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May 9, 20260 citationsOpen Access

In-Situ Resource Utilization Modeling of a Lunar Water Processing System

ACAvery CarlsonNANoah AndersenJCJacob Collins

Key Points

  • The aim is to create a model for utilizing lunar resources effectively for water and oxygen regeneration.
  • Developed the Mission Analysis and Integration Tool (MAIT) using MATLAB for modeling ISRU processes.
  • Evaluated multiple ISRU-related technologies, specifically the Lunar Auger Dryer for water processing.
  • Conducted parametric sweeps generating over 5,000 cases to optimize system architecture.
  • Identified the optimal LADI geometry that minimized energy needs, including assessing cold trap size and radiator requirements.
  • Calculated power dynamics of the electrolysis unit and liquid oxygen storage volume for efficient operation.

Abstract

A key element of achieving a sustained surface presence, such as defined in NASA's Artemis plan, is In-Situ Resource Utilization (ISRU). ISRU is the practice of using local resources to provide mission consumables that reduce system launch mass requirements, and regenerate resources (chiefly, water and oxygen) for propulsion and life support supporting both Lunar and Martian missions. ISRU systems require multiple complex processes, such as excavation, chemical reactors, and electrolysis subsystems that must operate in harmony to optimize the overall system process from beginning to end. The Mission Analysis and Integration Tool (MAIT) was previously developed with MATLAB in FY22 to connect individual subsystem models into a customized, flexible framework for the purpose of technology downselect, optimization, and end-to-end process planning. Beginning in FY24, MAIT became the capital program in the Systems Engineering and Integration (SE the system analysis provided the optimal LADI geometry that minimized energy demands, estimated effects to cold trap size and radiator requirements, and calculated the power dynamics of the electrolysis unit and liquid oxygen storage volume. Additional efforts are being made to demonstrate the ability to scale ISRU technologies supporting the Space Technology Mission Directorate's (STMD) commercialization strategy and increase the MAIT software capability. Work is ongoing for a wide array of ISRU system models beyond the Lunar environment, e.g. production of propellant for a Martian lander.

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Cite This Study

Carlson et al. (2024) studied this question.

synapsesocial.com/papers/69fece83b9154b0b82875e7fhttps://doi.org/10.32865/2346/98773
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