This Government Contract opportunity from Department Of Energy was posted on May 5, 2026. The submission period has ended. Browse the details below for market research, or find similar active opportunities.
TECHNOLOGY LICENSING OPPORTUNITY: AddiSteel HT
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Los Alamos National Laboratory has developed AddiSteel HT, a 3D-printed ferritic steel formulation based on Grade 91 and Grade 92 compositions that achieves unprecedented high-temperature performance through a proprietary powder bed fusion process. Unlike traditional manufacturing methods, the technique uses precisely controlled laser parameters to create a unique microstructure composed of approximately 80% bainitic grains and 20% martensitic grains, enriched with fine precipitates and dislocations that dramatically enhance strength without sacrificing ductility. This microstructure enables the printed steel to maintain a yield strength of 650 MPa at 600°C—nearly double that of conventionally processed Grade 91 steel—and retain that strength even after prolonged exposure to 650°C for 1000 hours. The innovation leverages commercially available steel powder and standard industrial 3D printers, eliminating the need for exotic materials or new equipment, while also enabling the direct fabrication of complex geometries that reduce machining waste and lead times. A U.S. patent protects the method and resulting material, making it a viable, lower-cost alternative to expensive nickel-based superalloys in high-heat environments. This technology is positioned for immediate application in energy, industrial, and transportation sectors where high-temperature structural integrity is critical, including nuclear reactor components, boiler piping, turbine parts, exhaust systems, pressure vessels, and aerospace components. With a Technology Readiness Level of 5, the material has been validated under representative service conditions and requires minimal post-processing. The licensing opportunity, issued by Triad National Security LLC on behalf of the Department of Energy, invites companies to enter into exclusive or non-exclusive licensing agreements to commercialize AddiSteel HT. Responses are due by June 5, 2026, and interested parties are encouraged to contact the provided licensing email for further discussion. The technology is not open for external development services, and all rights to the patented process and material reside with Los Alamos National Laboratory under the U.S. Patent No. 11,471,946.
General Info
Agency
NAICS
Place of Performance
Los Alamos, NM, 87545, USASet-Aside
Documents
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Timeline
Submission Closed
Organization & Contact Information
Full Description
Additively Manufactured Ferritic Steel with Enhanced High-Temperature Performance
Grade 91 steel is one of the most widely used structural metals in power plants and candidate for advanced nuclear reactors, but it loses much of its strength when operating temperatures climb above 500°C. Researchers at Los Alamos National Laboratory solved that problem by 3D-printing Grade 91 steel using a powder bed fusion process with carefully tuned laser settings. The rapid heating and cooling that occurs during printing creates a microstructure unlike anything achievable through traditional steelmaking, and the printed steel is up to 85% stronger at 600°C than its conventionally made counterpart while remaining just as ductile. A granted U.S. patent (US 11,471,946 B2) protects both the manufacturing method and the resulting material.
Value Proposition
AddiSteel HT gives manufacturers the ability to produce complex steel parts that hold up far better under extreme heat than today’s standard materials. Because the process uses commercially available Grade 91 powder and standard industrial 3D printers, adoption does not require exotic raw materials or entirely new equipment. The performance gains are significant enough that printed ferritic steel could serve as a lower-cost alternative to nickel-based superalloys in many high-temperature applications, opening the door to lighter, cheaper and more geometrically creative component designs across the energy and industrial sectors.
How it Works
A laser selectively melts thin layers of steel powder, one on top of another, to build a solid part from the ground up. LANL’s innovation lies in a proprietary combination of laser power, scanning speed and layer orientation that produces an unusually fine and complex grain structure with a combination of ductile and strong grains during printing. The steels thermal history during the build process creates the microstructure distribution of around 80 % by volume Bainitic grains with a uniform distribution of second phase particles and dislocations, surrounded by 20 % by volume Martensitic grains. This is fundamentally different from what conventional casting or forging can achieve. Each new layer also partially heat-treats the layer beneath it, so the finished part may need little or no additional processing before use.
Technical Description
Conventional Grade 91 steel relies on a tempered martensite structure that loses strength significantly at high temperatures. The additive process instead produces a layered architecture containing multiple distinct microstructural zones within each laser pass, including regions with extremely fine grains, regions rich in strengthening precipitates and small pockets of martensite at the boundaries between passes. Working together, these features resist deformation at elevated temperatures far more effectively than the uniform microstructure of wrought steel.
Testing confirms the advantage across the board. At 600°C, the printed steel reaches a yield strength of 650 MPa versus 350 MPa for the wrought version. Even after being held at 650°C for 1000 hours — a test simulating long-term service — the printed material retains 650 MPa of yield strength at room temperature. The patent covers process parameters for both Grade 91 and Grade 92 steel compositions, broadening the range of potential applications.
Advantages
- Up to 85% stronger at 600 °C than conventionally processed Grade 91 steel
- Stronger and more ductile at the same time, avoiding the usual tradeoff between strength and ductility
- Potential to replace costly nickel superalloys in many high-heat applications, reducing material expense
- Complex shapes printed directly from digital designs, cutting machining waste and production lead times
- Proven thermal stability after extended high-temperature exposure
- Works with multiple steel grades, including Grade 91 and Grade 92
Market Applications
- Nuclear Energy (reactor components, fuel cladding, steam generators)
- Power Generation (boiler piping, turbine parts, heat exchangers)
- Automotive and Transportation (exhaust system components, turbocharger housings)
- Oil, Gas and Chemical Processing (high-temperature piping, pressure vessels)
- Aerospace and Defense (structural parts exposed to extreme heat)
- Industrial Manufacturing (custom tooling, high-heat process equipment)
TRL 5
U.S. Patent No. 11,471,946
LA-UR-26-23628
LANL Tech Partnerships: Unlock the Innovative Potential
Los Alamos National Laboratory offers a wide range of cutting-edge technologies and capabilities that may provide your company with a competitive edge in the market and unlock the innovative potential that can enhance, refine, and revolutionize your products.
LANL’s licensing program focuses on moving inventions developed by our researchers to commercial innovations. Patented and patent pending inventions and copyrighted software are available to existing and start-up companies through exclusive and non-exclusive licensing agreements. For specific discussions, please contact licensing@lanl.gov.
Note: This is not a call for external services for the development of this technology.
https://www.lanl.gov/engage/collaboration/feynman-center/partner-with-us/licensing-technology
m.lanl.gov/tech-search
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