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首页> 外文期刊>Journal of Applied Polymer Science >Mechanical Properties of Bioplastics and Bioplastic-Organoclay Nanocomposites Prepared from Epoxidized Soybean Oil with Different Epoxide Contents
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Mechanical Properties of Bioplastics and Bioplastic-Organoclay Nanocomposites Prepared from Epoxidized Soybean Oil with Different Epoxide Contents

机译:环氧含量不同的环氧大豆油制备生物塑料和生物塑料-有机粘土纳米复合材料的力学性能

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The objectives of this study were to investigate the effect of epoxide content (24-88 mol %) on the mechanical properties and characteristics of epoxidized soybean oil (ESO) and to compare the mechanical properties of ESO-organoclay nanocomposites with different epoxide contents (40 and 100 mol %). ESO was synthesized by in situ epoxidation with acetic acid and hydrogen peroxide. We prepared ESO bioplastic sheets from ESO by curing with methyltetrahydrophthalic anhydride and I-methylimidazole. The tensile properties and tear resistance of the synthesized bioplastic (ESO40, where the number indicates the molar percentage of epoxidation) were investigated and compared with ESO bioplastic sheets prepared from commercial ESO with 100 mol % epoxidation (ESO100). The tensile modulus, tensile strength, tensile toughness, and tear strength of the ESO bioplastics increased with increasing epoxide content, whereas the elongation at break of the ESO100 bioplastic was lowest. No trend was observed in the bioplastics prepared from ESO24-ESO88. Dynamic mechanical thermal analysis showed increases in the storage modulus and glass-transition temperature as the epoxide content was increased. Thermal degradation also increased with increasing epoxide content. The crosslink density and chain flexibility controlled the mechanical properties and characteristics of the ESO bioplastics. ESO-organoclay nanocomposites were prepared by in situ intercalative polymerization. The addition of organoclay increased the mechanical properties of the ESO bioplastics. The effect of organoclay content (1-8 wt %) on the mechanical properties was similar to the effect of the epoxide content. The sESO100 nanocomposite showed a higher modulus but lower tensile strength and elongation at break than the ESO40 nanocomposite. Intercalation of the organoclay in the ESO nanocomposites was observed by transmission electron microscopy and X-ray diffractometry.
机译:这项研究的目的是研究环氧化物含量(24-88 mol%)对环氧化大豆油(ESO)的力学性能和特性的影响,并比较不同环氧化物含量的ESO-有机粘土纳米复合材料的力学性能(40和100mol%)。通过用乙酸和过氧化氢原位环氧化合成ESO。我们通过用甲基四氢邻苯二甲酸酐和I-甲基咪唑固化从ESO制备了ESO生物塑料片材。研究了合成生物塑料(ESO40,其中数字表示环氧化的摩尔百分比)的拉伸性能和抗撕裂性,并将其与由具有100 mol%环氧化的商业ESO制备的ESO生物塑料片材进行比较(ESO100)。 ESO生物塑料的拉伸模量,拉伸强度,拉伸韧性和撕裂强度随环氧化物含量的增加而增加,而ESO100生物塑料的断裂伸长率最低。从ESO24-ESO88制备的生物塑料中未观察到任何趋势。动态机械热分析表明,随着环氧化物含量的增加,储能模量和玻璃化转变温度也随之增加。随着环氧化物含量的增加,热降解也增加。交联密度和链柔性控制了ESO生物塑料的机械性能和特性。 ESO-有机粘土纳米复合材料是通过原位插入聚合制备的。有机粘土的添加提高了ESO生物塑料的机械性能。有机粘土含量(1-8wt%)对机械性能的影响类似于环氧化物含量的影响。 sESO100纳米复合材料比ESO40纳米复合材料显示出更高的模量,但拉伸强度和断裂伸长率更低。通过透射电子显微镜和X射线衍射法观察到有机粘土在ESO纳米复合物中的插入。

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