Development of 4D-printed shape memory polymer large-stroke XY micropositioning stages

This paper presents two novel large-stroke XY micropositioning stages that are fabricated completely using four-dimensional (4D) printed polylactic acid (PLA). The proposed designs do not require manual training to perform actuation. Instead, printing speed is used to achieve shape programming and m...

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Main Authors: Cheah, Dik Son, Alshebly, Yousif Saad, Mohamed Ali, Mohamed Sultan, Nafea, Marwan
Format: Article
Published: Institute of Physics 2022
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Online Access:http://eprints.utm.my/103426/
http://dx.doi.org/10.1088/1361-6439/ac68ca
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spelling my.utm.1034262023-11-14T04:25:05Z http://eprints.utm.my/103426/ Development of 4D-printed shape memory polymer large-stroke XY micropositioning stages Cheah, Dik Son Alshebly, Yousif Saad Mohamed Ali, Mohamed Sultan Nafea, Marwan TK Electrical engineering. Electronics Nuclear engineering This paper presents two novel large-stroke XY micropositioning stages that are fabricated completely using four-dimensional (4D) printed polylactic acid (PLA). The proposed designs do not require manual training to perform actuation. Instead, printing speed is used to achieve shape programming and manipulate the deformation and shrinking levels of the PLA microactuators that control the microstage. A relationship between the printing speed, number of layers, and deformation value is formulated to model the performance of the microactuators based on these variables. The same approach is then used to develop the two proposed designs in this work. One-way actuations in the x- and y-axes are achieved using PLA actuators that are printed at speeds in the range of 40-80 mm s-1, while the rest of the structure (passive part) is printed at a speed of 10 mm s-1 to minimize unwanted deformations. The microactuators are activated by immersing the designs in hot water at 85 °C. The maximum values of the x- and y-actuations are achieved when using the highest printing speed for the microactuators. Design 1 offers actuation values of 1.99 and 1.40 mm along the x- and y-axes, respectively, while these values are 1.76 and 2.30 mm when using Design 2. The proposed designs offer a cost-effective batch fabrication solution for micropositioning applications, where the weight of the PLA required for Design 1 and Design 2 is 48.37 g and 12.61 g, respectively, which respectively costs $0.65 and $0.17. The performance of the x- and y-axes actuations show repeatable results with standard deviation values of 0.062 and 0.050 for Designs 1, and 0.054 and 0.047 for Design 2, respectively. Moreover, the standard deviation of the reproducibility of the x- and y-axes actuations are 0.064 and 0.051 for Designs 1, and 0.054 and 0.048 for Design 2, respectively. In addition, the designs offer a promising performance compared to the currently available large-stroke micropositioning stages in terms of the simplicity of the fabrication process and the area ratio. Institute of Physics 2022 Article PeerReviewed Cheah, Dik Son and Alshebly, Yousif Saad and Mohamed Ali, Mohamed Sultan and Nafea, Marwan (2022) Development of 4D-printed shape memory polymer large-stroke XY micropositioning stages. Journal of Micromechanics and Microengineering, 32 (6). n/a. ISSN 0960-1317 http://dx.doi.org/10.1088/1361-6439/ac68ca DOI: 10.1088/1361-6439/ac68ca
institution Universiti Teknologi Malaysia
building UTM Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Teknologi Malaysia
content_source UTM Institutional Repository
url_provider http://eprints.utm.my/
topic TK Electrical engineering. Electronics Nuclear engineering
spellingShingle TK Electrical engineering. Electronics Nuclear engineering
Cheah, Dik Son
Alshebly, Yousif Saad
Mohamed Ali, Mohamed Sultan
Nafea, Marwan
Development of 4D-printed shape memory polymer large-stroke XY micropositioning stages
description This paper presents two novel large-stroke XY micropositioning stages that are fabricated completely using four-dimensional (4D) printed polylactic acid (PLA). The proposed designs do not require manual training to perform actuation. Instead, printing speed is used to achieve shape programming and manipulate the deformation and shrinking levels of the PLA microactuators that control the microstage. A relationship between the printing speed, number of layers, and deformation value is formulated to model the performance of the microactuators based on these variables. The same approach is then used to develop the two proposed designs in this work. One-way actuations in the x- and y-axes are achieved using PLA actuators that are printed at speeds in the range of 40-80 mm s-1, while the rest of the structure (passive part) is printed at a speed of 10 mm s-1 to minimize unwanted deformations. The microactuators are activated by immersing the designs in hot water at 85 °C. The maximum values of the x- and y-actuations are achieved when using the highest printing speed for the microactuators. Design 1 offers actuation values of 1.99 and 1.40 mm along the x- and y-axes, respectively, while these values are 1.76 and 2.30 mm when using Design 2. The proposed designs offer a cost-effective batch fabrication solution for micropositioning applications, where the weight of the PLA required for Design 1 and Design 2 is 48.37 g and 12.61 g, respectively, which respectively costs $0.65 and $0.17. The performance of the x- and y-axes actuations show repeatable results with standard deviation values of 0.062 and 0.050 for Designs 1, and 0.054 and 0.047 for Design 2, respectively. Moreover, the standard deviation of the reproducibility of the x- and y-axes actuations are 0.064 and 0.051 for Designs 1, and 0.054 and 0.048 for Design 2, respectively. In addition, the designs offer a promising performance compared to the currently available large-stroke micropositioning stages in terms of the simplicity of the fabrication process and the area ratio.
format Article
author Cheah, Dik Son
Alshebly, Yousif Saad
Mohamed Ali, Mohamed Sultan
Nafea, Marwan
author_facet Cheah, Dik Son
Alshebly, Yousif Saad
Mohamed Ali, Mohamed Sultan
Nafea, Marwan
author_sort Cheah, Dik Son
title Development of 4D-printed shape memory polymer large-stroke XY micropositioning stages
title_short Development of 4D-printed shape memory polymer large-stroke XY micropositioning stages
title_full Development of 4D-printed shape memory polymer large-stroke XY micropositioning stages
title_fullStr Development of 4D-printed shape memory polymer large-stroke XY micropositioning stages
title_full_unstemmed Development of 4D-printed shape memory polymer large-stroke XY micropositioning stages
title_sort development of 4d-printed shape memory polymer large-stroke xy micropositioning stages
publisher Institute of Physics
publishDate 2022
url http://eprints.utm.my/103426/
http://dx.doi.org/10.1088/1361-6439/ac68ca
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score 13.160551