Haynes 25 Haynes Powder
Particle Size Distribution (PSD): 0-25, 15-45, 15-53, 45-105, 45-150um or sieved as required.
Shape: Spherical
Process: Gas atomized (GA) or Plasma rotating electrode powder (PREP)
Packing: 5kg, 10kg, 25kg or as required; plastic bottle/can.
Application: additive manufacturing (3D printing, SLM/EBM/DLD) or other processes.
Fast Delivery
High sphericity
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Product Description
Haynes 25 alloy (UNS R30605) (L605) (2.4964) (2.4967) (CoCr20W15Ni) (Stellite 25) is a cobalt-nickel-chromium-tungsten alloy that combines excellent high-temperature strength with good resistance to oxidizing environments up to 1800°F (980°C) for prolonged exposures, and excellent resistance to sulfidation.
Haynes 25 alloy is suitable for a number of component applications in the aerospace industry, including parts in established military and commercial gas turbine engines. In modern engines, it has largely been replaced by newer materials such as Haynes 188 alloy, and, most recently, by Haynes 230 alloy, which possess improved properties. Another area of significant usage for Haynes 25 alloy is as a bearing material, for both balls and races.
Haynes 25 alloy is an austenitic alloy with hardness typically 250 BHN and never higher than 275 BHN by specification, Not significantly hardenable. Does not respond to customary aging treatments, but strain aging at relatively low temperatures (700-1100° F) can improve creep and rupture strength when the alloy is in service at temperatures under 1300° F. Also, tensile and creep strength can be improved by cold working.
Truer Haynes 25 alloy powder was developed since 2017 for AM application, such as laser powder bed and DED additive manufacturing. It can be produced by our gas atomized process (sphericity >0.9) and PREP process (better sphericity and less satellite & hollow powders). Its chemical composition and some typical powder properties can be found in the below datasheet.
PREP System
AM Powder
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Hot Isostatic Pressing (HIP) technology works by placing the product in a closed container, filling it with inert gas and sintering or densifying the product at a very high temperature (usually close to the forging temperature of the material) and at a very high pressure (usually 100 – 140 MPa). This allows the product to be sintered or densified.
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SLM, also known as Selective Laser Melting, is similar in principle to SLS in that a laser is used to melt and solidify metal powder in a specified area, which is then moulded in a layer-by-layer stack.
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Electron beam melting refers to a vacuum melting method in which the kinetic energy of a high speed electron beam stream is converted to heat as a heat source for melting metals under high vacuum. The abbreviation is EBM.
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