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Laser Forming of Sheet Metal for In-Space Manufacturing ApplicationsAs the in-space economy matures, the migration of typically Earth-bound manufacturing methods, such as metal forming and joining, up to space will be required to meet the increasing demand for refueling and supply depots, habitats, laboratories, lunar surface structures, and sites for deep-space exploration shipbuilding. Only in this way can the magnitude of individual structures begin to exceed what can be launched, deployed, docked, or inflated and allow true economies of scale to be unlocked in space. However, typical terrestrial methods of forming and shaping sheet metal require massive machinery with the ability to deflect reaction forces to a large mass in a fixed reference frame (Earth). To both limit up-mass required for manufacture and to mitigate the issues of reaction forces in the relative reference frames of space, a non-contact, laser-based method of forming metal sheet is proposed.

NASA Marshall Space Flight Center (MSFC), in cooperation with DARPA and the University of Florida (UF), have begun investigation of non-contact methods of laser forming sheet metal in thermal vacuum (TVAC) conditions to great success. To date, several grades of aluminum, stainless steel, and titanium coupons have been formed via laser-induced internal stresses in these metals at both ambient atmosphere and vacuum conditions. Temperatures in these tests ranged from -120 to 60 C, and though the total energy required to induce strain does vary with workpiece temperature and environmental pressure, the method remains predictable and controllable for the materials investigated.

It is believed that this method will revolutionize manufacturing in-space as it not only continues to build upon the capabilities of the laser (sensing, marking, cutting, drilling, joining, and now forming) as an all-in-one tool, but also reduces the need to counteract forming forces as would be required in mechanical bending. In theory, all required stress to induce bending is generated through thermal gradient and strain within the workpiece, meaning that the need for reaction control and fuel expense on-orbit will be limited. Archimedes once stated, “Give me a lever long enough and a fulcrum on which to place it, and I shall move the world”. With a laser as our lever and our workpiece its own fulcrum, we can move the world’s manufacturing into space.
Document ID
20260005007
Acquisition Source
Marshall Space Flight Center
Document Type
Presentation
Authors
Benjamin L Rupp
(Marshall Space Flight Center Redstone Arsenal, United States)
Andrew O'Connor
(Marshall Space Flight Center Redstone Arsenal, United States)
Nathan Fripp
(University of Florida Gainesville, United States)
Jonathan M Bonebrake
(Marshall Space Flight Center Redstone Arsenal, United States)
Ellis R Crabtree
(Oak Ridge Associated Universities Oak Ridge, United States)
Ayman Girgis
(Marshall Space Flight Center Redstone Arsenal, United States)
John C Ivester
(Marshall Space Flight Center Redstone Arsenal, United States)
Jeffrey W Sowards
(Marshall Space Flight Center Redstone Arsenal, United States)
Brian Valdez
(Marshall Space Flight Center Redstone Arsenal, United States)
Jennifer M Jones
(Marshall Space Flight Center Redstone Arsenal, United States)
Date Acquired
June 2, 2026
Subject Category
Space Processing
Metals and Metallic Materials
Lasers and Masers
Meeting Information
Meeting: Worldwide Advanced Manufacturing Symposium (WAMS) 2026
Location: Noordwijk
Country: NL
Start Date: June 8, 2026
End Date: June 11, 2026
Sponsors: European Space Agency, National Aeronautics and Space Administration
Funding Number(s)
WBS: 966826.02.08.11.ST88.25
Distribution Limits
Public
Copyright
Use by or on behalf of the US Gov. Permitted.
Technical Review
Single Expert
Keywords
Laser
Forming
Metals
In-Space Manufacturing
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