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Modification of nanoclay using transition metal ion and its effect on mechanical, physical, and thermal properties of wood-plastic composites

机译:使用过渡金属离子改性纳米粘土及其对木塑复合材料机械,物理和热性能的影响

摘要

In this study, wood-plastic composites (WPCs) were fabricated from Polypropylene (PP), Wood flour (WF), Maleic anhydride grafted polypropylene (MAPP) and nanoclay using extrusion followed by an injection molding technique. The effect of organoclay, montmorillonite (MMT) and transition metal ion (TMI) modified nanoclay which were incorporated into WPCs was studied. The TMI modification was intended to achieve a good dispersion of the nanoclay into WPCs with fewer agglomerates. The TMImodification of the MMT nanoclay was carried out using Copper (II) Chloride. The nanoclay content in the composite was varied at four different loadings (1 to 5 weight percentages). The modification process had proved successful, as a high amount of copper ions were detected in the Energy Dispersion X-ray analysis (EDX) and evenuddistribution of the nanoclay was obtained in Field Emission Scanning Electron Microscope (FESEM). X-Ray Diffraction (XRD) data with higher d-spacing values wasudobtained for TMI-modified nanoclay which suggests that a good intercalated structure has been achieved. TMI-modified nanoclay showed higher degradation temperature in Thermo Gravimetric analysis (TGA) analysis which indicates that modification of nanoclay had improved the thermal stability. Scanning Electron Microscope (SEM)udmicrographs had illustrated lesser holes, cracks, and agglomerates in WPCs loaded by TMI-modified nanoclay due to the modification of nanoclay which enables an even distribution of the nanoclay into the composite. The highest increase in tensile strength was obtained for 1 wt% of organoclay and TMI-modified nanoclay incorporated WPCs. Further addition of nanoclay had decreased mechanical properties due to the agglomeration of nanoclay. Same like mechanical properties, surface mechanical properties and surface creep behaviour were exhibited with higher value at 1 wt% of organoclay and TMI-modified nanoclay loading into the WPCs. The thermal stability was also improved in the organoclay and TMI-modified nanoclay reinforced WPCs. WPCs reinforced by organoclay and TMI-modified nanoclay decreased the waterudabsorption of composite due to the formation of higher compatibility between nanofiller and the polymer matrix. The optimization study was conducted using a response surface methodology (RSM). The optimum tensile strength was obtained as 33.46 MPa at 72 wt% of polypropylene content and 1.38 wt% of nanoclay.
机译:在这项研究中,木塑复合材料(WPC)是由聚丙烯(PP),木粉(WF),马来酸酐接枝聚丙烯(MAPP)和纳米粘土先采用挤压成型技术,再采用注射成型技术制成的。研究了将有机粘土,蒙脱土(MMT)和过渡金属离子(TMI)改性的纳米粘土掺入WPC中的作用。 TMI改性旨在以更少的团聚体将纳米粘土很好地分散到WPC中。 MMT纳米粘土的TMI改性是使用氯化铜(II)进行的。复合材料中纳米粘土的含量在四个不同的负载量(1-5%重量百分比)下发生了变化。事实证明,改性过程是成功的,因为在能量色散X射线分析(EDX)中检测到大量铜离子,并且在场发射扫描电子显微镜(FESEM)中获得了纳米粘土的均匀非分布。对于TMI改性的纳米粘土,具有较高d间距值的X射线衍射(XRD)数据已获得,这表明已实现了良好的插层结构。 TMI改性的纳米粘土在热重分析(TGA)分析中显示出更高的降解温度,这表明纳米粘土的改性提高了热稳定性。扫描电子显微镜(SEM)显微照片显示,由于纳米粘土的改性,使得由TMI改性的纳米粘土负载的WPC的孔,裂纹和附聚物更少,从而使纳米粘土均匀分布到复合物中。对于1wt%的有机粘土和TMI改性的纳米粘土掺入的WPC,获得最大的拉伸强度增加。由于纳米粘土的团聚,进一步添加纳米粘土具有降低的机械性能。像机械性能一样,在1 wt%的有机粘土和TMI改性的纳米粘土加载到WPC中时,也表现出较高的表面机械性能和表面蠕变行为。在有机粘土和TMI改性的纳米粘土增强WPC中,热稳定性也得到了改善。由于纳米填料和聚合物基体之间形成了更高的相容性,因此有机粘土和TMI改性纳米粘土增强的WPC降低了复合材料的水吸附能力。使用响应面方法(RSM)进行了优化研究。在聚丙烯含量为72wt%和纳米粘土为1.38wt%时,获得最佳的拉伸强度为33.46MPa。

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    Yadav Sumit Manohar;

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  • 年度 2017
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