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Characterization of Nano-Mechanical, Surface and Thermal Properties of Hemp Fiber-Reinforced Polycaprolactone (HF/PCL) Biocomposites

机译:大麻纤维增强聚己内酯(HF / PCL)生物复合材料的纳米机械,表面和热性能的表征

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The quest for sustainable, low-cost and environmental friendly engineering materials has increased the application of natural fiber-reinforced polymer (FRP) composite. This paper experimentally investigates the effects of variable mean hemp fiber (HF) aspect ratios (ARs) of 00 (neat), aspect ratios AR_19, AR_26, AR_30 and AR_38 on nano-mechanical (hardness, modulus, elasticity and plasticity), surface and thermal properties of hemp fiber/polycaprolactone (HF/PCL) biocomposites. These biocomposites were characterized by nanoindentation, contact angle, surface energy, thermogravimetric analysis (TGA), thermal conductivity and differential scanning calorimetry (DSC) techniques. After nanoindentation and thermal conductivity tests, the results obtained evidently show that the HF/PCL sample with aspect ratio (AR_26) recorded optimal values. These values include maximum hardness of approximately 0.107 GPa, elastic modulus of 1.094 GPa, and plastic and elastic works of 1.580 and 1.210 nJ, respectively as well as maximum thermal conductivity of 0.2957 W/mK, when compared with other samples. Similarly, the optimal sample exhibits highest main degradable temperature and degree of crystallinity of 432 °C and 60.6%, respectively. Further results obtained for the total surface energies and contact angles of these samples with glycerol and distilled water are significant for their materials selection, design, manufacturing and various applications.
机译:寻求可持续的,低成本和环保工程材料,增加了天然纤维增强聚合物(FRP)复合材料的应用。本文实验研究了00(整齐),纵横率AR_19,AR_26,AR_30和AR_38对纳米机械(硬度,模量,弹性和可塑性),表面和的效果的变化平均大麻纤维(HF)纵横比(ARS)的影响。大麻纤维/聚己内酯(HF / PCL)生物复合材料的热性能。这些生物复合材料的特征在于纳米茚,接触角,表面能,热重分析(TGA),导热性和差示扫描量热法(DSC)技术。在纳米狭窄和导热性试验之后,显然获得的结果表明HF / PCL样品具有纵横比(AR_26)记录了最佳值。这些值包括大约0.107GPa的最大硬度,1.094GPa的弹性模量,以及1.580和1.210 nj的塑料和弹性作品,以及与其他样品相比的0.2957w / mk的最大导热率。类似地,最佳样品分别表现出最高的主要可降解温度和432℃和60.6%的结晶度。通过甘油和蒸馏水的总表面能和与这些样品的接触角获得的进一步结果对于它们的材料选择,设计,制造和各种应用是显着的。

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