Preparation and properties of cellulose nanocrystals-reinforced Poly (lactic acid) composite filaments for 3D printing applications

被引:50
作者
Ahmad, Noesanto Dewantoro [1 ]
Wildan, Muhammad Waziz [1 ]
Herianto [1 ]
机构
[1] Univ Gadjah Mada, Fac Engn, Dept Mech & Ind Engn, Jalan Grafika 2, Yogyakarta 55281, Indonesia
关键词
Poly(lactic acid); Cellulose nanocrystals; Composite filaments; Tensile properties; MECHANICAL-PROPERTIES; TENSILE PROPERTIES; PLA; NANOCOMPOSITE; BEHAVIOR; FILMS; NANOCELLULOSE; HYDROLYSIS; IMPROVE; SURFACE;
D O I
10.1016/j.rineng.2022.100842
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
In this work, the composite filaments containing different cellulose nanocrystals (CNCs) were successfully fabricated by using a single screw extruder and used to 3D print. The influence of CNCs contents (0, 0.75, 1, and 2 wt%) on the properties of the filaments and 3D printed samples were evaluated. The properties of the filaments and 3D printed samples were characterized by using SEM, FT-IR, XRD, DSC, TGA, and tensile tests. Results revealed that no chemical changes occurred in the presence of CNCs but improved crystallinity was found. The presence of 2 wt% CNCs slightly improved the thermal stability of the neat PLA filament and 3D printed sample. The tensile strength of the neat PLA filament was enhanced by 18.2% by adding up to 1 wt% CNCs but reduced at 2 wt% CNCs content. For the 3D printed samples, the tensile strength of the neat PLA was improved by 11% with the introduction of 0.75 wt% CNCs and decreased for further CNC addition. In addition, compared with the 3D printed samples, the filaments exhibited a higher tensile strength for all CNCs contents. Furthermore, the water absorption of the composite filaments was increased with increasing the CNCs contents. On the other hand, the 3D printed samples containing CNCs showed a lower water absorption than the neat PLA.
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页数:12
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共 81 条
[1]   Preparation and characterization of modified cellulose nanofibers reinforced polylactic acid nanocomposite [J].
Abdulkhani, Ali ;
Hosseinzadeh, Jaber ;
Ashori, Alireza ;
Dadashi, Saeed ;
Takzare, Zahra .
POLYMER TESTING, 2014, 35 :73-79
[2]  
Ahmad N.D., 2022, THESIS U GADJAH MADA
[3]   Preparation and characterization of chitosan/gelatin/nanocrystalline cellulose/calcium peroxide films for potential wound dressing applications [J].
Akhavan-Kharazian, Neda ;
Izadi-Vasafi, Hossein .
INTERNATIONAL JOURNAL OF BIOLOGICAL MACROMOLECULES, 2019, 133 :881-891
[4]   Production of nanocrystalline cellulose from lignocellulosic biomass: Technology and applications [J].
Brinchi, L. ;
Cotana, F. ;
Fortunati, E. ;
Kenny, J. M. .
CARBOHYDRATE POLYMERS, 2013, 94 (01) :154-169
[5]   Cellulose nanocrystals reinforced shape memory polymer cardiovascular stent [J].
Chen, Yu ;
Garces, Irina Tatiana ;
Tang, Tian ;
Ayranci, Cagri .
RAPID PROTOTYPING JOURNAL, 2021, 27 (01) :37-44
[6]  
Cioica N, 2009, B U AGR SCI VET MED, V66
[7]  
Coppola B., 2021, CELLULOSE, V28, P6183
[8]   Importance of Polymer Rheology on Material Extrusion Additive Manufacturing: Correlating Process Physics to Print Properties [J].
Das, Arit ;
Gilmer, Eric L. ;
Biria, Saeid ;
Bortner, Michael J. .
ACS APPLIED POLYMER MATERIALS, 2021, 3 (03) :1218-1249
[9]   Cork-PLA composite filaments for fused deposition modelling [J].
Daver, Fugen ;
Lee, Kok Peng Marcian ;
Brandt, Milan ;
Shanks, Robert .
COMPOSITES SCIENCE AND TECHNOLOGY, 2018, 168 :230-237
[10]   Plant and bacterial nanocellulose: production, properties and applications in medicine, food, cosmetics, electronics and engineering. A review [J].
de Amorim, Julia Didier Pedrosa ;
de Souza, Karina Carvalho ;
Duarte, Cybelle Rodrigues ;
Duarte, Izarelle da Silva ;
Ribeiro, Francisco de Assis Sales ;
Silva, Girlaine Santos ;
de Farias, Patricia Maria Albuquerque ;
Stingl, Andreas ;
Costa, Andrea Fernanda Santana ;
Vinhas, Gloria Maria ;
Sarubbo, Leonie Asfora .
ENVIRONMENTAL CHEMISTRY LETTERS, 2020, 18 (03) :851-869