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Influence of interfacial interactions on the properties of PVC cellulosic fiber composites

机译:界面相互作用对PVC纤维素纤维复合材料性能的影响

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The surface properties at the interface between thermoplastic and cellulosic fibers strongly influence the mechanical properties of plastic/cellulosic fiber composites. This paper examines the role of surface acid-base properties of plasticized WC and cellulosic fibers on the mechanical properties of the composites. The acid-base surface characteristics of cellulosic fibers were modified by treating the fibers with gamma-aminopropyltriethoxysilane (A-1100), dichlorodiethylsilane. phthalic anhydride, and maleated polypropylene. The empirical acid (K-A) and base (K-D) characteristics (i.e., electron donor/acceptor abilities) of untreated and treated fibers, as well as plasticized PVC, were determined using inverse gas chromatography (IGC) technique, These parameters were used to yield information on the acid-base pair interactions that were correlated with the tensile and notched Izod impact properties of the composites. Acid-base pair interactions have been found to be a valuable parameter in the design of surface modification strategies intended to optimize the tensile strength of the composites. By tailoring the acid-base characteristics of cellulosic fibers and plasticized WC, a composite with equal tensile strength and greater modulus than unfilled WC was developed. However, the acid-base factors did not correlate with tensile modulus, the elongation at break, and the notched Izod impact property of PVCewsprint fiber composites. Aminosilane has been observed to be a suitable adhesion promoter for PVC/wood composites improving significantly the tensile strength of the composites. Other treatments (dichlorodiethylsilane, phtalic anhydride, and maleated polypropylene) were found to be ineffective, giving similar strengths compared to the composites with untreated cellulosic fibers. FTIR spectroscopy results suggested that aminosilane was effective because treated cellulosic fibers can react with PVC to form chemical bonds. The resulting bond between PVC and cellulosic fibers accounts for the effectiveness of aminosilane, when compared with other coupling agents. [References: 29]
机译:热塑性纤维和纤维素纤维之间的界面处的表面性能强烈影响塑料/纤维素纤维复合材料的机械性能。本文研究了增塑WC和纤维素纤维的表面酸碱性质对复合材料机械性能的影响。通过用γ-氨基丙基三乙氧基硅烷(A-1100),二氯二乙基硅烷处理纤维,可以改变纤维素纤维的酸碱表面特性。邻苯二甲酸酐和马来酸化聚丙烯。使用反相气相色谱(IGC)技术测定未处理和处理过的纤维以及增塑PVC的经验酸(KA)和碱(KD)特性(即电子给体/受体能力),这些参数用于产生有关与复合材料的拉伸和缺口悬臂梁式冲击性能相关的酸碱对相互作用的信息。已发现酸碱对相互作用是旨在优化复合材料拉伸强度的表面改性策略设计中的重要参数。通过调整纤维素纤维和增塑WC的酸碱特性,开发了一种具有与未填充WC相同的拉伸强度和更大模量的复合材料。然而,酸碱因素与PVC /新闻纸纤维复合材料的拉伸模量,断裂伸长率和悬臂梁缺口冲击性能无关。已观察到氨基硅烷是PVC /木材复合材料的合适粘合促进剂,可显着提高复合材料的拉伸强度。发现其他处理方法(二氯二乙基硅烷,邻苯二甲酸酐和马来酸化聚丙烯)无效,与未处理纤维素纤维的复合材料相比,强度相似。 FTIR光谱结果表明氨基硅烷是有效的,因为处理过的纤维素纤维可以与PVC反应形成化学键。与其他偶联剂相比,PVC和纤维素纤维之间形成的键说明了氨基硅烷的有效性。 [参考:29]

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