Investigation of Drag-Modulated Supersonic Inflatable Aerodynamic Decelerators for Sounding Rocket Payloads
Abstract
The goal of this investigation is to understand the sizing and performance of supersonic inflatable aerodynamic decelerators for Earth-based sounding rocket applications. The recovery system under examination is composed of a supersonic inflatable aerodynamic decelerator and a guided parafoil system to achieve sub-100 m miss distances. Three supersonic inflatable aerodynamic decelerator configurations (tension cone, attached isotensoid, and trailing isotensoid) are examined using the metrics of decelerator mass, aerodynamic performance, and vehicle integration. In terms of aerodynamic performance, the tension cone is the preferred choice for the sizes investigated. The attached isotensoid was shown to be the most mass efficient decelerator, whereas the trailing isotensoid was found to be the more ideal decelerator for vehicle integration. A three-degree-of-freedom trajectory simulation is used in conjunction with Monte Carlo uncertainty analysis to assess the landed accuracy capability of the proposed architectures. In 95% of the cases examined, the drag-modulated inflatable aerodynamic decelerator provides arrivals within the 10 km parafoil capability region, meeting the sub-100 m landed recovery goals. In 76% of the cases examined, the drag-modulated inflatable aerodynamic decelerator arrives within 5 km of this target zone.
Additional Information
The work presented was funded by the Charles Stark Draper Laboratory, Inc. under a University Research and Development project entitled "Deployable Decelerators for Small Atmospheric Recovery Missions." The authors would like to acknowledge Phil Hattis, Amer Fejzic, and Scott Thompson for their contributions to this investigation. The authors would also like to thank Christopher Cordell in the Space Systems Design Laboratory at Georgia Institute of Technology for contributions to the aerodynamics analysis presented in this work.Attached Files
Published - 1.a33087.pdf
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1.a33087.pdf
Additional details
Identifiers
- Eprint ID
- 119927
- Resolver ID
- CaltechAUTHORS:20230310-764655000.15
Related works
- Describes
- 10.2514/1.A33087 (DOI)
Funding
- Charles Stark Draper Laboratory
Dates
- Created
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2023-03-15Created from EPrint's datestamp field
- Updated
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2023-03-15Created from EPrint's last_modified field