Programming time-dependent behavior in 4D printing by geometric and printing parameters

Yi-Cong Gao, Dong-Xin Duan, Si-Yuan Zeng, Hao Zheng, Li-Ping Wang, Jian-Rong Tan

Advances in Manufacturing ›› 2024

Advances in Manufacturing ›› 2024 DOI: 10.1007/s40436-024-00489-x
Article

Programming time-dependent behavior in 4D printing by geometric and printing parameters

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Abstract

Smart structures realize sequential motion and self-assembly through external stimuli. With the advancement of four-dimensional (4D) printing, the programming of sequential motions of smart structures is endowed with more design and manufacturing possibilities. In this research, we present a method for physically programming the timescale of shape change in 4D-printed bilayer actuators to enable the sequential motion and self-assembly of smart structures. The effects of the geometric and printing parameters on the time-dependent behavior of 4D-printed bilayer actuators are investigated. The results show that the thickness of the active layer directly affects the timescale of motion, and increasing the thickness leads to faster motion until the thickness ratio is close to 4:6. Similarly, a higher printing speed results in faster motion. Conversely, a higher printing temperature and a greater layer height result in a slower shape change. The effects of the length-width ratio, line width, and filling ratio on the timescale of motion are not as straightforward. Finally, we demonstrate several smart structures that exhibit sequential motion, including a labyrinth-like self-folding structure that is choreographed to achieve multi-step self-shaping and a flower-shaped structure where each part completes its movement sequentially to avoid collisions. The presented method extends the programmability and functional capabilities of 4D printing.

Keywords

Time-dependent behavior / Bilayer actuator / Four-dimensional (4D) printing / Smart structure

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Yi-Cong Gao, Dong-Xin Duan, Si-Yuan Zeng, Hao Zheng, Li-Ping Wang, Jian-Rong Tan. Programming time-dependent behavior in 4D printing by geometric and printing parameters. Advances in Manufacturing, 2024 https://doi.org/10.1007/s40436-024-00489-x

References

[1.]
Lendlein A, Behl M, Hiebl B, et al. Shape-memory polymers as a technology platform for biomedical applications. Expert Rev Med Dev, 2010, 7(3): 357-379.
CrossRef Google scholar
[2.]
Maidin S, Wee KJ, Sharum MA, et al. A review on 4D additive manufacturing - the application, smart materials & effect of various stimuli on 4D printed objects. J Teknol, 2023, 85(8): 63-71.
[3.]
Aldawood FK. A comprehensive review of 4D printing: state of the arts, opportunities, and challenges. Actuators, 2023, 12(3): 101.
CrossRef Google scholar
[4.]
Carrell J, Gruss G, Gomez E. Four-dimensional printing using fused-deposition modeling: a review. Rapid Prototyping J, 2020, 26(5): 855-869.
CrossRef Google scholar
[5.]
Sharma S, Chhetry A, Zhang SP, et al. Hydrogen-bond-triggered hybrid nanofibrous membrane-based wearable pressure sensor with ultrahigh sensitivity over a broad pressure range. ACS Nano, 2021, 15(3): 4380-4393.
CrossRef Google scholar
[6.]
Wu HZ, Zhang X, Ma Z, et al. A material combination concept to realize 4D printed products with newly emerging property/functionality. Adv Sci, 2020, 7(9): 1903208.
CrossRef Google scholar
[7.]
Wang X, Xia Z, Zhao C, et al. Microstructured flexible capacitive sensor with high sensitivity based on carbon fiber-filled conductive silicon rubber. Sensor Actuat A-Phys, 2020, 312.
CrossRef Google scholar
[8.]
Kurakula M, Koteswara Rao GSN. Moving polyvinyl pyrrolidone electrospun nanofibers and bioprinted scaffolds toward multidisciplinary biomedical applications. Eur Polym J, 2020, 136.
CrossRef Google scholar
[9.]
Tao R, Ji L, Li Y, et al. 4D printed origami metamaterials with tunable compression twist behavior and stress-strain curves. Compos Part B-Eng, 2020, 201.
CrossRef Google scholar
[10.]
Zeng S, Feng Y, Gao Y, et al. Layout design and application of 4D-printing bio-inspired structures with programmable actuators. Bio-Des Manuf, 2022, 5(1): 189-200.
CrossRef Google scholar
[11.]
Stuart MAC, Huck WTS, Genzer J, et al. Emerging applications of stimuli-responsive polymer materials. Nat mater, 2010, 9(2): 101-113.
CrossRef Google scholar
[12.]
Sun L, Huang WM, Ding Z, et al. Stimulus-responsive shape memory materials: a review. Mater Des, 2012, 33: 577-640.
CrossRef Google scholar
[13.]
Sydney Gladman A, Matsumoto EA, Nuzzo RG, et al. Biomimetic 4D printing. Nat mater, 2016, 15(4): 413-418.
CrossRef Google scholar
[14.]
Deng D, Chen Y. Origami-based self-folding structure design and fabrication using projection based stereolithography. J Mech Des, 2015, 137(2): .
CrossRef Google scholar
[15.]
Peraza-Hernandez EA, Hartl DJ, Malak RJ Jr. Design and numerical analysis of an SMA mesh-based self-folding sheet. Smart Mater Struct, 2013, 22(9): .
CrossRef Google scholar
[16.]
Le Duigou A, Castro M, Bevan R, et al. 3D printing of wood fibre biocomposites: from mechanical to actuation functionality. Mater Des, 2016, 96: 106-114.
CrossRef Google scholar
[17.]
Teoh JEM, Zhao Y, An J, et al. Multi-stage responsive 4D printed smart structure through varying geometric thickness of shape memory polymer. Smart Mater Struct, 2017, 26(12): .
CrossRef Google scholar
[18.]
Correa D, Poppinga S, Mylo MD, et al. 4D pine scale: biomimetic 4D printed autonomous scale and flap structures capable of multi-phase movement. Philos T R Soc A, 2020, 378(2167): 20190445.
CrossRef Google scholar
[19.]
Alshebly YS, Nafea M. Effects of printing parameters on 4D-printed PLA actuators. Smart Mater Struct, 2023, 32(6): .
CrossRef Google scholar
[20.]
Wang J, Wang Z, Song Z, et al. Programming multistage shape memory and variable recovery force with 4D printing parameters. Adv Mater Technol-US, 2019, 4(11): 1900535.
CrossRef Google scholar
[21.]
Ghazal AF, Zhang M, Mujumdar AS, et al. Progress in 4D/5D/6D printing of foods: Applications and R&D opportunities. Crit Rev Food Sci, 2022, 63(25): 7399-7422.
CrossRef Google scholar
[22.]
Testoni O, Lumpe T, Huang JL, et al. A 4D printed active compliant hinge for potential space applications using shape memory alloys and polymers. Smart Mater Struct, 2021, 30(8): .
CrossRef Google scholar
[23.]
Bodaghi M, Damanpack AR, Liao WH. Self-expanding/shrinking structures by 4D printing. Smart Mater Struct, 2016, 25(10): .
CrossRef Google scholar
[24.]
Mao Y, Yu K, Isakov MS, et al. Sequential self-folding structures by 3D printed digital shape memory polymers. Sci Rep, 2015, 5(1): 13616.
CrossRef Google scholar
[25.]
Lai J, Ye X, Liu J, et al. 4D printing of highly printable and shape morphing hydrogels composed of alginate and methylcellulose. Mater Des, 2021, 205.
CrossRef Google scholar
[26.]
Yamamura S, Iwase E. Hybrid hinge structure with elastic hinge on self-folding of 4D printing using a fused deposition modeling 3D printer. Mater Des, 2021, 203.
CrossRef Google scholar
[27.]
Soleimanzadeh H, Rolfe B, Bodaghi M, et al. Closed-loop 4D-printed soft robots. Mater Des, 2020, 188.
CrossRef Google scholar
[28.]
Zhou X, Ren L, Song Z, et al. Advances in 3D/4D printing of mechanical metamaterials: From manufacturing to applications. Compos Part B-Eng, 2023.
CrossRef Google scholar
[29.]
Le Duigou A, Fruleux T, Matsuzaki R, et al. 4D printing of continuous flax-fibre based shape-changing hygromorph biocomposites: Towards sustainable metamaterials. Mater Des, 2021, 211.
CrossRef Google scholar
[30.]
Demoly F, Dunn ML, Wood KL, et al. The status, barriers, challenges, and future in design for 4D printing. Mater Des, 2021, 212.
CrossRef Google scholar
[31.]
Li X, Fan L, Li R, et al. 3D/4D printing of β-cyclodextrin-based high internal phase emulsions. J Food Eng, 2023, 348.
CrossRef Google scholar
[32.]
Yao T, Wang Y, Zhu B, et al. 4D printing and collaborative design of highly flexible shape memory alloy structures: a case study for a metallic robot prototype. Smart Mater Struct, 2020, 30(1): .
CrossRef Google scholar
[33.]
Tahouni Y, Krüger F, Poppinga S, et al. Programming sequential motion steps in 4D-printed hygromorphs by architected mesostructure and differential hygro-responsiveness. Bioinspir Biomim, 2021, 16(5): .
CrossRef Google scholar
[34.]
El Magri A, Vaudreuil S, Ayad B, et al. Effect of printing parameters on tensile, thermal and structural properties of 3D-printed poly (ether ketone ketone) PEKK material using fused deposition modeling. J Appl Polym Sci, 2023, 29(140): 54078.
CrossRef Google scholar
[35.]
Zeng S, Gao Y, Feng Y, et al. Programming the deformation of a temperature-driven bilayer structure in 4D printing. Smart Mater Struct, 2019, 28(10): .
CrossRef Google scholar
[36.]
Zeng S, Gao Y, Tan J et al (2022) Self-assembly by 4D printing: design and fabrication of sequential self-folding. In: Proceedings of the ASME conference on smart materials, adaptive structures and intelligent systems, Vol 86274, p V001T03A005. https://doi.org/10.1115/SMASIS2022-89459
[37.]
Timoshenko S. Analysis of bi-metal thermostats. JOSA, 1925, 11(3): 233-255.
CrossRef Google scholar
[38.]
Zeng S, Gao Y, Qiu H, et al. Design, fabrication and application of self-spiraling pattern-driven 4D-printed actuator. Sci Rep-UK, 2022, 12(1): 18874.
CrossRef Google scholar
[39.]
Westbrook KK, Parakh V, Chung T, et al. Constitutive modeling of shape memory effects in semicrystalline polymers with stretch induced crystallization. J Eng Mater Technol, 2010, 132(4): .
CrossRef Google scholar
Funding
Natural Science Foundation of Zhejiang Province http://dx.doi.org/10.13039/501100004731(LZ21E050004); National Natural Science Foundation of China http://dx.doi.org/10.13039/501100001809(51975386)

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