution-anneal plus age cycle through gamma-prime Ni3Al precipitation. Room-temperature tensile, proof stress, elongation and hardness are listed for the standard age envelope. Elevated-temperature mechanicals stay stable to 200 deg C and degrade above 300 deg C, which is well above the marine and subsea service envelope where the family is specified.

PropertyHiduron 130Hiduron 191Test condition
Tensile strength (Rm)740 to 850 MPa820 to 1000 MPaRT, SA+aged
0.2 percent proof stress (Rp0.2)>=480 MPa>=580 MPaRT, SA+aged
Elongation A5>=18 percent>=15 percentRT, longitudinal
Hardness (HV)240 to 280270 to 320RT, Vickers
Hardness (HBW), max for sour servicen/a (not NACE)<=28 HRC / <=286 HBWNACE MR0175 limit
Charpy V impact at room temperature>=60 J>=40 JRT, longitudinal
0.2 percent proof at 200 deg C>=430 MPa>=540 MPaelevated-temp
Magnetic permeability<1.005 mu_r<1.005 mu_rNon-magnetic, naval qualified
Density8.85 g/cm38.65 g/cm3Calculated from chemistry

Anti-Galling + Anti-Biofouling + Non-Magnetic + Hydrogen-Embrittlement Immune

The Hiduron family carries four flagship Cu-Ni-Al properties that decide its selection over competing alloys on subsea, marine and naval bolting projects. These four properties together remove maintenance and inspection burden that limits the service life of stainless and precipitation-hardened nickel alloys in the same environment.

  • Anti-galling. The Cu-rich matrix and the gamma-prime aged surface tolerate repeated bolt-up and break-out cycles without thread pickup. Riser flange bolting on offshore platforms is re-tensioned periodically as part of the inspection routine, and Hiduron 191 studs survive the cyclic bolt-up without thread damage. This is the decisive selector over precipitation-hardened stainless options where galling at the bolt-up face is a routine failure mode.
  • Anti-biofouling. The Cu surface chemistry releases trace Cu ions in seawater that suppress the bacterial film required for marine biofouling colonisation. Hiduron projecting threads in the splash zone stay clean over service life, removing the periodic mechanical descaling that limits the service life of stainless bolting in the same band.
  • Non-magnetic. Both grades hold magnetic permeability below 1.005 mu_r, which is why naval surface and submarine programmes specify Hiduron over competing high-strength bolting alloys in compartments where magnetic signature interferes with sensor or weapon-system operation.
  • Hydrogen-embrittlement immune. The Cu-Ni-Al family is immune to hydrogen-induced cracking under cathodic protection, which is the principal failure mode for high-strength steel and precipitation-hardened nickel bolting in deep-water subsea cathodic-protection environments. This is the decisive selector for Hiduron 130 over Monel K-500 on subsea connector bodies polarised under sacrificial-anode CP.

Hiduron Heat Treatment (Solution Anneal + Gamma-Prime Age)

The standard cycle is solution-anneal at 900 to 950 deg C, hold for one hour per 25 mm of section thickness, then water quench to freeze the gamma-prime formers in solid solution. The age is 475 to 525 deg C for 3 to 6 hours followed by air cool, which precipitates the gamma-prime Ni3Al strengthening phase. The age temperature controls the strength versus ductility balance; ageing below 475 deg C leaves the precipitate under-developed and the room-temperature yield falls below the specification floor, while ageing above 525 deg C over-coarsens the precipitate and the strength drops. For fasteners and components machined from solution-annealed bar, the age is performed post-machining to relieve residual stress in the same cycle and lock in the dimensional condition.

Hiduron Welding Notes (Preheat 100 to 200 deg C, No PWHT for Typical Sections)

Hiduron 130 and Hiduron 191 are welded with matched-composition filler under inert-gas shielding (typically gas tungsten arc with argon shield) at preheat 100 to 200 deg C and inter-pass temperature controlled below 250 deg C to protect the heat-affected zone toughness. For typical bolting and machined-component section thickness up to about 50 mm, no post-weld heat treatment is required because the alloy does not develop hard untempered HAZ structures in the same way alloy-steel bolting does. For sections above 50 mm or for naval and subsea components where the project specification calls for a parent-property restoration through the weld, a post-weld solution-anneal followed by full age is the standard route. Hardness traverse across weld plus HAZ plus parent verifies the age achieved the intended precipitation; for Hiduron 191 sour-service applications, hardness must not exceed 286 HBW (28 HRC) at any point to maintain NACE MR0175 compliance.

Material Selection: Hiduron vs Monel K-500 vs C71500 vs C95400

The bolting and machined-component shortlist for subsea, marine and naval Cu-Ni-Al service usually narrows to Hiduron 130 or Hiduron 191 against three neighbouring grades. The decisive selectors are NACE MR0175 sour-service compliance, hydrogen-embrittlement immunity, non-magnetic response and the room-temperature strength envelope. The table below positions each grade against the typical service drivers.

GradeUNSStrength envelopeService driver / when to specify
Hiduron 130C72400UTS 740 to 850 MPaMid-strength Cu-Ni-Al; subsea connector body flagship; non-magnetic; H2 immune
Hiduron 191C72420UTS 820 to 1000 MPaHigh-strength Cu-Ni-Al; NACE MR0175 sour-service compliant; naval bolting flagship
Monel K-500N05500UTS 965 to 1170 MPaStronger than Hiduron 191 but exceeds NACE 35 HRC hardness limit in the aged condition; excluded from sour service; magnetic susceptibility higher than Cu-Ni-Al
C71500 (70/30 Cu-Ni)C71500UTS 380 to 450 MPaLower strength; specified for seawater piping where structural load is low; Hiduron replaces it where bolting load demands higher yield
C95400 (Nickel Aluminium Bronze)C95400UTS 590 to 690 MPaDifferent alloy family (Cu-Al-Ni-Fe); casting grade for propellers and marine valves; not interchangeable with Hiduron for high-strength bolting

Hiduron Applications by Industry

The Hiduron family is specified across subsea, offshore platform, naval, marine commercial and oil-and-gas sour-service projects. The 8 primary service areas are linked below, each anchored on the decisive selection driver for that segment.

  • Subsea Connectors: Hiduron 130 flying-lead, stab-plate and umbilical termination bodies for subsea hydraulic and electrical control systems.
  • Riser Bolting: Hiduron 191 splash-zone bolting on North Sea and Gulf of Mexico offshore platform risers, with over 15 years of in-service performance.
  • Splash Zone Bolting: Hiduron 191 fasteners for the wet-dry tidal band where stainless steels suffer chloride crevice attack.
  • Naval Fasteners: NES 835 and DEF STAN 02-835 procurement on UK Royal Navy and allied surface and submarine bolting.
  • Pump Shafts and Valve Spindles: Marine pump shafts and subsea valve spindles where anti-galling and corrosion fatigue performance are decisive.
  • Mechanical Seals: Seal-face bodies that need anti-galling against tungsten-carbide and silicon-carbide running faces.
  • Propeller Shafts: Naval and commercial marine propeller shafts and drive bushes.
  • Sour Service (NACE): NACE MR0175 / ISO 15156 qualified bolting for sour oil and gas service.

Browse the full Hiduron form range: Round Bar · Stud Bolts · Hex Bolts · Heavy Hex Bolts · Anchor Bolts · U-Bolts · Threaded Rod · Nuts · Heavy Hex Nuts · Washers · Forgings · Machined Components. Back to the Hiduron 130 + 191 Alloy Hub.

Hiduron Forgings Frequently Asked Questions

Q. What is the maximum forging weight?
Closed-die forgings up to 50 kg per piece in near-net-shape blanks. Open-die forgings up to 600 kg per piece in cylinder, disc and stepped-shaft form. Pieces above 600 kg are supplied as a billet-forge route on call-out with project-specific lead time.

Q. What forging shapes are routinely produced?
Subsea connector bodies, ASME B16.5 / B16.47 flange blanks, valve spindle blanks, pump shaft blanks, naval main-engine cover blanks, mechanical seal face blanks, propeller shaft stub blanks, and custom shapes to project drawing.

Q. Is grain flow controlled in the forging?
Yes. The upset ratio and die design are chosen to orient grain flow to the loaded direction of the finished component. Macro-etch on a sectioned coupon verifies grain flow and is reported on the EN 10204 type 3.1 mill test certificate.

Q. Is the forging supplied solution annealed or fully aged?
Default delivery is solution annealed (900 to 950 deg C, water quench) so the downstream machinist can rough-cut in the softer condition. Full age (475 to 525 deg C, 3 to 6 hours, air cool) is performed either as a finishing step at TorqBolt or at the customer site after final machining.

Q. What inspection certification is supplied with the forging?
EN 10204 type 3.1 mill test certificate includes heat number, chemistry, mechanicals from a forged-prolongation test bar, hardness, ultrasonic to ASTM B16.5 / EN 12451, dye-penetrant on finished surfaces, macro-etch verification of grain flow and dimensional report. Type 3.2 with Lloyd's, DNV, BV, SGS or TUV witness is supplied on call-out and is standard for subsea connector blanks.

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TorqBolt supplies Hiduron 130 and Hiduron 191 to subsea EPCs, offshore platform operators, naval shipyards and oil-and-gas integrators worldwide. For project-specific size, length, certification scope and lead time, contact the sales desk at torqbolt.com/contact-us or email info@torqbolt.com with the project drawing or specification reference.