• Dynamic Impact Behavior of Bioinspired Structures Fabricated by Material Extrusion-based 3D Printing
  • Jae Woong Choi and Min-Young Lyu

  • Department of Mechanical System Design Engineering, Seoul National University of Science and Technology, Seoul 01811, Korea

  • 생체 모사 구조를 이용한 재료 압출방식 3D 프린팅 적층 시편의 동적충격 거동
  • 최재웅 · 류민영

  • 서울과학기술대학교 기계시스템디자인공학과

  • Reproduction, stored in a retrieval system, or transmitted in any form of any part of this publication is permitted only by written permission from the Polymer Society of Korea.


References
  • 1. International Organization for Standardization. ISO/ASTM 52900:2021, Additive Manufacturing-General Principles-Fundamentals and Vocabulary; Geneva, Switzerland, 2021.
  •  
  • 2. Perez, D. B.; Celik, E.; Karkkainen, R. L. Investigation of Interlayer Interface Strength and Print Morphology Effects in Fused Deposition Modeling 3D-Printed PLA. 3D Print. Addit. Manuf. 2021, 8, 23-32.
  •  
  • 3. Lay, M.; Thajudin, N. L. N.; Abdul Hamid, Z. A.; Rusli, A.; Abdullah, M. K.; Shuib, R. K. Comparison of Physical and Mechanical Properties of PLA, ABS and Nylon 6 Fabricated Using Fused Deposition Modeling and Injection Molding. Composite Part B: Eng. 2019, 176, 107341.
  •  
  • 4. Sherman, V. R.; Quan, H.; Yang, W.; Ritchie, R. O.; Meyers, M. A. A Comparative Study of Piscine Defense: The Scales of Arapaima gigas, Latimeria chalumnae and Atractosteus spatula. J. Mech. Behav. Biomed. Mater. 2017, 73, 1-16.
  •  
  • 5. Sharma, A.; Shukla, N. K.; Belarbi, M.-O.; Abbas, M.; Garg, A.; Li, L.; Bhutto, J.; Bhatia, A. Bio-Inspired Nacre and Helicoidal Composites: From Structure to Mechanical Applications. Thin-Walled Struct. 2023, 192, 111146.
  •  
  • 6. Song, Z.; Ni, Y.; Cai, S. Fracture Modes and Hybrid Toughening Mechanisms in Oscillated/Twisted Plywood Structure. Acta Biomater. 2019, 91, 284-293.
  •  
  • 7. Yang, F.; Xie, W.; Meng, S. Crack-Driving Force and Toughening Mechanism in Crustacean-Inspired Helicoidal Structures. Int. J. Solids Struct. 2021, 208-209, 107-118.
  •  
  • 8. Wu, K.; Song, Z.; Zhang, S.; Ni, Y.; Cai, S.; Gong, X.; He, L.; Yu, S.-H. Discontinuous Fibrous Bouligand Architecture Enabling Formidable Fracture Resistance with Crack Orientation Insensitivity. Proc. Natl. Acad. Sci. 2020, 117, 15465-15472.
  •  
  • 9. Mencattelli, L.; Pinho, S. T. Realising Bio-Inspired Impact Damage-Tolerant Thin-Ply CFRP Bouligand Structures via Promoting Diffused Sub-Critical Helicoidal Damage. Compos. Sci. Technol. 2019, 182, 107684.
  •  
  • 10. Yang, W.; Sherman, V. R.; Gludovatz, B.; Mackey, M.; Zimmermann, E. A.; Chang, E. H.; Schaible, E.; Qin, Z.; Buehler, M. J.; Ritchie, R. O.; Meyers, M. A. Protective Role of Arapaima gigas Fish Scales: Structure and Mechanical Behavior. Acta Biomaterialia 2014, 10, 3599-3614.
  •  
  • 11. Yin, S.; Yang, W.; Kwon, J.; Wat, A.; Meyers, M. A.; Ritchie, R. O. Hyperelastic Phase-Field Fracture Mechanics Modeling of the Toughening Induced by Bouligand Structures in Natural Materials. J. Mech. Phys. Solids 2019, 131, 204-220.
  •  
  • 12. Liu, J. L.; Lee, H. P.; Tan, V. B. C. Effects of Inter-Ply Angles on the Failure Mechanisms in Bioinspired Helicoidal Laminates. Compos. Sci. Technol. 2018, 165, 282-289.
  •  
  • 13. Grunenfelder, L. K.; Suksangpanya, N.; Salinas, C.; Milliron, G.; Yaraghi, N.; Herrera, S.; Evans-Lutterodt, K.; Nutt, S. R.; Zavattieri, P.; Kisailus, D. Bio-Inspired Impact-Resistant Composites. Acta Biomater. 2014, 10, 3997-4008.
  •  
  • 14. Ma, J.; Luan, Y.; Liu, C.; Li, Z.; Guo, Z.; Li, Y. Global Optimization of Failure Behavior and Strength–Toughness Performances of Fiber Reinforced Bionic Bouligand Structural Composite with Isotropic Stainless Steel Ultra-Thin Strips. Compos. Sci. Technol. 2025, 261, 111040.
  •  
  • 15. Xu, Y.; Feng, D. Enhancing Impact Resistance of Fiber-Reinforced Polymer Composites through Bio-Inspired Helicoidal Structures: A Review. Polym. Compos. 2024, 46, 5823-5856.
  •  
  • 16. Woo, I. Y.; Lyu, M.-Y. Variations in the Tensile Strength in Material Extrusion-Type 3D Printed Specimens for Various Tool Paths. Polym. Korea 2020, 44, 769-775.
  •  
  • 17. Woo, I. Y.; Lyu, M.-Y. Variations in the Impact Strength of Material Extrusion-Type 3D Printed Specimens Depending on Tool Path and Building Direction. Polym. Korea 2020, 44, 471-478.
  •  
  • 18. Woo, I. Y.; Lyu, M.-Y. Improvement of Tensile Strength through Asymmetric Tool Path in Material Extrusion-Type 3D Printing. Polym. Korea 2021, 45, 649-653.
  •  
  • 19. Dreifus, G. Analysis of Tool Path Optimization in Large Scale Additive Manufacturing. Master’s Thesis, Massachusetts Institute of Technology, 2020.
  •  
  • 20. Golhin, A. P.; Tonello, R.; Frisvad, J. R.; Grammatikos, S.; Strandlie, A. Surface Roughness of As-Printed Polymers: A Comprehensive Review. Int. J. Adv. Manuf. Technol. 2023, 127, 987-1043.
  •  
  • 21. Park, S. J.; Park, J. H.; Lee, K. H.; Lyu, M.-Y. Deposition Strength of Specimens Manufactured Using Fused Deposition Modeling Type 3D Printer. Polym. Korea 2016, 40, 846-851.
  •  
  • Polymer(Korea) 폴리머
  • Frequency : Bimonthly(odd)
    ISSN 2234-8077(Online)
    Abbr. Polym. Korea
  • 2024 Impact Factor : 0.6
  • Indexed in SCIE

This Article

  • 2026; 50(2): 323-330

    Published online Mar 25, 2026

  • 10.7317/pk.2026.50.2.323
  • Received on Nov 3, 2025
  • Revised on Dec 24, 2025
  • Accepted on Dec 24, 2025

Correspondence to

  • Min-Young Lyu
  • Department of Mechanical System Design Engineering, Seoul National University of Science and Technology, Seoul 01811, Korea

  • E-mail: mylyu@seoultech.ac.kr