Additively Manufactured Oxide Dispersion Strengthened Steel for Nuclear and High-Temperature Applications

Materials and Coatings
Additively Manufactured Oxide Dispersion Strengthened Steel for Nuclear and High-Temperature Applications (LEW-TOPS-199)
Advanced Steel Technology for Next-Generation Nuclear Energy Systems
Overview
Advanced nuclear energy systems require materials that endure extreme temperatures and intense radiation while maintaining structural integrity. Oxide dispersion strengthened (ODS) steels incorporate nanoscale ceramic particles to enhance high-temperature mechanical properties and radiation tolerance, making them ideal for these demanding environments. However, traditional ODS steel manufacturing relies on mechanical alloying that deforms powder particles during additive manufacturing processes. This incompatibility with modern manufacturing methods has severely limited the applicability of ODS steels in next-generation nuclear systems. In response to this issue, engineers at NASA Glenn Research Center developed Additively Manufactured Oxide Dispersion Strengthened Steel for Nuclear and High-Temperature Applications. This invention coats iron-chromium steel powder with yttria nanoparticles while preserving the flowability needed for additive manufacturing, producing high-strength, radiation-resistant components with design flexibility for nuclear applications.

The Technology
Building on the dispersion and acoustic mixing methods developed during the creation of NASA's Glenn Research Center GRX-810 technology, this Additively Manufactured ODS Steel uses an innovative coating process to overcome the limitations of traditional ODS steel manufacturing. The technology deposits yttrium oxide nanoparticles onto spherical iron-chromium steel powder particles. During the additive manufacturing process, the coated powder particles are melted and consolidated layer by layer using laser powder bed fusion. As the material solidifies, the oxide nanoparticles distribute uniformly throughout the microstructure, creating a dispersion-strengthened material. The dispersed yttria nanoparticles pin grain boundaries and dislocations, significantly improving creep resistance and mechanical strength at elevated temperatures. Preliminary testing has demonstrated a 10-fold improvement in creep properties compared to non-ODS baseline steels. The technology demonstrates compatibility with industrial-scale laser powder bed fusion systems and can be adapted to incorporate alternative ceramic nanoparticles beyond yttria. Applications span the nuclear energy sector, including commercial fission reactor components, fusion reactor first-wall and blanket structures, nuclear thermal propulsion systems for space exploration, and in-space nuclear power systems where extreme temperature performance and radiation resistance are essential. This strengthened steel is available for patent licensing.
Graphic Image of an ODS Steel Test Build. Image shows a scatter plot of superalloy creep rupture life at 1,093  degrees Celsius. GRX-810 presents superior creep properties compared with wrought alloys currently used in 3D printed high-temperature applications. Credit: NASA
Benefits
  • Reduces Activation Characteristics: Iron-chromium based compositions exhibit lower induced radioactivity and shorter delay times compared to nickel or cobalt rich alloys, aligning with industry preferences for nuclear structural materials.
  • Supports Next-Generation Architectures: Can be adapted to fit advanced reactor architectures that depend on internal cooling channels, lattice structures, and non-traditional geometries.
  • High Temperature Performance: Dispersed yttria nanoparticles improve creep resistance and mechanical strength at elevated temperatures.
  • Improves Irradiation Resistance: Oxide nanoparticles serve as sinks for radiation-induced defects, reducing material degradation and extending component lifetimes in neutron-irradiated environments.

Applications
  • Nuclear Fission Reactors: Enables production of high temperature reactor components that withstand extreme radiation and thermal conditions, supporting both new reactor construction and life extension of aging plants.
  • Nuclear Fusion Systems: Provides radiation-resistant material for first-wall structures, divertor components, and blanket modules that endure intense neutron flux and high heat loads in fusion reactor environments.
  • Space Nuclear Propulsion: Supports manufacturing of propulsion system components for deep space missions where high thrust, reduced travel time, and reliability under extreme temperatures are critical.
  • In-Space Nuclear Power Systems: Provides enhanced creep strength and radiation tolerance for manufacturing reactor components used in spacecraft power generation systems.
Technology Details

Materials and Coatings
LEW-TOPS-199
LEW-20812-1
Patent Pending
"A 3D printable alloy designed for extreme environments," Timothy M. Smith, Christopher A. Kantzos, Nikolai A. Zarkevich, Bryan J. Harder, Milan Heczko, Paul R. Gradl, Aaron C. Thompson, Michael J. Mills, Timothy P. Gabb & John W. Lawson, 4/19/2023
Similar Results
Oxide Dispersion Strengthened Medium Entropy Alloy
NASA's ODS-MEA maintains properties up to 1100°C and is not susceptible to deleterious phase changes when exposed to extreme temperatures, an issue ubiquitous to Ni- based superalloys such as Inconel-625 and Inconel-718. Yttria particles are dispersed throughout the alloy to maximize strength and creep resistance at high temperatures using a novel fabrication technique. This technique employs an acoustic mixer to stir nano-scale Yttria oxide powder within a metallic matrix powder, creating a film of Yttria surrounding the larger metallic powder particles. Solid components are then produced from this mixture via SLM, during which the laser disperses the Yttria particles throughout the microstructure. Ultimately, the process eliminates the many expensive and time-consuming steps in the production of ODS alloys via traditional mechanical alloying. NASA's process has been shown to fabricate components with 10x improvement in creep rupture life at 1100°C and provides a 30% increase in strength over what is currently possible with 3D printed parts. The new ODS-MEA composition may find applications where ODS alloys are currently used (e.g., those involving extreme thermal environments). Applications may also include areas where such properties are desirable but the resource-intensive nature and/or inability to produce highly complex geometries via conventional processes ultimately renders their use uneconomical or infeasible. Such uses include gas turbine components (for which increasing inlet temperature enables improved efficiency) for power generation, propulsion (rockets, jet engines, etc.), industrial processes, nuclear energy applications, and sample preparation equipment in the mining and cement production industries, among many others.
Laser powder bed fusion manufactured tensile rods for tensile testing of GRC103y. Credit: NASA
GRC103y: Nano-Yttria Strengthened C103 for Additive Manufacturing
The manufacturing process, building on techniques showcased in LEW-TOPS-151, employs a novel acoustic mixing technique to coat spherical C103 powder particles with a uniform distribution of sub-200 nanometer yttria particles. During laser powder bed fusion additive manufacturing, layer-by-layer remelting disperses these yttria particles uniformly throughout the component microstructure. This eliminates the expensive, time-consuming mechanical alloying steps traditionally required for ODS alloys while enabling near-net-shape fabrication of complex geometries. Performance testing demonstrates substantial improvements: GRC103y exhibits double the yield strength at 800°C and 1.5x the yield strength at 1,400°C compared to baseline C103. The alloy also shows superior thermal stability: after one hour at 1,500°C, GRC103y retains 90% of its room temperature strength compared to only 67% for C103. Preliminary creep testing at 1,300°C and a stress of 50 MPa indicates significant improvements in creep resistance by 2539 times over baseline C103. Furthermore, GRC103y maintains excellent formability, allowing manufacturers to use traditional fabrication methods when desired. While NASA originally developed GRC103y for rocket propulsion and hypersonic vehicle applications, the alloy offers value across multiple industries. Aerospace companies can achieve weight savings or push systems to higher temperatures, while the alloy's compatibility with commercial oxidation coatings makes it suitable for environments requiring oxidation protection. GRC103y is currently available for patent licensing.
Innovative Shape Memory Metal Matrix Composites
Shape memory alloys (SMAs) are metals that can return to their original shape following thermal input. They are commonly used as functional materials in sensors, actuators, clamping fixtures and release mechanisms across industries. SMAs can suffer from dimensional/thermal instability, creep, and/or low hardness, resulting in alloys with little to no work output in the long term. To combat these deficiencies, NASA has developed a process of incorporating nanoparticles of refractory materials (i.e., carbide, oxide, and nitride materials with high temperature resistance) into the alloys. Using various processing methods, the nanoparticles can be effectively mixed and dispersed into the metal alloys as shown in the figure below. In these processes the SMA and refractory material powder is mixed and the refractory nanoparticles incorporated through extrusions, melting, or directly used in additive manufacturing to create parts for applications across the aerospace, automotive, marine, or biomedical sectors. The nanoparticle dispersion is a controllable method to strengthen the SMAs, increasing the hardness of the alloys, reducing the impact of creep, and improving the overall dimensional and thermal stability of the alloys. The related patent is now available to license. Please note that NASA does not manufacture products itself for commercial sale.
Testing of L-PBF GRCop-42 Chamber. This chamber was manufactured with advanced additively manufactured alloys through laser powder bed fusion. The purpose of this was to test the new alloy in a harsh environment. Source: NASA Presentation
Dispersion Enhanced Aluminum Alloys for Additive Manufacturing Applications
Dispersion Enhanced Aluminum Alloys improve the additive manufacturing performance of high-strength aluminum alloys by modifying the alloy powder with uniformly dispersed nano-sized ceramic particles. Building on the dispersion and acoustic mixing methods developed during the creation of NASA Glenn's GRX-810 technology, researchers use an acoustic field to attach nanoscale alumina dispersoids to the surface of each aluminum alloy powder particle. During mixing, acoustic energy creates rapid micro-vibrations that cause the alumina particles to collide with the metal powder, embed against its surface, and distribute into a uniform shell that surrounds each particle. This produces a composite powder in which every aluminum particle carries its own evenly spaced ceramic nucleation sites. When the composite powder is delivered into an additive manufacturing process such as laser powder bed fusion or directed energy deposition, the aluminum alloy melts while the alumina dispersoids remain solid due to their significantly higher melting temperature. As the molten pool flows and mixes, the dispersoids remain suspended throughout the liquid region. During solidification, these solid particles interrupt grain growth and serve as nucleation points that promote the formation of fine equiaxed grains. This refined microstructure distributes thermal stresses more uniformly and disrupts the crack initiation mechanisms that typically occur in high-strength alloys like AA 2050. By stabilizing the alloy during solidification, the technology enables these advanced materials to be printed with greater reliability, improved geometric control, and more consistent mechanical behavior across the final product. The enhanced alloy technology is available for patent licensing.
Conductive Oxides
Conductive High-Toughness Oxides
Oxide coatings have been used in thermal and environmental barrier layers for coatings for hot section turbine applications, among other uses. With the PS-PVD method, Glenn researchers observed the formation of a minority phase of a metastable oxide (zirconium oxide) that is usually found only in a vapor state. They found that the high temperatures and fast deposition process of the PS-PVD system incorporated nonequilibrium phases in the coating and retained them at room temperature as well as at high temperature in the absence of oxygen. The material is vaporized and condensed on the surface via a rapid quenching, essentially &#34trapping&#34 this phase in the deposited coating. The coating microstructure and composition can also be manipulated by changing the processing parameters, allowing the thickness of the coating to be tailored to a given application. Since this metastable phase is conductive, this coating can be used as (for example) an extremely sensitive (thermal or temperature) sensor. It also has very good durability and erosion resistance, making it useful as a protective and conductive coating for electronics and microelectronics. This is an early-stage technology requiring additional development, and Glenn welcomes co-development opportunities.
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