Abstract
The problem of limited space in spacecraft presents a significant challenge for scientists worldwide, which can be addressed using deployable structures such as the foldable Kresling pattern. Deployable structures offer a critical solution to the spatial constraints inherent in spacecraft design, with the Kresling pattern providing significant potential for lightweight, foldable modules. This study aims to evaluate and compare the mechanical durability of single-layer and two-layer Kresling patterns fabricated from Thermoplastic Polyurethane 95A under repeated loading. The patterns were additively manufactured using Fused Filament Fabrication with optimized parameters, including 100% infill and a 30 mm/s print speed, and subsequently subjected to 100 loading cycles. The results revealed that the one-layer pattern sustained a higher maximum load 20.85 kg than the two-layer configuration 13.29 kg. After 100 cycles, the one-layer pattern’s load capacity decreased by 43.85%, whereas the two-layer pattern showed reductions of 49.73% in top layer and 26.07% in bottom layer. Scanning Electron Microscope (SEM) analysis confirmed that both configurations maintained their structural integrity without failure. This research concludes that both configurations exhibit monostable behavior, providing crucial empirical data on the cyclic performance and durability of Kresling patterns, thereby validating their suitability for deployable spacecraft applications.
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No datasets were generated or analysed during the current study.
References
Turco E, Barchiesi E, Causin A, dell’Isola F, Solci M (2024) Harnessing unconventional buckling of tube origami metamaterials based on Kresling pattern. Int J Solids Struct 300:112925. https://doi.org/10.1016/j.ijsolstr.2024.112925
Sharma H, Upadhyay SH (2022) Deployable toroidal structures based on modified Kresling pattern. Mech Mach Theory. https://doi.org/10.1016/j.mechmachtheory.2022.104972
Wang C, Zhang D, Li J, You Z (2022) Kirigami-inspired thick-panel deployable structures. Int J Solids Struct. https://doi.org/10.1016/j.ijsolstr.2022.111752
Tenorio L, Yokozeki T, Sato J (2022) Structural design of super pressure balloon habitat on the moon. Acta Astronaut 195:183–203. https://doi.org/10.1016/j.actaastro.2022.02.031
Su X, Chen M, Majji M, Skelton RE (2025) Minimal mass design of a tensegrity tower for lunar electromagnetic launching. Acta Astronaut 228:442–452. https://doi.org/10.1016/j.actaastro.2024.12.007
Chang B, Wang Z, Mo S, Liang D, Jin G, Zhu H (2024) Kinematics and dynamics analysis of a deployable supporting structure inspired by Kresling origami. Eng Struct 321:118995. https://doi.org/10.1016/j.engstruct.2024.118995
Liu T, Hao G (2022) Design of deployable structures by using bistable compliant mechanisms. Micromachines. https://doi.org/10.3390/mi13050651
Pratapa PP, Bellamkonda A (2022) Thick panel origami for load-bearing deployable structures. Mech Res Commun. https://doi.org/10.1016/j.mechrescom.2022.103937
Zhang X, Nie R, Chen Y, He B (2021) Deployable structures: structural design and static/dynamic analysis. J Elast 146:199–235. https://doi.org/10.1007/s10659-021-09860-6
Zhang Z, Zhou H, Ma J, Xiong L, Ren S, Sun M, Wu H, Jiang S (2022) Space deployable bistable composite structures with C-cross section based on machine learning and multi-objective optimization. Compos Struct. https://doi.org/10.1016/j.compstruct.2022.115983
Liao Y, Krishnan S (2022) Geometric design and kinematics of spatial deployable structures using tripod-scissor units. Structures 38:323–339. https://doi.org/10.1016/j.istruc.2022.01.009
Hussnain A, Kulkarni S, Khan KA (2024) 2D material-enhanced multi-fold self-sensing and programmable deployable lattice structure. Sci Rep 14(1):20244. https://doi.org/10.1038/s41598-024-70607-z
Dao TD, Ha NS, Goo NS, Yu WR (2018) Design, fabrication, and bending test of shape memory polymer composite hinges for space deployable structures. J Intell Mater Syst Struct 29:1560–1574. https://doi.org/10.1177/1045389X17742728
Guo Y, Wei J (2025) Analysis of decoupled theoretical model of a quasi-static deployment for cylindrical Kresling pattern origami. Aerosp Sci Technol 158:109806. https://doi.org/10.1016/j.ast.2024.109806
Wang C, Zhang D, Li J, You Z (2022) Kirigami-inspired thick-panel deployable structures. Int J Solids Struct 251:111752. https://doi.org/10.1016/j.ijsolstr.2022.111752
Hu K, Jeannin T, Berre J, Ouisse M, Rabenorosoa K (2022) Toward actuation of Kresling pattern-based origami robots. Smart Mater Struct. https://doi.org/10.1088/1361-665X/ac9020
Ye S, Zhao P, Zhao Y, Kavousi F, Feng H, Hao G (2022) A novel radially closable tubular origami structure (RC-ori) for valves. Actuators 11:1–16. https://doi.org/10.3390/act11090243
Masana R, Daqaq MF (2024) Quasi-static behavior of a pair of serially-connected Kresling Origami springs. Int J Solids Struct 298:112877. https://doi.org/10.1016/j.ijsolstr.2024.112877
Neil JO, Salviato M, Yang J (2023) Energy absorption behavior of filament wound CFRP origami tubes pre-folded in Kresling pattern. Compos Struct 304:116376. https://doi.org/10.1016/j.compstruct.2022.116376
Zhou H, Gao J, Chen Y, Shen Z, Lv H, Sareh P (2024) A quasi-zero-stiffness vibration isolator inspired by Kresling origami. Structures 69:107315. https://doi.org/10.1016/j.istruc.2024.107315
Li M, Zhou Z, Hao B, Yu C, Chen Y, Ma J (2023) Design and deformation analysis of an inflatable metallic cylinder based on the Kresling origami pattern. Thin-Walled Struct 188:110859. https://doi.org/10.1016/j.tws.2023.110859
Sharma H, Upadhyay SH (2022) Deployable toroidal structures based on modified Kresling pattern. Mech Mach Theory 176:104972. https://doi.org/10.1016/j.mechmachtheory.2022.104972
Agarwal V, Wang KW (2022) On the nonlinear dynamics of a Kresling-pattern origami under harmonic force excitation. Extreme Mech Lett 52:101653. https://doi.org/10.1016/j.eml.2022.101653
Wang X, Qu H, Guo S (2023) Tristable property and the high stiffness analysis of Kresling pattern origami. Int J Mech Sci 256:108515. https://doi.org/10.1016/j.ijmecsci.2023.108515
Suh JE, Kim TH, Han JH (2021) New approach to folding a thin-walled yoshimura patterned cylinder. J Spacecr Rockets 58:516–530. https://doi.org/10.2514/1.A34784
Zhang J, Gao T, Liu S, Mi Y, Liu J, Wang C (2025) Design and photothermal coupling analysis of Kresling origami-based intelligent dynamic shading system. Thin-Walled Struct 207:112739. https://doi.org/10.1016/j.tws.2024.112739
Moshtaghzadeh M, Izadpanahi E, Mardanpour P (2022) Prediction of fatigue life of a flexible foldable origami antenna with Kresling pattern. Eng Struct 251:113399. https://doi.org/10.1016/j.engstruct.2021.113399
Moshtaghzadeh M, Bakhtiari A, Izadpanahi E, Mardanpour P (2022) Artificial neural network for the prediction of fatigue life of a flexible foldable origami antenna with Kresling pattern. Thin-Walled Struct 174:109160. https://doi.org/10.1016/j.tws.2022.109160
Groen JP, Thomsen CR, Sigmund O (2021) Multi-scale topology optimization for stiffness and de-homogenization using implicit geometry modeling. Struct Multidiscip Optim 63:2919–2934. https://doi.org/10.1007/s00158-021-02874-7
Cazacu O, Chandola N, Revil-Baudard B, Frodal BH, Børvik T, Hopperstad OS (2020) Modeling the effect of notch geometry on the deformation of a strongly anisotropic aluminum alloy. Eur J Mech. https://doi.org/10.1016/j.euromechsol.2020.104004
Şahin HL, Yaman Y (2018) Design and analysis of a novel mechanism for the morphing of trailing edge of an aircraft wing. MATEC Web Conf. https://doi.org/10.1051/matecconf/201818804001
Wang X, Qu H, Hu B, Wang H, Liu W, Guo S (2024) Energy absorption of Kresling pattern thin-walled structures with pre-folded patterns and graded stiffness. Int J Solids Struct 305:113057. https://doi.org/10.1016/j.ijsolstr.2024.113057
Tang Z, Yang K, Wang H, Cui Z, Jin X, Peng Y (2024) Bio-inspired soft pneumatic actuator based on a kresling-like pattern with a rigid skeleton. J Adv Res 63:91–102. https://doi.org/10.1016/j.jare.2023.10.004
Li Y, Zhou C, Yin J (2024) Geometric mechanics of kiri-origami-based bifurcated mechanical metamaterials. Philos Trans R Soc Lond A Math Phys Eng Sci 382:20240010. https://doi.org/10.1098/rsta.2024.0010
Aslani KE, Chaidas D, Kechagias J, Kyratsis P, Salonitis K (2020) Quality performance evaluation of thinwalled PLA 3D printed parts using the taguchi method and grey relational analysis. J Manuf Mater Process. https://doi.org/10.3390/jmmp4020047
Kechagias JD, Fountas NA, Papantoniou I, Vaxevanidis NM (2025) Interlaminar bonding assessment in vertical-oriented filament material extrusion bending specimens. Int J Adv Manuf Technol 136:4977–4989. https://doi.org/10.1007/s00170-025-15124-7
Kechagias JD, Zaoutsos SP (2024) An investigation of the effects of ironing parameters on the surface and compression properties of material extrusion components utilizing a hybrid-modeling experimental approach. Prog Addit Manuf 9:1683–1695. https://doi.org/10.1007/s40964-023-00536-2
Sentanu DA, Muflikhun MA (2023) Characteristics of triangle in triangulated cylindrical origami with axial load test for space deployable structures. J Mech Sci Technol 37:5957–5964. https://doi.org/10.1007/s12206-023-1032-2
Erlangga W, Alandro D, Yudha NK, Utomo RSB, Putro AJN, Rochardjo HSB, Muflikhun MA (2024) Enhanced mechanical properties of the hybrid CFRP-SLA laminates through laminate modifications. Mater Lett. https://doi.org/10.1016/j.matlet.2024.136461
Susanto B, Kumar VV, Sean L, Handayani M, Triawan F, Rahmayanti YD, Ardianto H, Muflikhun MA (2024) Investigating microstructural and mechanical behavior of DLP-printed nickel microparticle composites. J Compos Sci 8:247. https://doi.org/10.3390/jcs8070247
Muflikhun MA, Sentanu DA (2021) Characteristics and performance of carabiner remodeling using 3D printing with graded filler and different orientation methods. Eng Fail Anal 130:105795. https://doi.org/10.1016/j.engfailanal.2021.105795
Mamba’udin A, Handayani M, Triawan F, Rahmayanti YD, Muflikhun MA (2023) Excellent characteristics of environmentally friendly 3D-printed nasopharyngeal swabs for medical sample collection. Polymers. https://doi.org/10.3390/polym15163363
Harnany D, Ramadhan MA, Ardianto H, Jamasri MAM (2024) Synergizing strength and flexibility: investigating mechanical properties of photopolymer resin blends in DLP 3D printing. Progress Add Manuf. https://doi.org/10.1007/s40964-024-00910-8
Lu R, Liu X, Fu S, Xu Z, Chen S, Hu X, Liu L (2018) Experiment and simulation for the crushing of tailor rolled tubes with various geometric parameters. Int J Mech Sci 136:371–395. https://doi.org/10.1016/j.ijmecsci.2017.12.043
Hakim ML, Nafianto R, Nugraha AD, Wiranata A, Supriyanto E, Nugroho G, Muflikhun MA (2024) Advanced FEA simulation of GFRP and CFRP responses to low velocity impact: exploring impactor diameter variations and damage mechanisms. Composites Part C: Open Access. https://doi.org/10.1016/j.jcomc.2024.100541
Wang M, Karagiozova D, Lu G (2024) Quasi-static three-point bending of sandwich panels with Miura-ori cores. Int J Mech Sci. https://doi.org/10.1016/j.ijmecsci.2024.109010
Acknowledgements
We want to thank Mr. Muhammad Luthfi Hakim for the useful dicussion, as well as PSE Research Grant 2025 for the purchasing Raw Materials.
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Conceptualization: MAM Performed investigation: DJ; ACS Formal Analysis: DJ; ACS Methodology: DJ; ACS Data curation: DJ; ACS Writing—original draft: DJ; ACS; AJNP; BF; EP; AK; GN; GNCS; MAM Writing—review & editing: DJ; ACS; AJNP; BF; EP; AK; GN; GNCS; MAM Supervision: MAM Project administration: MAM Funding acquisition: MAM.
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Joshua, D., Sitanggang, A., Putro, A. et al. Performance evaluation of additively manufactured deployable kresling pattern capability for spacecraft modules model under cyclic loading using thermoplastic polyurethane. Prog Addit Manuf 11, 1169–1185 (2026). https://doi.org/10.1007/s40964-025-01404-x
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DOI: https://doi.org/10.1007/s40964-025-01404-x