Design, analysis, and control of a nitinol shape memory alloy rotary actuator for spacecraft deployable structures
Thesis: S.B., Massachusetts Institute of Technology, Department of Mechanical Engineering, 2019 === Cataloged from PDF version of thesis. === Includes bibliographical references (pages 34-35). === Small satellites known as CubeSats are becoming more and more popular in the aerospace industry and in...
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ndltd-MIT-oai-dspace.mit.edu-1721.1-1232602019-12-15T03:17:19Z Design, analysis, and control of a nitinol shape memory alloy rotary actuator for spacecraft deployable structures Contreras, Mario Melendrez. Kerri Cahoy. Massachusetts Institute of Technology. Department of Mechanical Engineering. Massachusetts Institute of Technology. Department of Mechanical Engineering Mechanical Engineering. Thesis: S.B., Massachusetts Institute of Technology, Department of Mechanical Engineering, 2019 Cataloged from PDF version of thesis. Includes bibliographical references (pages 34-35). Small satellites known as CubeSats are becoming more and more popular in the aerospace industry and in academia. The new availability of rockets such as SpaceX's Falcon 9 or even dedicated CubeSat rockets such as Rocket Lab's Electron rocket have provided a new opportunity for many organizations to launch satellites. Depending on the goals of each satellite, they can be configured with many different payloads and mechanisms. Solar panels are one of the most common payloads on CubeSats but are mostly spring-actuated, meaning they cannot be deployed to precise angles. Shape memory alloys have been used to create rotary mechanisms in the past but closed loop control of shape memory alloys in a bending architecture is relatively novel. A rotary shape memory alloy actuator was designed with the use case of precisely pointing solar panels to maximize energy collection. Here we show identification of a system transfer function through multiple step responses and the use of a closed-loop PID control to achieve rise times of about 15 seconds with overshoot errors of 2 to 8 degrees. The experiments also showed the possibility of achieving rapid rise times of less than 2 seconds and accuracy within 2 degrees with some slight changes to the control system. This actuator prototype further develops the possibilities of precision angular actuation in a lightweight, robust, low volume, low power, and simple mechanical system. by Mario Melendrez Contreras. S.B. S.B. Massachusetts Institute of Technology, Department of Mechanical Engineering 2019-12-13T18:58:07Z 2019-12-13T18:58:07Z 2019 2019 Thesis https://hdl.handle.net/1721.1/123260 1130061232 eng MIT theses are protected by copyright. They may be viewed, downloaded, or printed from this source but further reproduction or distribution in any format is prohibited without written permission. http://dspace.mit.edu/handle/1721.1/7582 49 pages application/pdf Massachusetts Institute of Technology |
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Mechanical Engineering. Contreras, Mario Melendrez. Design, analysis, and control of a nitinol shape memory alloy rotary actuator for spacecraft deployable structures |
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Thesis: S.B., Massachusetts Institute of Technology, Department of Mechanical Engineering, 2019 === Cataloged from PDF version of thesis. === Includes bibliographical references (pages 34-35). === Small satellites known as CubeSats are becoming more and more popular in the aerospace industry and in academia. The new availability of rockets such as SpaceX's Falcon 9 or even dedicated CubeSat rockets such as Rocket Lab's Electron rocket have provided a new opportunity for many organizations to launch satellites. Depending on the goals of each satellite, they can be configured with many different payloads and mechanisms. Solar panels are one of the most common payloads on CubeSats but are mostly spring-actuated, meaning they cannot be deployed to precise angles. Shape memory alloys have been used to create rotary mechanisms in the past but closed loop control of shape memory alloys in a bending architecture is relatively novel. A rotary shape memory alloy actuator was designed with the use case of precisely pointing solar panels to maximize energy collection. Here we show identification of a system transfer function through multiple step responses and the use of a closed-loop PID control to achieve rise times of about 15 seconds with overshoot errors of 2 to 8 degrees. The experiments also showed the possibility of achieving rapid rise times of less than 2 seconds and accuracy within 2 degrees with some slight changes to the control system. This actuator prototype further develops the possibilities of precision angular actuation in a lightweight, robust, low volume, low power, and simple mechanical system. === by Mario Melendrez Contreras. === S.B. === S.B. Massachusetts Institute of Technology, Department of Mechanical Engineering |
author2 |
Kerri Cahoy. |
author_facet |
Kerri Cahoy. Contreras, Mario Melendrez. |
author |
Contreras, Mario Melendrez. |
author_sort |
Contreras, Mario Melendrez. |
title |
Design, analysis, and control of a nitinol shape memory alloy rotary actuator for spacecraft deployable structures |
title_short |
Design, analysis, and control of a nitinol shape memory alloy rotary actuator for spacecraft deployable structures |
title_full |
Design, analysis, and control of a nitinol shape memory alloy rotary actuator for spacecraft deployable structures |
title_fullStr |
Design, analysis, and control of a nitinol shape memory alloy rotary actuator for spacecraft deployable structures |
title_full_unstemmed |
Design, analysis, and control of a nitinol shape memory alloy rotary actuator for spacecraft deployable structures |
title_sort |
design, analysis, and control of a nitinol shape memory alloy rotary actuator for spacecraft deployable structures |
publisher |
Massachusetts Institute of Technology |
publishDate |
2019 |
url |
https://hdl.handle.net/1721.1/123260 |
work_keys_str_mv |
AT contrerasmariomelendrez designanalysisandcontrolofanitinolshapememoryalloyrotaryactuatorforspacecraftdeployablestructures |
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1719303343604498432 |