Nickel base superalloy for additive manufacturing
Nickel alloys in powder form comprising at least 40 wt.-% Ni, about 20.0 to 25.0 wt.-% Cr, about 5.0 to 25.0 wt.-% Co and about 1.5 to 5.0 wt.-% Ti, which have a content of B in an amount of less than 40 ppmw, are disclosed. Corresponding alloys have the advantage of providing minimal or no micro-cracks as well as an improved ductility in creep conditions compared to similar alloys having a higher content of B, when the alloys are processed by additive manufacturing to prepare three-dimensional objects.
1. A nickel alloy in powder form comprising:
at least 40 wt.-% Ni;
about 20.0 to 25.0 wt.-% Cr;
about 5.0 to 25.0 wt.-% Co;
about 1.5 to 5.0 wt.-% Ti; and
B present in an amount of less than or equal to 10 ppmw,
wherein the powder has a particle size d50 from 0.1 to 500 um as determined according to ISO 13320 by laser scattering or laser diffraction.
2. The nickel alloy in powder form according to claim 1 , which comprises about 22.0 to 23.0 wt.-% Cr, about 18.0 to 20.0 wt.-% Co, and about 3.0 to 4.5 wt.-% Ti.
3. The nickel alloy in powder form according to claim 1 , further comprising one or more of at least 1.5 and/or up to 2.5 wt.-% W, at least 1.5 and/or up to 2.5 wt.-% Al, at least 1.0 and/or up to 1.5 wt.-% Ta, at least 0.8 and/or up to 1.2 wt.-% Nb, and up to 0.17 wt.-% C and/or up to 0.12 wt.-% Zr.
4. The nickel alloy in powder form according to claim 1 , wherein B is present in an amount of less than or equal to 8 ppmw.
5. The nickel alloy in powder form according to claim 1 , comprising at least 42 and/or up to 55 wt.-% Ni.
6. A method comprising:
providing the nickel alloy in powder form according to claim 1 ; and
manufacturing a three-dimensional object in a process involving step and layerwise build-up of the three-dimensional object by additive manufacturing.
7. Process for the manufacture of a three-dimensional object, comprising providing a nickel alloy in powder form as defined in claim 1 , and preparing the object by applying the nickel alloy in powder form layer on layer and selectively solidifying the alloy powder at positions in each layer, which correspond to the cross section of the object in this layer, wherein the positions are scanned with a radiation interaction zone of an energy beam bundle.
8. Device for implementing a process according to claim 7 , wherein the device comprises a radiation source, a process chamber having an open container with a container wall, a support, which is inside the process chamber, wherein process chamber and support are moveable against each other in vertical direction, a storage container and a recoater, which is moveable in horizontal direction, and wherein the storage container is at least partially filled with a nickel alloy in powder form.
9. Process for the manufacture of a three-dimensional object according to claim 7 , wherein the nickel alloy in powder form prior to solidifying is heated to a temperature of 100° C. or more.
10. Process for the manufacture of a three-dimensional object according to claim 7 , further including a step of subjecting the three-dimensional object initially prepared to a heat treatment, and/or for a time of 3 to 15 h.
11. Process for the preparation of a nickel alloy in powder for use in a process according to claim 7 , wherein the nickel alloy is atomized in an appropriate device.
12. The three-dimensional object prepared according to the process as described in claim 11 , and wherein the three-dimensional object comprises or consists of the nickel alloy.
13. The three-dimensional object according to claim 12 , wherein the three-dimensional object is a gas turbine component.