Additive manufacturing with metallic composites
US-2017252851-A1 · Sep 7, 2017 · US
US12280432B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-12280432-B2 |
| Application number | US-202318517092-A |
| Country | US |
| Kind code | B2 |
| Filing date | Nov 22, 2023 |
| Priority date | Feb 1, 2017 |
| Publication date | Apr 22, 2025 |
| Grant date | Apr 22, 2025 |
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Some variations provide a process for additive manufacturing of a nanofunctionalized metal alloy, comprising: providing a nanofunctionalized metal precursor containing metals and grain-refining nanoparticles; exposing a first amount of the nanofunctionalized metal precursor to an energy source for melting the precursor, thereby generating a first melt layer; solidifying the first melt layer, thereby generating a first solid layer; and repeating many times to generate a plurality of solid layers in an additive-manufacturing build direction. The additively manufactured, nanofunctionalized metal alloy has a microstructure with equiaxed grains. Other variations provide an additively manufactured, nanofunctionalized metal alloy comprising metals selected from aluminum, iron, nickel, copper, titanium, magnesium, zinc, silicon, lithium, silver, chromium, manganese, vanadium, bismuth, gallium, or lead; and grain-refining nanoparticles selected from zirconium, tantalum, niobium, titanium, or oxides, nitrides, hydrides, carbides, or borides thereof, wherein the additively manufactured, nanofunctionalized metal alloy has a microstructure with equiaxed grains.
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What is claimed is: 1. A process for additive manufacturing of a nanofunctionalized metal alloy, said process comprising: (a) selecting one or more metals; (b) selecting one or more grain-refining nanoparticles; (c) providing a nanofunctionalized metal precursor containing said one or more metals and said grain-refining nanoparticles that are chemically and/or physically disposed on surfaces of said one or more metals; (d) exposing a first amount of said nanofunctionalized metal precursor to an energy source for melting said first amount of said nanofunctionalized metal precursor, thereby generating a first melt layer; and (e) solidifying said first melt layer, thereby generating an additively manufactured, nanofunctionalized metal alloy, wherein said additively manufactured, nanofunctionalized metal alloy is characterized by an average grain size of 1 micron or less, wherein said additively manufactured, nanofunctionalized metal alloy has a microstructure with equiaxed grains, and wherein said microstructure is substantially crack-free. 2. The process of claim 1 , wherein said one or more metals are selected from the group consisting of aluminum, iron, nickel, copper, titanium, magnesium, zinc, silicon, lithium, silver, chromium, manganese, vanadium, bismuth, gallium, lead, and combinations thereof. 3. The process of claim 1 , wherein grain-refining nanoparticles are selected from the group consisting of zirconium, tantalum, niobium, titanium, and oxides, nitrides, hydrides, carbides, or borides thereof, and combinations of the foregoing. 4. The process of claim 1 , wherein said nanofunctionalized metal precursor is in the form of a powder. 5. The process of claim 1 , wherein said nanofunctionalized metal precursor is in the form of a wire. 6. The process of claim 1 , wherein said grain-refining nanoparticles are present in a nanoparticle concentration of at least 0.1 vol % within said nanofunctionalized metal precursor. 7. The process of claim 6 , wherein said grain-refining nanoparticles are present in a nanoparticle concentration of at least 1 vol % within said nanofunctionalized metal precursor. 8. The process of claim 1 , wherein said grain-refining nanoparticles have an average largest dimension from about 50 nanometers to about 5000 nanometers. 9. The process of claim 1 , wherein said energy source is provided by a laser beam, an electron beam, or a combination thereof. 10. The process of claim 1 , wherein steps (d) and (e) utilize a technique selected from the group consisting of selective laser melting, electron beam melting, laser engineered net shaping, selective laser sintering, direct metal laser sintering, integrated laser melting with machining, laser powder injection, laser consolidation, direct metal deposition, wire-directed energy deposition, plasma arc-based fabrication, ultrasonic consolidation, and combinations thereof. 11. The process of claim 1 , wherein said additively manufactured, nanofunctionalized metal alloy is characterized by at least 90 vol % cast microstructure. 12. The process of claim 1 , wherein said microstructure is completely crack-free with no linear or tortuous cracks that are greater than 0.1 microns in width and greater than 10 microns in length. 13. The process of claim 1 , wherein at least 95 vol % of said additively manufactured, nanofunctionalized metal alloy contains no porous voids having an effective diameter of at least 1 micron. 14. The process of claim 1 , said process further comprising repeating steps (d) and (e) a plurality of times to generate a plurality of solid layers by sequentially solidifying a plurality of melt layers in an additive-manufacturing build direction, and wherein said additively manufactured, nanofunctionalized metal alloy has a microstructure with a crystallographic texture that is not solely oriented in said additive-manufacturing build direction. 15. The process of claim 14 , wherein said plurality of solid layers have differing primary growth-direction angles with respect to each other. 16. The process of claim 14 , wherein said plurality of solid layers has an average layer thickness of at least 10 microns. 17. The process of claim 1 , wherein said additively manufactured, nanofunctionalized metal alloy is selected from the group consisting of an aluminum alloy, a steel alloy, a nickel alloy, a titanium alloy, a copper alloy, and combinations thereof. 18. A process for additive manufacturing of a nanofunctionalized metal alloy, said process comprising: (a) selecting one or more metals; (b) selecting one or more grain-refining nanoparticles; (c) providing a nanofunctionalized metal precursor containing said one or more metals and said grain-refining nanoparticles that are chemically and/or physically disposed on surfaces of said one or more metals; (d) exposing a first amount of said nanofunctionalized metal precursor to an energy source for melting said first amount of said nanofunctionalized metal precursor, thereby generating a first melt layer; and (e) solidifying said first melt layer, thereby generating an additively manufactured, nanofunctionalized metal alloy, wherein said additively manufactured, nanofunctionalized metal alloy is characterized by an average grain size less than 10 microns, wherein said additively manufactured, nanofunctionalized metal alloy has a microstructure with equiaxed grains, and wherein said microstructure is substantially crack-free, and wherein at least 90 vol % of said microstructure contains grains that are characterized in that there is less than 25% standard deviation in each of average grain length, average grain width, and average grain height. 19. A process for additive manufacturing of a nanofunctionalized metal alloy, said process comprising: (a) selecting one or more metals; (b) selecting one or more grain-refining nanoparticles; (c) providing a nanofunctionalized metal precursor containing said one or more metals and said grain-refining nanoparticles that are chemically and/or physically disposed on surfaces of said one or more metals; (d) exposing a first amount of said nanofunctionalized metal precursor to an energy source for melting said first amount of said nanofunctionalized metal precursor, thereby generating a first melt layer; and (e) solidifying said first melt layer, thereby generating an additively manufactured, nanofunctionalized metal alloy, wherein said additively manufactured, nanofunctionalized metal alloy is characterized by an average grain size less than 10 microns, wherein said additively manufactured, nanofunctionalized metal alloy has a microstructure with equiaxed grains, and wherein said microstructure is substantially crack-free, and wherein at least 99 vol % of said microstructure contains grains that are characterized in that there is less than 25% standard deviation in each of average grain length, average grain width, and average grain height.
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