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Reinforcement of Stearic Acid Treated Egg Shell Particles in Epoxy Thermosets: Structural Thermal and Mechanical Characterization

机译:环氧热固性材料中硬脂酸处理过的蛋壳颗粒的增强:结构热学和机械特性

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摘要

This work reports the modification of egg shell (ES) particles by using stearic acid (SA) and their reinforcement in the epoxy matrix. The ES treatment via SA was optimized, the optimum conditions for concentration, temperature, and time were found to be 2.5%, 85 °C, and 50 min, respectively. The untreated ES (UES) and treated ES (TES) particles were characterized by Fourier transform infrared spectroscopy (FTIR), differential scanning calorimetry (DSC), X-ray diffraction (XRD), scanning electron microscope (SEM), particle size distribution, and contact angle. FTIR confirmed the chemical modification of SA on ES surface and DSC reflects an endothermic peak at 240 °C. XRD reveal a decrease in crystal size and crystallinity, while contact angle increases to 169° from 42°. The SEM observations clearly reflect a distinct decrease and separation of small domains of ES particles thus improving an increased surface area. Afterwards, the UES and TES particles were reinforced in epoxy at 15 and 20 weight (wt.) % loading. The tensile tests confirmed a 22% increase in elongation as compared to pure epoxy due to the hydrogen bonding between TES particles and matrix. The lowest brittleness was recorded for TES/epoxy composites on 20 wt % loading. The TGA confirmed the improved thermal stabilities at 20 wt % loading of TES particles in matrix, the improvements in T5%, T10%, and T20% values were recorded as 33, 26, and 21 °C higher than the corresponding values for neat matrix. The TES/epoxy composites on 20 wt % showed 41% increase in storage modulus as compared to the pristine epoxy, and cross-link density reaches to 2.71 × 10−3 from 1.29 × 10−3 mol/cm3 for neat matrix. The decline in tan δ height and improvement in Tg were also observed. The best adhesion effectiveness was recorded for TES/epoxy composites. This simple and economical modification technique can enhance the application of ES particles in various polymeric coating and composites applications.
机译:这项工作报告了通过使用硬脂酸(SA)对蛋壳(ES)颗粒进行的改性及其在环氧基质中的增强作用。对通过SA进行的ES处理进行了优化,发现浓度,温度和时间的最佳条件分别为2.5%,85°C和50分钟。通过傅立叶变换红外光谱(FTIR),差示扫描量热法(DSC),X射线衍射(XRD),扫描电子显微镜(SEM),粒度分布,和接触角。 FTIR证实了ES表面上SA的化学修饰,DSC反映了240°C时的吸热峰。 XRD显示出晶体尺寸和结晶度的减小,而接触角从42°增加至169°。 SEM观察清楚地反映了ES颗粒小区域的明显减少和分离,从而提高了表面积。之后,将UES和TES颗粒以15和20重量(wt。)%的负载量在环氧树脂中增强。拉伸试验证实,由于TES颗粒与基体之间的氢键作用,与纯环氧树脂相比,伸长率提高了22%。负载为20 wt%的TES /环氧复合材料的脆性最低。 TGA证实了在基质中TES颗粒负载量为20 wt%时热稳定性有所改善,记录的T5%,T10%和T20%值的改善分别比纯基质的相应值高33、26和21°C。 。 TES /环氧复合材料的含量为20 wt%,与原始环氧树脂相比,储能模量提高了41%,交联密度从1.29×10 -达到2.71×10 -3 纯净基质为3 mol / cm 3 。还观察到tanδ高度的下降和Tg的改善。对于TES /环氧复合材料,记录了最佳的粘合效果。这种简单且经济的改性技术可以增强ES颗粒在各种聚合物涂料和复合材料应用中的应用。

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