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NASA NTRS · 20220006453

Development of a Terrain Mapping/Crater Evolution Measurement using Diffractive Optical Elements

Abstract

When landing on the moon, understanding the interaction of the engine exhaust plume with the lunar surface is critical for the success of the descent and landing flight phases. Two evaluation tools currently used are computational simulations and ground test measurements. Computational simulations require experimental measurements for comparison/validation, but ground test measurements cannot accurately emulate all aspects of an actual lunar landing; flight tests remain the only method of obtaining fully representative data. A terrain mapping/crater evolution measurement system was developed for potential inclusion on a future lander mission. This system uses two stereo cameras viewing a laser dot grid pattern projected on the ground, where the grid is created by shining a laser through one or two diffractive optical elements. CAD simulations of the stereo imaging system are first used to validate the proposed design. Laboratory testing of the system using both a large-scale fixed-geometry crater and a small-scale evolving-geometry crater validate the use of the system for terrain mapping measurements. High-speed, front-illumination shadow particle tracking of particles ejected from the evolving geometry crater is also performed, demonstrating another diagnostic that can be used to further the understanding of plume-surface interactions.

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BibTeXRIS

Joshua M Weisberger, Paul M Danehy, Timothy W Fahringer, Brett F Bathel, Olivia K Tyrrell, Ryan J Thompson, William D Hutchins. Development of a Terrain Mapping/Crater Evolution Measurement using Diffractive Optical Elements. https://ntrs.nasa.gov/citations/20220006453

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