NASA Technical Reports Server (NTRS) 20090017532: Self-Deploying Trusses Containing Shape-Memory Polymers - Info and Reading Options
By NASA Technical Reports Server (NTRS)
"NASA Technical Reports Server (NTRS) 20090017532: Self-Deploying Trusses Containing Shape-Memory Polymers" and the language of the book is English.
“NASA Technical Reports Server (NTRS) 20090017532: Self-Deploying Trusses Containing Shape-Memory Polymers” Metadata:
- Title: ➤ NASA Technical Reports Server (NTRS) 20090017532: Self-Deploying Trusses Containing Shape-Memory Polymers
- Author: ➤ NASA Technical Reports Server (NTRS)
- Language: English
Edition Identifiers:
- Internet Archive ID: NASA_NTRS_Archive_20090017532
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"NASA Technical Reports Server (NTRS) 20090017532: Self-Deploying Trusses Containing Shape-Memory Polymers" Description:
The Internet Archive:
Composite truss structures are being developed that can be compacted for stowage and later deploy themselves to full size and shape. In the target applications, these smart structures will precisely self-deploy and support a large, lightweight space-based antenna. Self-deploying trusses offer a simple, light, and affordable alternative to articulated mechanisms or inflatable structures. The trusses may also be useful in such terrestrial applications as variable-geometry aircraft components or shelters that can be compacted, transported, and deployed quickly in hostile environments. The truss technology uses high-performance shape-memory-polymer (SMP) thermoset resin reinforced with fibers to form a helical composite structure. At normal operating temperatures, the truss material has the structural properties of a conventional composite. This enables truss designs with required torsion, bending, and compression stiffness. However, when heated to its designed glass transition temperature (Tg), the SMP matrix acquires the flexibility of an elastomer. In this state, the truss can be compressed telescopically to a configuration encompassing a fraction of its original volume. When cooled below Tg, the SMP reverts to a rigid state and holds the truss in the stowed configuration without external constraint. Heating the materials above Tg activates truss deployment as the composite material releases strain energy, driving the truss to its original memorized configuration without the need for further actuation. Laboratory prototype trusses have demonstrated repeatable self-deployment cycles following linear compaction exceeding an 11:1 ratio (see figure).
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