語系:
繁體中文
English
說明(常見問題)
登入
回首頁
切換:
標籤
|
MARC模式
|
ISBD
Design, Fabrication and Control of R...
~
Stevens Institute of Technology.
Design, Fabrication and Control of Reconfigurable Active Microstructures for Solar Sails.
紀錄類型:
書目-語言資料,印刷品 : Monograph/item
正題名/作者:
Design, Fabrication and Control of Reconfigurable Active Microstructures for Solar Sails./
作者:
Ren, Zhongjing.
出版者:
Ann Arbor : ProQuest Dissertations & Theses, : 2020,
面頁冊數:
157 p.
附註:
Source: Dissertations Abstracts International, Volume: 82-05, Section: B.
Contained By:
Dissertations Abstracts International82-05B.
標題:
Electrical engineering. -
電子資源:
http://pqdd.sinica.edu.tw/twdaoapp/servlet/advanced?query=28090649
ISBN:
9798678190147
Design, Fabrication and Control of Reconfigurable Active Microstructures for Solar Sails.
Ren, Zhongjing.
Design, Fabrication and Control of Reconfigurable Active Microstructures for Solar Sails.
- Ann Arbor : ProQuest Dissertations & Theses, 2020 - 157 p.
Source: Dissertations Abstracts International, Volume: 82-05, Section: B.
Thesis (Ph.D.)--Stevens Institute of Technology, 2020.
This item must not be sold to any third party vendors.
Solar sails are flexible and reflective surfaces that enable spacecraft for solar sailing in space travel. Instead of storing and consuming propellant, spacecraft equipped with solar sails can make use of solar radiation pressure (SRP) resulting from the momentum change of photons from the sun for propulsion. The research objectives of this work are to understand the electro-thermal-mechanical coupling behavior of active microstructures for solar sailing applications through mathematic modeling and experimental verification. Requirements for the microstructures include high area-to-mass ratio, adjustable configuration, and high stiffness, etc. Grid microstructures consisting of active bilayer metallic beams made of aluminum and NiTi alloys are proposed. Reconfiguration of the microstructures is enabled by electro-thermal actuation of the bilayer metallic beams through Joule heating. A symmetric design made of dual bilayer metallic beams allows the multilayered microstructures to deploy from 2D to 3D. Design and fabrication of multilayered microstructures for solar sails are proposed and completed. In-situ electrical characterization of the microstructures proves that large 3D deployment (more than ~11µm) of 2D microstructures (~1.2um thick) is possible at 460K by applying a constant current of 5mA. Electro-thermal and thermo-mechanical models of the multilayered microstructures actuated by Joule heating in vacuum are established and validated by finite element analysis and experiments, which allow rapid prediction of deformation for a given electrical input. Finally, the thermo-mechanical analysis and mathematical modeling on a representative microstructure for a solar sailing application are conducted by considering the effects of Joule heating, solar radiation, and thermal reemission radiation simultaneously. Forces and moments resulting from solar radiation and thermal reemission are predicted. Numerical solutions from the electro-thermo-mechanical model of the microstructure are in good agreement with results given by finite element analysis. This model provides an efficient approach for active control of the forces and moments on the microstructures for solar sailing application.
ISBN: 9798678190147Subjects--Topical Terms:
596380
Electrical engineering.
Subjects--Index Terms:
3D deployment
Design, Fabrication and Control of Reconfigurable Active Microstructures for Solar Sails.
LDR
:03580nam a2200433 4500
001
1038029
005
20210910100659.5
008
211029s2020 ||||||||||||||||| ||eng d
020
$a
9798678190147
035
$a
(MiAaPQ)AAI28090649
035
$a
AAI28090649
040
$a
MiAaPQ
$c
MiAaPQ
100
1
$a
Ren, Zhongjing.
$3
1335361
245
1 0
$a
Design, Fabrication and Control of Reconfigurable Active Microstructures for Solar Sails.
260
1
$a
Ann Arbor :
$b
ProQuest Dissertations & Theses,
$c
2020
300
$a
157 p.
500
$a
Source: Dissertations Abstracts International, Volume: 82-05, Section: B.
500
$a
Advisor: Shi, Yong.
502
$a
Thesis (Ph.D.)--Stevens Institute of Technology, 2020.
506
$a
This item must not be sold to any third party vendors.
520
$a
Solar sails are flexible and reflective surfaces that enable spacecraft for solar sailing in space travel. Instead of storing and consuming propellant, spacecraft equipped with solar sails can make use of solar radiation pressure (SRP) resulting from the momentum change of photons from the sun for propulsion. The research objectives of this work are to understand the electro-thermal-mechanical coupling behavior of active microstructures for solar sailing applications through mathematic modeling and experimental verification. Requirements for the microstructures include high area-to-mass ratio, adjustable configuration, and high stiffness, etc. Grid microstructures consisting of active bilayer metallic beams made of aluminum and NiTi alloys are proposed. Reconfiguration of the microstructures is enabled by electro-thermal actuation of the bilayer metallic beams through Joule heating. A symmetric design made of dual bilayer metallic beams allows the multilayered microstructures to deploy from 2D to 3D. Design and fabrication of multilayered microstructures for solar sails are proposed and completed. In-situ electrical characterization of the microstructures proves that large 3D deployment (more than ~11µm) of 2D microstructures (~1.2um thick) is possible at 460K by applying a constant current of 5mA. Electro-thermal and thermo-mechanical models of the multilayered microstructures actuated by Joule heating in vacuum are established and validated by finite element analysis and experiments, which allow rapid prediction of deformation for a given electrical input. Finally, the thermo-mechanical analysis and mathematical modeling on a representative microstructure for a solar sailing application are conducted by considering the effects of Joule heating, solar radiation, and thermal reemission radiation simultaneously. Forces and moments resulting from solar radiation and thermal reemission are predicted. Numerical solutions from the electro-thermo-mechanical model of the microstructure are in good agreement with results given by finite element analysis. This model provides an efficient approach for active control of the forces and moments on the microstructures for solar sailing application.
590
$a
School code: 0733.
650
4
$a
Electrical engineering.
$3
596380
650
4
$a
Aerospace engineering.
$3
686400
650
4
$a
Thermodynamics.
$3
596513
650
4
$a
Materials science.
$3
557839
650
4
$a
Mechanical engineering.
$3
557493
653
$a
3D deployment
653
$a
Chip scale spacecraft
653
$a
Electro-thermo-mechanical Modeling
653
$a
Multilayered microstructures
653
$a
Reconfigurable geometries
653
$a
Solar sails
653
$a
Reflective surfaces
653
$a
Spacecraft
690
$a
0548
690
$a
0544
690
$a
0348
690
$a
0794
690
$a
0538
710
2
$a
Stevens Institute of Technology.
$b
Schaefer School of Engineering & Science.
$3
1184267
773
0
$t
Dissertations Abstracts International
$g
82-05B.
790
$a
0733
791
$a
Ph.D.
792
$a
2020
793
$a
English
856
4 0
$u
http://pqdd.sinica.edu.tw/twdaoapp/servlet/advanced?query=28090649
筆 0 讀者評論
多媒體
評論
新增評論
分享你的心得
Export
取書館別
處理中
...
變更密碼[密碼必須為2種組合(英文和數字)及長度為10碼以上]
登入