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首页> 外文期刊>Journal of Applied Polymer Science >Biodegradable Composites: Morphological, Chemical, Thermal, and Mechanical Properties of Composites of Poly(hydroxybutyrate-cohydroxyvalerate) with Curaua Fibers After Exposure to Simulated Soil
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Biodegradable Composites: Morphological, Chemical, Thermal, and Mechanical Properties of Composites of Poly(hydroxybutyrate-cohydroxyvalerate) with Curaua Fibers After Exposure to Simulated Soil

机译:可生物降解的复合材料:暴露在模拟土壤中的聚(羟基丁酸酯-共羟基戊酸酯)与Curaua纤维复合材料的形态,化学,热和机械性能

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摘要

Composites produced from biodegradable polymeric matrixes reinforced with vegetable fibers have attractive mechanical properties and are environmentally friendly. This work is directed to the biodegradation of a composite made of a poly(hydroxybutyrate-co-hydroxyvalerate) matrix reinforced with curaua fibers (with and without alkaline treatment) in simulated soil. The composites were developed by extrusion and injection and were later buried in simulated soil according to the ASTM G160-03 method. Scanning electron microscopy showed evidence of microbial attack on the samples surfaces. Infrared spectra showed that the composites biodegradation was mainly caused by erosion of the surface layer resulting from microorganisms activity. Thermogravimetric analysis pointed out reduced thermal stability of the samples, and results of differential scanning calorimetry showed that the degree of crystallinity increases and then decreases progressively throughout the degradation period, indicating that enzymatic degradation primarily occurs in the amorphous phase material and thereafter in the crystalline phase. For curaua composite fibers, reductions in tensile strength and elastic modulus are more significant, indicating that the presence of fibers promotes biodegradation of the curaua fiber.
机译:由植物纤维增强的可生物降解的聚合物基体制成的复合材料具有吸引人的机械性能,并且对环境无害。这项工作的目的是在模拟的土壤中生物降解由聚脲(羟基丁酸酯-co-羟基戊酸酯)基质增强的姜黄纤维(经和不经过碱处理)制成。通过挤出和注射来开发复合材料,然后根据ASTM G160-03方法将其埋入模拟土壤中。扫描电子显微镜显示样品表面有微生物侵袭的证据。红外光谱表明,复合材料的生物降解主要是由于微生物活性引起的表层腐蚀。热重分析指出样品的热稳定性降低,差示扫描量热法的结果表明,在整个降解期间,结晶度先升高然后降低,这表明酶促降解主要发生在非晶相材料中,然后发生在结晶相中。 。对于姜黄复合纤维,抗张强度和弹性模量的降低更为显着,表明纤维的存在促进了姜黄纤维的生物降解。

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