Sierra Space Awarded DARPA Contract for Lunar Architecture Capability Study

Sierra Space Awarded DARPA Contract for Lunar Architecture Capability Study

Sierra Space, a pure-play commercial space company building the first end-to-end business and technology platform in space, announced that it secured a significant contract with the Defense Advanced Research Projects Agency (DARPA). Under this contract, Sierra Space will embark on a groundbreaking research and development initiative, the 10-Year Lunar Architecture (LunA-10) capability study. Sierra Space will focus on integrating oxygen extraction, electrical storage and hydrogen-oxygen engine technology into an architecture for a commercial lunar infrastructure concept.

Sierra Space has already demonstrated its prowess in carbothermal oxygen production from lunar soil, or “regolith.” In a significant precursor to this agreement, in April, NASA achieved a groundbreaking milestone by successfully extracting oxygen from simulated lunar soil using Sierra Space technology. The team harnessed a high-powered laser to replicate the heat generated by a solar energy concentrator, melting lunar soil simulant within a carbothermal reactor developed in-house by Sierra Space. This breakthrough occurred within a thermal vacuum chamber simulating the lunar environment, setting the stage for future resource utilization on the moon, known as in-situ resource utilization (ISRU).

“At Sierra Space, we recognize that to enable humanity’s extended exploration of space there is a critical need for ISRU oxygen technology on the lunar surface, given its strategic importance in terms of mobility, life support systems and potential commercial applications,” said Tom Vice, CEO, Sierra Space. “This formative work with DARPA is of paramount importance to Sierra Space’s efforts to both shape the future of extended human missions to space and also to broaden access to space by removing the high costs associated with transporting oxygen propellant to the lunar surface.”

Sierra Space envisions using carbothermal technology to manufacture oxygen on the lunar surface, contributing to the development of a self-sustaining lunar economy. This collaboration with DARPA will enable Sierra Space to conduct a system concept review and establish quantitative requirements for future endeavours. The ultimate goal is to optimize lunar architecture, reduce launch mass and foster a vibrant translunar economy.

As part of this agreement, DARPA will maintain continuous involvement with Sierra Space, including access to research results and certain rights in patents and data. Sierra Space has the principal purpose of advancing research and technology goals through this agreement, with a focus on innovation and progress for the benefit of space exploration and humanity.

Click here to learn more about the 10-Year Lunar Architecture (LunA-10) Capability Study.

Click here to learn more about Sierra Space's Space Capabilities and Technologies.

Publisher: SatNow
Tags:-  SatelliteLaunchGround

GNSS Constellations - A list of all GNSS satellites by constellations

beidou

Satellite NameOrbit Date
BeiDou-3 G4Geostationary Orbit (GEO)17 May, 2023
BeiDou-3 G2Geostationary Orbit (GEO)09 Mar, 2020
Compass-IGSO7Inclined Geosynchronous Orbit (IGSO)09 Feb, 2020
BeiDou-3 M19Medium Earth Orbit (MEO)16 Dec, 2019
BeiDou-3 M20Medium Earth Orbit (MEO)16 Dec, 2019
BeiDou-3 M21Medium Earth Orbit (MEO)23 Nov, 2019
BeiDou-3 M22Medium Earth Orbit (MEO)23 Nov, 2019
BeiDou-3 I3Inclined Geosynchronous Orbit (IGSO)04 Nov, 2019
BeiDou-3 M23Medium Earth Orbit (MEO)22 Sep, 2019
BeiDou-3 M24Medium Earth Orbit (MEO)22 Sep, 2019

galileo

Satellite NameOrbit Date
GSAT0223MEO - Near-Circular05 Dec, 2021
GSAT0224MEO - Near-Circular05 Dec, 2021
GSAT0219MEO - Near-Circular25 Jul, 2018
GSAT0220MEO - Near-Circular25 Jul, 2018
GSAT0221MEO - Near-Circular25 Jul, 2018
GSAT0222MEO - Near-Circular25 Jul, 2018
GSAT0215MEO - Near-Circular12 Dec, 2017
GSAT0216MEO - Near-Circular12 Dec, 2017
GSAT0217MEO - Near-Circular12 Dec, 2017
GSAT0218MEO - Near-Circular12 Dec, 2017

glonass

Satellite NameOrbit Date
Kosmos 2569--07 Aug, 2023
Kosmos 2564--28 Nov, 2022
Kosmos 2559--10 Oct, 2022
Kosmos 2557--07 Jul, 2022
Kosmos 2547--25 Oct, 2020
Kosmos 2545--16 Mar, 2020
Kosmos 2544--11 Dec, 2019
Kosmos 2534--27 May, 2019
Kosmos 2529--03 Nov, 2018
Kosmos 2527--16 Jun, 2018

gps

Satellite NameOrbit Date
Navstar 82Medium Earth Orbit19 Jan, 2023
Navstar 81Medium Earth Orbit17 Jun, 2021
Navstar 78Medium Earth Orbit22 Aug, 2019
Navstar 77Medium Earth Orbit23 Dec, 2018
Navstar 76Medium Earth Orbit05 Feb, 2016
Navstar 75Medium Earth Orbit31 Oct, 2015
Navstar 74Medium Earth Orbit15 Jul, 2015
Navstar 73Medium Earth Orbit25 Mar, 2015
Navstar 72Medium Earth Orbit29 Oct, 2014
Navstar 71Medium Earth Orbit02 Aug, 2014

irnss

Satellite NameOrbit Date
NVS-01Geostationary Orbit (GEO)29 May, 2023
IRNSS-1IInclined Geosynchronous Orbit (IGSO)12 Apr, 2018
IRNSS-1HSub Geosynchronous Transfer Orbit (Sub-GTO)31 Aug, 2017
IRNSS-1GGeostationary Orbit (GEO)28 Apr, 2016
IRNSS-1FGeostationary Orbit (GEO)10 Mar, 2016
IRNSS-1EGeosynchronous Orbit (IGSO)20 Jan, 2016
IRNSS-1DInclined Geosynchronous Orbit (IGSO)28 Mar, 2015
IRNSS-1CGeostationary Orbit (GEO)16 Oct, 2014
IRNSS-1BInclined Geosynchronous Orbit (IGSO)04 Apr, 2014
IRNSS-1AInclined Geosynchronous Orbit (IGSO)01 Jul, 2013