πŸ—οΈ #Lunar and #Martian #StarCrete achieved compressive strengths of 91.7 and 72.0 MPa, respectively, which is well within the domain of high-strength concrete (>42 MPa). Made from πŸ₯” starch + regolith. https://www.degruyter.com/document/doi/10.1515/eng-2022-0390/html

#MoonHabitat #MarsHabitat

StarCrete: A starch-based biocomposite for off-world construction

Robust and affordable technology capabilities are needed before a sustained human presence on the lunar and Martian surfaces can be established. A key challenge is the production of high-strength structural materials from in situ resources to provide spacious habitats with adequate radiation shielding. Ideally, the production of such materials will be achieved through relatively simple, low-energy processes that support other critical systems. Here, we demonstrate the use of ordinary starch as a binder for simulated extraterrestrial regolith to produce a high-strength biocomposite material, termed StarCrete. With this technique, surplus starch produced as food for inhabitants could be used for construction, integrating two critical systems and significantly simplifying the architecture needed to sustain early extraterrestrial colonies. After optimisation, lunar and Martian StarCrete achieved compressive strengths of 91.7 and 72.0 MPa, respectively, which is well within the domain of high-strength concrete (>42 MPa) and surpasses most other proposed technology solutions despite being a relatively low-energy process. The flexural strength of the lunar and Martian StarCrete, at 2.1 and 8.4 MPa, respectively, was also comparable to ordinary concrete (2.5–4.5 MPa). Graphical abstract

De Gruyter

In its most common #terrestrial 🌍 formulation, #concrete is held together with a binder made from #cement powder and water. But cement is made mostly from limestoneβ€”a mineral not present on #Mars πŸ”΄ β€”and Martian water πŸ’§ is rare and precious. An alternative is concrete bound together by #sulfur, of which #Mars has plenty. Two samples' fracture toughnesses πŸ’ͺ were even higher than that of cement-based terrestrial concrete https://pubs.aip.org/physicstoday/Online/41866/Martian-concrete-could-be-tough-stuff

Influence of martian soil simulant on microstructural heterogeneity and mechanical response of martian concretes https://www.sciencedirect.com/science/article/pii/S0093641322001458?via%3Dihub

Picture :   https://commons.wikimedia.org/wiki/File:Brick_production_in_Songea,_Tanzania.jpg

#ISRU #MarsHabitat #StarCrete

πŸ“† Jan 21, 2022 #Cement mixed in #space 🌌 has different properties than cement mixed on #Earth 🌍. The #Microgravity Investigation of Cement Solidification (#MICS) study conducted aboard the International #SpaceStation recently published results examining Lunar πŸŒ™ #regolith simulant (#JSC1A) for its potential use as a #lunar construction πŸ—οΈ material. https://www.nasa.gov/missions/station/five-space-station-research-results-contributing-to-deep-space-exploration

πŸ“† Oct 26, 2020 20 #scientific and #technological breakthroughs achieved as a result of #SpaceStation #science https://www.nasa.gov/missions/station/20-breakthroughs-from-20-years-of-science-aboard-the-international-space-station

#ISS #NASA #SpaceScience

Five Space Station Research Results Contributing to Deep Space Exploration - NASA

More than 3,000 experiments have been conducted aboard the International Space Station during the 21 years humans have been living and working in space. These

NASA