Piezoresistive behavior of DLP 3D printed CNT/polymer nanocomposites under monotonic and cyclic loading

被引:0
作者
Omar Waqas Saadi
Andreas Schiffer
S. Kumar
机构
[1] Khalifa University of Science and Technology,Department of Mechanical Engineering
[2] University of Glasgow,James Watt School of Engineering
来源
The International Journal of Advanced Manufacturing Technology | 2023年 / 126卷
关键词
Strain sensing; Additive manufacturing; Multifunctional composite; Digital light processing; Photocurable resin; Self-sensing;
D O I
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中图分类号
学科分类号
摘要
This study examines the piezoresistive behavior of MWCNT/polymer composites fabricated by the digital light processing (DLP) technique. A photocurable nanocomposite resin feedstock possessing low viscosity with excellent printability and high conductivity was developed for DLP 3D printing of bulk and cellular geometries. By optimizing the resin composition and synthesis route, electrical percolation was achieved at an ultra-low MWCNT loading of 0.01 phr (parts per hundred resin), providing a conductivity of 3.5 × 10−5 S m−1, which is significantly higher than the values reported in the extant works for similar nanocomposites. Reducing the MWCNT content also enhanced the piezoresistivity of the nanocomposite due to longer inter-MWCNT distances in the percolating conductive network. Under quasi-static tensile loading, the nanocomposite with 0.01 phr MWCNT loading showed gauge factors of 2.40 and 4.78, corresponding to the elastic and inelastic regime, respectively. Quasi-static cyclic tensile tests with constant strain amplitudes (within elastic regime) revealed that the response of the nanocomposite was affected by viscoelastic deformation, which caused significant changes in the material’s strain sensing performance between consecutive load cycles. Finally, the developed resin was used to realize a self-sensing gyroid lattice structure, and its strain and damage sensing capabilities were demonstrated.
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页码:1965 / 1978
页数:13
相关论文
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[1]  
Bagheri A(2019)Photopolymerization in 3D printing ACS Appl Polym Mater 1 593-611
[2]  
Jin J(2020)A review on 3D printed matrix polymer composites: its potential and future challenges Int J Adv Manuf Technol 106 1695-1721
[3]  
Saroia J(2021)A review of vat photopolymerization technology: materials, applications, challenges, and future trends of 3d printing Polymers 13 1-20
[4]  
Pagac M(2021)Thermo-resistive and thermo-piezoresistive sensitivity of carbon nanostructure engineered thermoplastic composites processed via additive manufacturing Polym Test 93 106961-924
[5]  
Verma P(2019)Recent advances in three-dimensional bioprinting of stem cells J Tissue Eng Regen Med 13 908-1100
[6]  
Schiffer A(2022)Additive manufacturing of α-amino acid based poly(ester amide)s for biomedical applications Biomacromolecules 23 1083-143
[7]  
Kumar S(2012)Integrating stereolithography and direct print technologies for 3D structural electronics fabrication Rapid Prototyp J 18 129-33266
[8]  
Eswaramoorthy SD(2022)Advancing flexible electronics and additive manufacturing Jpn J Appl Phys 61 SE0803-1498
[9]  
Ramakrishna S(2022)Accurate and on-demand chemical sensors: a print-in-place ion mobility spectrometer Sens Actuators B Chem 362 131791-253
[10]  
Rath SN(2020)Multiscale characterization and constitutive parameters identification of polyamide (PA12) processed via selective laser sintering Polym Test 86 106357-83