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Erschienen in: Shape Memory and Superelasticity 1/2018

16.01.2018 | SPECIAL ISSUE: SHAPE MEMORY AND SUPERELASTIC TECHNOLOGIES CONFERENCE 2017, INVITED PAPER

Development and Testing of a Shape Memory Alloy-Driven Composite Morphing Radiator

verfasst von: P. Walgren, C. Bertagne, M. Wescott, O. Benafan, L. Erickson, J. Whitcomb, D. Hartl

Erschienen in: Shape Memory and Superelasticity | Ausgabe 1/2018

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Abstract

Future crewed deep space missions will require thermal control systems that can accommodate larger fluctuations in temperature and heat rejection loads than current designs. To maintain the crew cabin at habitable temperatures throughout the entire mission profile, radiators will be required to exhibit turndown ratios (defined as the ratio between the maximum and minimum heat rejection rates) as high as 12:1. Potential solutions to increase radiator turndown ratios include designs that vary the heat rejection rate by changing shape, hence changing the rate of radiation to space. Shape memory alloys exhibit thermally driven phase transformations and thus can be used for both the control and actuation of such a morphing radiator with a single active structural component that transduces thermal energy into motion. This work focuses on designing a high-performance composite radiator panel and investigating the behavior of various SMA actuators in this application. Three designs were fabricated and subsequently tested in a relevant thermal vacuum environment; all three exhibited repeatable morphing behavior, and it is shown through validated computational analysis that the morphing radiator concept can achieve a turndown ratio of 27:1 with a number of simple configuration changes.

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Fußnoten
1
The fluid temperature was unable to reach 90 °C in this experiment due to system losses in the tubing.
 
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Metadaten
Titel
Development and Testing of a Shape Memory Alloy-Driven Composite Morphing Radiator
verfasst von
P. Walgren
C. Bertagne
M. Wescott
O. Benafan
L. Erickson
J. Whitcomb
D. Hartl
Publikationsdatum
16.01.2018
Verlag
Springer International Publishing
Erschienen in
Shape Memory and Superelasticity / Ausgabe 1/2018
Print ISSN: 2199-384X
Elektronische ISSN: 2199-3858
DOI
https://doi.org/10.1007/s40830-018-0147-2

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