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NASA Marshall Space Flight Center In-Space Cryogenic Propulsion Capabilities and Applications to Human Exploration The current focus on lunar exploration and future human missions to Mars is driving in-space propulsion system requirements toward higher performance cryogenic systems with long-duration storage and operational capabilities. Not only do these systems offer higher performance than storable propellant options, but they also enable the potential for in-situ propellant production. Future Mars transit systems are envisioned to utilize either high-thrust nuclear thermal propulsion (with liquid hydrogen propellant), or hybrid systems with both cryogenic chemical systems (likely LOX/CH4) for high acceleration manoeuvres and nuclear electric systems for long duration high Isp manoeuvres. Exploration architectures based on either of these options require the use of high-performance cryogenic propellants with long-duration storage capabilities for both in-space transportation as well as planetary descent and ascent functions. Current efforts focusing on lunar exploration also rely on cryogenic propellants (either LOX/LCH4 or LOX/LH2) for lunar transit and descent/ascent transportation functions.

In-space cryogenic propulsion systems pose numerous technology challenges with respect to long-duration propellant storage and usage, including advanced insulation, tank stratification and pressure management, cryogenic refrigeration to reduce propellant loss through boil off, low leakage cryogenic valves, low temperature liquid acquisition, and cryogenic propellant transfer. NASA has invested in technology development efforts, demonstrating individual technologies and systems-level operations. NASA Marshal Space Flight Center has also invested in multiple test facilities and modular test rigs that allow ground demonstration of numerous integrated technologies and systems concepts of operations. Additional investments have been made to mature analytical capabilities and design tools. These capabilities (both test/demonstration & engineering design/analysis) are available to support both internal efforts and industrial partners in the development of exploration and science mission systems.

With this increased interest, it is critical to understand the current state of in-space cryogenic propulsion technology, determine risks to its successful application to human exploration, and prepare the engineering, test, and evaluation capabilities to support the ambitious plans for future systems. This paper provides a survey of recent developments in in-space cryogenic propulsion and cryogenic propellant management technologies, as well as facilities and engineering/analytical capabilities ready to support current and future exploration efforts.
Document ID
20240004387
Acquisition Source
Marshall Space Flight Center
Document Type
Conference Paper
Authors
Thomas M Brown
(Marshall Space Flight Center Redstone Arsenal, United States)
Michel Fazah
(Marshall Space Flight Center Redstone Arsenal, United States)
Michael Allison
(Marshall Space Flight Center Redstone Arsenal, United States)
Hunter Williams
(Marshall Space Flight Center Redstone Arsenal, United States)
Date Acquired
April 12, 2024
Publication Date
April 15, 2024
Publication Information
Publication: Space Propulsion 2024, Conference Proceedings
Publisher: 3AF
Subject Category
Spacecraft Propulsion and Power
Meeting Information
Meeting: 9th Edition of the 3AF International Conference on Space Propulsion
Location: Glasgow Scotland
Country: GB
Start Date: May 20, 2024
End Date: May 23, 2024
Sponsors: 3AF - Association Aeronautique et Astronautique de France
Funding Number(s)
WBS: 981698.01.01.62.10
Distribution Limits
Public
Copyright
Portions of document may include copyright protected material.
Technical Review
NASA Technical Management
Keywords
Cryogenic propulsion
Cryogenic fluid management
Cryogenic systems test and demonstration
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