首页> 外文期刊>Journal of polymers and the environment >Novel Cellulosic Natural Fibers from Abelmoschus Ficulneus Weed: Extraction and Characterization for Potential Application in Polymer Composites
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Novel Cellulosic Natural Fibers from Abelmoschus Ficulneus Weed: Extraction and Characterization for Potential Application in Polymer Composites

机译:来自Abelmoschus ficulneus杂草的新型纤维素天然纤维:在聚合物复合材料中潜在应用的提取和表征

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摘要

Owing to the mounting environmental consciousness, natural fibers in composite materials have become inevitable, especially for lightweight semi-structural applications which includes the door panels, side body structures, stressed shell structure and hood components in automotive and aerospace industry. This study represents the properties of raw and NaOH treated novel cellulosic Abelmoschus ficulneus weed plant fibers. The extracted fibers were characterized by physicochemical analysis, fourier transform infrared spectroscopy, X-ray diffraction, thermogravimetric analysis, and Differential scanning calorimetry, single fiber tensile test, optical microscopy, and scanning electron microscopy. The physicochemical analysis found that the extracted fiber possessed higher cellulose content (80.86). The extracted fiber was also chemically modified by NaOH treatment, which enhanced the tensile and thermal properties. The peak load at which the fiber failure occurred improved from 2.87 N for the untreated fiber to 3.57 N for the treated fiber while the modulus improved froml28 MPa to 159 MPa for the untreated and treated fioer. Further, the inflection degradation increased from 349 ℃ to 352 ℃. Hence, with better functional properties, the novel Abelmoschus ficulneus weed fibers can be a potential reinforcement material for the composites used in semi-structural applications.
机译:由于环保意识的提高,复合材料中的天然纤维已成为必然,特别是用于轻质半结构应用,包括汽车和航空航天工业中的门板、侧车身结构、受力壳结构和引擎盖部件。本研究代表了未经处理和 NaOH 处理的新型纤维素 Abelmoschus ficulneus 杂草植物纤维的特性。采用理化分析、傅里叶变换红外光谱、X射线衍射、热重分析、差示扫描量热、单纤维拉伸试验、光学显微镜、扫描电子显微镜等手段对提取的纤维进行了表征。理化分析发现,提取的纤维具有较高的纤维素含量(80.86%)。提取的纤维还通过NaOH处理进行了化学改性,增强了拉伸和热性能。发生纤维失效的峰值载荷由未处理纤维的2.87 N提高到3.57 N,而未处理和处理的纤维纤维的模量从l28 MPa提高到159 MPa。此外,拐点退化从349 °C增加到352 °C。因此,具有更好的功能性能的新型Abelmoschus ficulneus杂草纤维可以成为半结构应用复合材料的潜在增强材料。

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