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NDE for Ablative Thermal Protection Systems

Completed TRL 7 (started at 4, targeting 7)

Description

This program addresses the need for non-destructive evaluation (NDE) methods for quality assessment and defect evaluation of thermal protection systems (TPS). Novel linear drive eddy current methods are proposed for NDE of carbon-based TPS materials, such as felts, rigid materials, and three dimensional woven fiber composites. Using a combination of physics-based models of layered media, including an eddy current micromechanical model extension for composites, multivariate inverse methods, high resolution imaging, and innovative sensor array constructs, the developed methods will independently measure the material characteristics of interest. In Phase I, the focus was on adapting methods developed for carbon-based composite structures and laminates and demonstrating feasibility of these methods for felts, rigid materials, and three-dimensional woven composites. In Phase II, the focus is on maturing this method, including the instrumentation hardware, models, and sensor designs, to provide scanning assessment and in-situ monitoring capabilities for TPS material condition assessment. JENTEK's MWM-Arrays have a linear drive that permits both scanned type imaging and permanent installation for monitoring of anisotropic properties, temperature, and stresses at multiple depths. The projected depth of the magnetic field into the test material can be adjusted through the sensor dimensions and excitation frequencies; this enables inspection of materials more than 1.0-in. thick and supports measuring far-side surface recession in ablator materials. JENTEK delivered the MWM-Array solution used by NASA KSC on the Space Shuttle Leading Edge to detect damage of the Reinforced Carbon-Carbon (RCC) thermal protection tiles; thus JENTEK is well-positioned to deliver a practical TPS NDE solution.

Benefits

If the program is successful, it will demonstrate the capability of the MWM-Array technology to measure relevant material properties and structural damage in the advanced materials in spacecraft thermal protection systems. This technology will be suitable for flexible and rigid carbon-based materials. This type of analysis tool for detection of damage may be useful for the Multi-Purpose Crew Vehicle, composite overwrapped pressure vessels (COPV's), exhaust nozzles, and other critical composite structures. NASA customers that may benefit from these analysis tools include the Commercial Orbital Transportation Services (COTS) spacecraft manufacturers and other interplanetary programs such as science exploration mission vehicles and human crew vehicles.

There are numerous applications in which NDE measurement and analysis tools are needed to verify design requirements or structural integrity during usage of advanced carbon-based composites, such as three-dimensional woven materials. These include applications for commercial aircraft, wind turbines, land vehicles and composite repairs for pipelines and structures. Examples are inspection of commercial jet engine blades and fuselage components, wind turbine blades, land vehicle frames and liquid natural gas fuel pressure vessels and other structures where proper woven fiber orientation and defect free structures are critical for strength and fatigue life. It is expected that this technology could also be transitioned to support military aircraft fleets which contain substantially composite structures.

Details

Technology areaThermal Management Systems > Thermal Protection Components and Systems > TPS Testing
ProgramSmall Business Innovation Research/Small Business Tech Transfer (SBIR/STTR)
Lead organizationJENTEK Sensors, Inc., Waltham, MA
Start date2014-04-29
End date2016-04-28

Project contacts

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How to get involved

This is a mature technology (TRL 7) — the realistic path in is usually NASA's Technology Transfer Program: licensing an existing NASA patent, or a Space Act Agreement to use NASA facilities/expertise directly. NASA also runs a startup licensing program with no upfront fee for companies formed to commercialize a specific NASA technology.

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