SBIR-STTR Award

Deployable and Retractable Solar Array for Lunar Surface/Lander Mobility Operations
Award last edited on: 3/27/2023

Sponsored Program
SBIR
Awarding Agency
NASA : GRC
Total Award Amount
$874,132
Award Phase
2
Solicitation Topic Code
H5.01
Principal Investigator
Steve F White

Company Information

Deployable Space Systems Inc (AKA: DSS)

153 Castilian Drive
Goleta, CA 93117
   (805) 845-2314
   info@dss-space.com
   www.deployablespacesystems.com
Location: Single
Congr. District: 24
County: Santa Barbara

Phase I

Contract Number: 80NSSC19C0322
Start Date: 8/19/2019    Completed: 2/18/2020
Phase I year
2019
Phase I Amount
$124,969
Deployable Space Systems, Inc. (DSS) has developed a next-generation high performance solar array system specifically for NASA’s future Lunar Lander and sample return missions. The proposed Lander solar array has game-changing performance metrics in terms of extremely high specific power, ultra-compact stowage volume, affordability, low risk, high environmental survivability/operability, high power and growth capability, high deployed strength and high strength during deployment (for mission environments that have high gravity and wind loading from atmospheres as examples), high deployed stiffness, high reliability, retraction and re-deployment capability, and broad modularity / adaptability to many missions. Most importantly, the proposed innovation has a demonstrated in-space capability to provide multiple and reliable deployments, retractions, and re-deployment operations allowing for continuous mobility operations and shuttling. No other solar array has demonstrated the ability to deploy, retract and re-deploy multiple times in space or through ground testing. The proposed technology innovation significantly enhances Lander and sample return vehicle capabilities by providing a low cost alternative renewable power generating system in place of the standard RTG systems currently being used. The proposed innovation greatly increases performance and autonomy/mobility, decreases risk, and ultimately enables missions. Potential NASA Applications (Limit 1500 characters, approximately 150 words) Applications comprise practically all Exploration, Space Science, Earth Science, Planetary Surface, and other missions that require affordable high-efficiency PV power through of an ultra-lightweight, compact stowage, high strength / stiffness, and highly-modular solar array. The technology is particularly suited for Lander missions that require game-changing performance in terms of affordability, high performance, unsupported deployment in a gravity field, and deployment / retraction / re-deployment capability. Potential Non-NASA Applications (Limit 1500 characters, approximately 150 words) Non-NASA applications comprise missions that require affordable high-efficiency PV power through of an ultra-lightweight, compact stowage, high strength / stiffness, and highly-modular solar array. The technology is particularly suited for missions requiring game-changing performance in terms of low cost, high performance, and deployment / retraction / re-deployment capability for resiliency.

Phase II

Contract Number: 80NSSC20C0127
Start Date: 8/3/2020    Completed: 8/2/2022
Phase II year
2020
Phase II Amount
$749,163
Deployable Space Systems, Inc. (DSS) has developed a next-generation high performance solar array system specifically for NASA’s future Lunar Lander and sample return missions. The proposed Lunar Lander / Surface solar array has game-changing performance metrics in terms of extremely high specific power, ultra-compact stowage volume, affordability, low-risk, high environmental survivability/operability, high power capability, high deployed strength, high strength during deployment (for mission environments that have high gravity and wind loading from atmospheres as examples), high deployed stiffness, high reliability, retraction and re-deployment capability, and broad modularity / adaptability to many missions. Most importantly, the proposed innovation has a demonstrated in-space capability to provide multiple and reliable deployments, retractions, and re-deployment operations allowing for continuous mobility operations and shuttling. No other solar array has demonstrated the ability to deploy, retract and re-deploy multiple times in space or through ground testing. The proposed technology innovation significantly enhances Lunar Lander and sample return vehicle capabilities by providing a low-cost alternative renewable power generating system in place of standard RTG systems currently being used. The proposed innovation greatly increases performance and autonomy/mobility, decreases risk, and ultimately enables missions. Potential NASA Applications (Limit 1500 characters, approximately 150 words) The technology is particularly suited for Lunar Lander and sample return missions that require game-changing performance in terms of affordability, high power, compact stowed packaging, high deployed strength and stiffness, unsupported deployment in 1G, deployment / retraction / re-deployment capability, and lightweight. NASA space applications are comprised of practically all Exploration, Space Science, Earth Science, Planetary Surface, and other missions. Potential Non-NASA Applications (Limit 1500 characters, approximately 150 words) The technology is particularly suited for reconnaissance missions that require game-changing performance in terms of affordability, ultra-lightweight, compact stowage volume, deployment / retraction / re-deployment capability, and high deployed strength and stiffness. The technology is applicable for non-NASA LEO, MEO & GEO missions.