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首页> 外文期刊>European Polymer Journal >Advanced biocomposite from highly functional methacrylated epoxidized sucrose soyate (MAESS) resin derived from vegetable oil and fiberglass fabric for composite applications
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Advanced biocomposite from highly functional methacrylated epoxidized sucrose soyate (MAESS) resin derived from vegetable oil and fiberglass fabric for composite applications

机译:源自植物油和玻璃纤维织物的高功能甲基丙烯酸环氧化蔗糖大豆酸酯(MAESS)树脂制成的高级生物复合材料

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摘要

For the two last decades, the depletion of petrochemical resources and the increased global environmental awareness have led to a growing interest in polymers derived from renewable resources. Among the possible technical approaches, using plant-based polymers seems to be the most promising solutions. However, most of the bio-based polymers yield low glass transition temperature (T-g) and low mechanical properties such as modulus and hardness. In this paper, the development of a new generation of highly functional polyester-like polymers for using in composite applications was investigated. These materials were synthesized by mixing methacrylated epoxidized sucrose soyate (MAESS) with styrene as a reactive diluent and using a mixture of Luperox P and Trigonox 239A as a high temperature and room temperature initiators, respectively. E-glass fibers were also used as reinforcements. The prepared bio-based composites were characterized by tensile, flexural, and impact strength testing. Scanning electron microscopy and interlaminar shear strength (ILSS) were examined to study the fiber-matrix interface behavior. To highlight the performance of bio-based MAESS resin in composites, the results of E-glass/MAESS composite were compared against E-glass/VE as a control. The tensile strength and modules of MAESS and VE resins reinforced with E-glass fibers are 532 MPa, 36.79 GPa and 536 MPa, 36.40 GPa, respectively. The impact strength of the composites with MAESS resin reinforced with E-glass fibers was 237 kJ/m(2), whereas that of the vinyl ester resin reinforced with same E-glass fiber was 191 kJ/m(2). The composites using MAESS were hard and ductile with high modulus and exhibit excellent interface and mechanical properties due to high functionality, rigid and compact chemical structures of MAESS oligomers in the thermoset resin. These bio-based composites have potential uses in variety of composite applications both at low and high temperatures. (C) 2016 Elsevier Ltd. All rights reserved.
机译:在过去的两个十年中,石化资源的枯竭和全球环境意识的增强,导致人们对可再生资源衍生的聚合物越来越感兴趣。在可能的技术方法中,使用基于植物的聚合物似乎是最有前途的解决方案。但是,大多数生物基聚合物的玻璃化转变温度(T-g)低,并且机械性能(如模量和硬度)低。在本文中,研究了用于复合材料应用的新一代高功能聚酯类聚合物的开发。这些材料是通过将甲基丙烯酸环氧化蔗糖大豆酸酯(MAESS)与苯乙烯作为反应性稀释剂混合,并分别使用Luperox P和Trigonox 239A的混合物作为高温和室温引发剂来合成的。电子玻璃纤维也用作增强材料。通过拉伸,弯曲和冲击强度测试表征了所制备的生物基复合材料。扫描电子显微镜和层间剪切强度(ILSS)被检查以研究纤维-基质界面行为。为了突出生物基MAESS树脂在复合材料中的性能,将E-glass / MAESS复合材料的结果与E-glass / VE作为对照进行了比较。电子玻璃纤维增​​强的MAESS和VE树脂的拉伸强度和模量分别为532 MPa,36.79 GPa和536 MPa,36.40 GPa。电子玻璃纤维增​​强的MAESS树脂对复合材料的冲击强度为237 kJ / m(2),而相同电子玻璃纤维增​​强的乙烯基酯树脂对复合材料的冲击强度为191 kJ / m(2)。使用MAESS的复合材料坚硬且具有高模量的延展性,并且由于MAESS低聚物在热固性树脂中具有高功能性,刚性和致密的化学结构,因此具有出色的界面和机械性能。这些生物基复合材料在低温和高温下都可用于各种复合材料应用中。 (C)2016 Elsevier Ltd.保留所有权利。

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