Sapiai Napisah, Jumahat Aidah, Jawaid Mohammad, Khan Anish
Faculty of Mechanical Engineering, Universiti Teknologi MARA (UiTM), Shah Alam, Selangor 40450, Malaysia.
Institute for Infrastructure Engineering Sustainable and Management (IIESM), Universiti Teknologi MARA, Shah Alam, Selangor 40450, Malaysia.
Polymers (Basel). 2020 Oct 29;12(11):2522. doi: 10.3390/polym12112522.
The aim of this study is to evaluate the effect of surface treated multi wall carbon nanotubes (MWCNTs) on compressive properties of the unidirectional (UD) kenaf and hybrid woven glass/UD kenaf fibre reinforced polymer composites. The MWCNTs were first treated using concentrated acid (a mix of HSO and HNO) and silane (three-aminoprophyltriethoxysilane) in order to improve the dispersion within the epoxy matrix using a high shear roll milling technique. In this study, nanomodified epoxies were prepared using 0.5, 0.75 and 1.0 wt % of pristine MWCNT (PCNT), acid treated MWCNT (ACNT) and silane treated MWCNT (SCNT). These nanomodified epoxies were then used for the fabrication of kenaf and hybrid composites using combination of filament winding and resin impregnation. The uniaxial compression test was conducted using a universal testing machine according to the ASTM D3410 standard. The morphology of fractured samples was observed and analysed using scanning electron microscopy (SEM) in order to evaluate the failure behaviour and mechanisms involved during compression. It was found that the addition of treated MWCNT (ACNT and SCNT) improved the compressive properties of kenaf and hybrid composites as compared to those of untreated-MWCNT (PCNT). The addition of 1.0 wt % of SCNT exhibited good compressive properties in both kenaf and hybrid composite systems. The compressive modulus and strength increased by 73.25% and 20.15%, respectively, for composites made of 1.0 wt % SCNT and Kenaf (1.0SCNT/K). For the hybrid composites, the compressive modulus and strength increased by 21.18% and 7.73% for composites made of 1.0 wt % SCNT filled G/K composites (1.0SCNT/G/K).
本研究的目的是评估表面处理的多壁碳纳米管(MWCNT)对单向(UD)红麻以及玻璃纤维/UD红麻混杂编织纤维增强聚合物复合材料压缩性能的影响。首先使用浓酸(硫酸和硝酸的混合物)和硅烷(3-氨丙基三乙氧基硅烷)对MWCNT进行处理,以便通过高剪切辊磨技术改善其在环氧树脂基体中的分散性。在本研究中,使用0.5、0.75和1.0重量百分比的原始MWCNT(PCNT)、酸处理的MWCNT(ACNT)和硅烷处理的MWCNT(SCNT)制备了纳米改性环氧树脂。然后,通过纤维缠绕和树脂浸渍相结合的方法,将这些纳米改性环氧树脂用于制备红麻和混杂复合材料。根据ASTM D3410标准,使用万能试验机进行单轴压缩试验。使用扫描电子显微镜(SEM)观察和分析断裂样品的形态,以评估压缩过程中涉及的失效行为和机制。结果发现,与未处理的MWCNT(PCNT)相比,添加经处理的MWCNT(ACNT和SCNT)提高了红麻和混杂复合材料的压缩性能。在红麻和混杂复合体系中,添加1.0重量百分比的SCNT均表现出良好的压缩性能。对于由1.0重量百分比SCNT和红麻制成的复合材料(1.0SCNT/K),压缩模量和强度分别提高了73.25%和20.15%。对于混杂复合材料,由1.0重量百分比SCNT填充的G/K复合材料(1.0SCNT/G/K)的压缩模量和强度分别提高了21.18%和7.73%。