Process-property relationship in polylactic acid composites reinforced by iron microparticles and 3D printed by fused filament fabrication

被引:11
|
作者
Hasanzadeh, Rezgar [1 ]
Mihankhah, Peyman [1 ]
Azdast, Taher [1 ]
Bodaghi, Mahdi [2 ]
Moradi, Mahmoud [3 ]
机构
[1] Urmia Univ, Fac Engn, Dept Mech Engn, Orumiyeh, Iran
[2] Nottingham Trent Univ, Sch Sci & Technol, Dept Engn, Nottingham, England
[3] Univ Northampton, Fac Arts Sci & Technol, Northampton, England
来源
POLYMER ENGINEERING AND SCIENCE | 2024年 / 64卷 / 01期
关键词
3D printing; composites; impact resistance; mechanical properties; thermoplastics; POLYETHYLENE WASTE;
D O I
10.1002/pen.26556
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
Polylactic acid (PLA) is the most widely used material in the fused filament fabrication (FFF) technique, which is a biocompatible thermoplastic. However, PLA's usefulness is limited by its narrow processing window and relatively low mechanical properties. Therefore, PLA composites have been developed to enhance its properties for FFF printing. A key challenge in producing composite parts via this method is to find the correlation between the mechanical properties of the parts and the process parameters. This knowledge is essential for optimizing the printing process to achieve the desired mechanical properties for composite parts industries such as aerospace, automotive, and medical, where high-performance composite materials are crucial. The ability to control and predict the mechanical properties of FFF-printed composite parts is critical for their successful integration into these industries. In this study, the effect of nozzle temperature (NT), printing speed (PS), and nominal porosity (POR) on the impact strength and specific impact strength of PLA/iron composites was examined using FFF. Response surface methodology (RSM) was used to optimize the experimental design. The results revealed that POR had the most significant effect on the impact resistance data, while NT had the least effect. Reducing the POR led to improved impact resistance in the samples. Multi-objective optimization results showed that the lowest NT (190degree celsius), the lowest POR (30%), and a PS of 50 mm/s were the optimal conditions for multiple objectives. RSM was also utilized to develop mathematical models of impact properties, focusing on varying NT, POR, and PS, which can be used to predict desired impact properties.
引用
收藏
页码:399 / 411
页数:13
相关论文
共 50 条
  • [31] Polylactic acid-based composite using fused filament fabrication: Process optimization and biomedical application
    Choudhary, Neha
    Sharma, Varun
    Kumar, Pradeep
    POLYMER COMPOSITES, 2023, 44 (01) : 69 - 88
  • [32] OPTIMIZATION OF DESIGN PROCESS OF FUSED FILAMENT FABRICATION (FFF) 3D PRINTING
    Kim, Jaeyoon
    Kang, Bruce S.
    PROCEEDINGS OF THE ASME INTERNATIONAL MECHANICAL ENGINEERING CONGRESS AND EXPOSITION, 2018, VOL 2, 2019,
  • [33] Effects of key process parameters on tensile properties and interlayer bonding behavior of 3D printed PLA using fused filament fabrication
    Gajjar, Tusharbhai
    Yang, Richard
    Ye, Lin
    Zhang, Y. X.
    PROGRESS IN ADDITIVE MANUFACTURING, 2025, 10 (02) : 1261 - 1280
  • [34] Temperature-compensated constitutive model of fused filament fabrication 3D printed PLA materials with full extrusion temperatures
    Zhu, Kaiyang
    Deng, Zichen
    Dai, Shi
    Yu, Yajun
    RAPID PROTOTYPING JOURNAL, 2022, 28 (01) : 41 - 51
  • [35] The Direct 3D Printing of Functional PEEK/Hydroxyapatite Composites via a Fused Filament Fabrication Approach
    Rodzen, Krzysztof
    Sharma, Preetam K.
    McIlhagger, Alistair
    Mokhtari, Mozaffar
    Dave, Foram
    Tormey, David
    Sherlock, Richard
    Meenan, Brian J.
    Boyd, Adrian
    POLYMERS, 2021, 13 (04) : 1 - 18
  • [36] The influence of forced-air cooling on a 3D printed PLA part manufactured by fused filament fabrication
    Lee, Chun-Ying
    Liu, Chung-Yin
    ADDITIVE MANUFACTURING, 2019, 25 : 196 - 203
  • [37] Effects of process parameters and annealing on the tensile strength of 3D printed carbon fiber reinforced polylactic acid
    Arjun, P.
    Bidhun, V. K.
    Lenin, U. K.
    Amritha, V. P.
    Pazhamannil, Ribin Varghese
    Govindan, P.
    MATERIALS TODAY-PROCEEDINGS, 2022, 62 (P14) : 7379 - 7384
  • [38] 3D printing of high density polyethylene by fused filament fabrication
    Schirmeister, Carl G.
    Hees, Timo
    Licht, Erik H.
    Muelhaupt, Rolf
    ADDITIVE MANUFACTURING, 2019, 28 : 152 - 159
  • [39] Basalt fiber reinforced polypropylene to manufacture 3D printed composites
    Pelaez-Samaniego, Manuel Raul
    Rhodes, Kyleigh
    Garcia-Perez, Tsai
    Chang, Yu-Chung
    Zhang, Jinwen
    Bin Bakri, Muhammad Khusairy
    Yadama, Vikram
    POLYMER COMPOSITES, 2024, 45 (13) : 12362 - 12376
  • [40] Characterization of 3D Printed Polylactic Acid by Fused Granular Fabrication through Printing Accuracy, Porosity, Thermal and Mechanical Analyses
    Fontana, Luca
    Giubilini, Alberto
    Arrigo, Rossella
    Malucelli, Giulio
    Minetola, Paolo
    POLYMERS, 2022, 14 (17)