AM for Space
Space additive manufacturing is going to have a key role in enabling the future of human space travel and interplanetary colonization. In fact, it is already playing a key role in enabling the production of low-cost satellites and lighter, more efficient rockets to take cargos into orbit.
Whether it will take another 10, 50 or 100 years for commercial space-based ventures to grow into one of the largest—if not the largest—manufacturing segments, we are already past the dawn of the commercial space age and we just experienced the dawn of the commercial human space age. Commercial space exploration or commercial planetary colonization will soon be within our reach, as several companies of various sizes are now creating viable business opportunities in space for satellites and the communication industry.
One of the most significant challenges that all these space ventures need to overcome in order to place satellites, probes, landers, telescopes or even spacecraft in orbit is the high per kilogram cost required to break free of the Earth’s gravitational pull. This means that for every additional kilogram of payload, mission costs can increase by several orders of magnitude because heavier or bigger payloads require larger and more powerful launch vehicles.
Additive manufacturing provides the most effective tool to optimize weight in systems built to reach space. This is true both for launch vehicles and—until the time when resources are gathered in space—for spaceborne systems and devices. Together with weight-optimized geometries, AM can help to greatly lower the cost of commercial space activities by continuing to drive the development of advanced materials, including metal replacement, high-performance polymers and composites.
Space, the initial frontier
Additional direct advantages can be derived from increased process automation for small batch series or single item production—which is a more relevant issue in rocketry and satellite manufacturing than in any manufacturing segment. This is especially true within the $120-billion commercial infrastructure and support segments—including the manufacturing of spacecraft, in-space platforms and ground equipment, as well as launch services and independent research and development. While the overall revenues will continue to represent only a minimal part of the overall space manufacturing industry, AM has the potential to be one of the key elements that will help the commercial space industry grow into maturity.
Further down the road, with more people traveling in Space, AM more and more production will take place in Space as well. Nowhere is production more distributed than outside of our planet, and no technology can deliver on-location, distributed manufacturing of complex part more efficiently than additive manufacturing. Getting to orbit, getting through space, and staying in space will only be possible through AM.
Availability of construction materials (e.g., metals, water) in space (on asteroids or on surfaces of planetary bodies) creates the possibility to additively build settlements and other facilities without having to take expensive and bulky prefabricated materials out of Earth’s gravitational field. Lunar and Mars regolith, for example, could be used to construct pressurized habitats for human shelter as well as other infrastructure (landing pads, roads, blast walls, shade walls and hangars for protection against thermal radiation and micrometeorites). Several NASA and ESA funded projects explored the concept of using various additive manufacturing techniques to build infrastructure on the Moon and on Mars.
Exactly how it will happen is the Focus of 3dpbm’s Aerospace AM Focus 2020 for this entire month. We have lots of great content coming up so stay tuned.
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Nikon participates in Vast’s latest $500 million funding round
Vast has secured $500 million in funding to advance production of its Haven space stations, with plans to launch Haven-1 in 2027 and establish a continuous human presence in low-Earth…
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Laser 3D printing turns simulated Moon dust into heat-resistant structures
Researchers at Ohio State University have used a laser 3D printing process to transform simulated lunar soil into durable, heat-resistant structures, as part of a long-term NASA goal to support…
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Hypersonix 3D printed scramjet-powered DART AE completes first hypersonic flight
Brisbane-based Hypersonix Launch Systems successfully flew its DART AE hypersonic aircraft on February 27, 2026, reaching speeds exceeding Mach 5 after launch from Rocket Lab’s Launch Complex 2 at the…
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L3Harrris cuts hypersonic propulsion production time 10x
L3Harris Technologies claims to have reduced component production time tenfold, through advances in its additive manufacturing for airbreathing hypersonic propulsion systems. Carrying out the work under a Department of Defense…
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Caracol advances in-orbit autonomous LFAM for European Space Agency
Last spring, the European Space Agency (ESA) awarded large-format AM company Caracol a grant to lead the AI-Based Monitoring of Large Robotic Format Additive Manufacturing in Space (AIMIS-LFAM) project. Now,…
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Hypersonix sets launch window for 3D printed engine-propelled hypersonic craft
Pioneering Brisbane-based aerospace startup Hypersonix Launch Systems has scheduled a late February launch window for a test flight of its DART AE, a 3.5-meter scramjet-powered hypersonic aircraft that’s designed to…
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INNOSPACE expands into automotive sector with Hyundai agreement
South Korean satellite launch service company INNOSPACE is entering the automotive sector following confirmation it will supply its proprietary integrated additive manufacturing monitoring solution, INNO AM-X, to car manufacturer Hyundai.…
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China completes metal 3D printing experiment in space
China has reported a successful mission to undertake 3D metal printing in space, following an experiment on a recent suborbital test flight. As part of its in-orbit manufacturing research program,…
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Hadrian launches additive manufacturing division to expand U.S. defense production capacity
Hadrian, a California-based advanced manufacturing company specializing in AI-driven production systems, is expanding into additive manufacturing with the creation of Hadrian Additive, a new division focused on delivering scalable, production-ready…