← Back to NASA Technology Projects

Infiltrated Hafnium Carbonitride Protective Layers for Carbon Composite Hot Structures

Completed TRL 4 (started at 2, targeting 4)

Description

The development of novel fabrication techniques to manufacture innovative hot structure architectures is important for NASA. Hot structure applications such as blunt body reentry, unpowered atmospheric flight, and powered sustained atmospheric flight at hypersonic speeds are all areas that will benefit from improved material architectures and are key in a multitude of NASA programs. Currently, hot structures are limited to 2900 °F for extended operation and many material systems have limited reusability. The aforementioned applications would benefit from improved hot structures that can continuously operate at temperatures above 2900 °F and can survive multiple flight cycles. A major barrier to realizing advanced hot structures for hypersonic flight is the development of protective coating materials compatible with carbon/carbon (C/C) substrates. Due to their high specific modulus, high fracture toughness and thermal conductivity, good thermal shock resistance, and excellent high temperature strength, advanced C/C composites are the best choice for hot structures for hypersonic flight. Unfortunately, C/C composites start to rapidly oxidize above 370 °C, which restricts their engineering applications in air. Current protective coatings on C/C typically fail at elevated temperatures and/or under repeated cycles due to poor bonding with C/C resulting in poor thermal conductivity between the coating and the C/C substrate. Reactive solution infiltration processing offers a means to produce integrated bond layers that are reactively fused with the C/C substrate. This effort will develop hafnium based reactive solution infiltration to form HfCN bond layers. HfCN offers a high temperature, high conductivity material solution to improve hot structure performance. This bond coat process will offer improvements over state-of-the-art coatings and enable existing high performance topcoat materials to better adhere to C/C facilitating improved reusability of hot structures.

Benefits

Reentry vehicles, access to space, heat shields, crew capsules, boost engine exit cones, altitude control engine nozzles, roll control engine nozzles, reentry aeroshells

Hypersonic vehicle leading edges, commercial access to space, heat shields, commercial crew capsules, missiles, missile defense interceptors, scramjet inlets, hypersonic airplanes

Details

Technology areaMaterials, Structures, Mechanical Systems, and Manufacturing > Materials > Lightweight Structural Materials
ProgramSmall Business Innovation Research/Small Business Tech Transfer (SBIR/STTR)
Lead organizationPlasma Processes, LLC, Huntsville, AL
Start date2021-05-19
End date2021-11-19

Project contacts

Listed on TechPort itself — the most direct way to ask about this specific project.

How to get involved

This is early/mid-stage (TRL 4) — the most realistic path in is NASA SBIR/STTR, which funds small businesses and research institutions to develop technology aligned with NASA's needs (equity-free, phased funding). Check whether a current SBIR/STTR solicitation topic overlaps with this project's technology area, or contact the project directly (above) to ask.

None of these are guaranteed paths for this specific project — TechPort itself doesn't have an "apply" button. Reaching out to the contact(s) above with a specific question is usually the fastest way to find out what's actually open.