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Viscoelastic processing and characterization of high-performance polymeric composite systems.

机译:高性能聚合物复合体系的粘弹性加工和表征。

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Fiber reinforced composites, a combination of reinforcing fiber and resin matrix, offer many advantages over traditional materials, and have therefore found wide application in the aerospace and sporting goods industry. Among the advantages that composite materials offer, the most often cited are weight saving, high modulus, high strength-to-weight ratio, corrosion resistance, and fatigue resistance. As much as their attributes are desirable, composites are difficult to process due to their heterogeneous, anisotropic, and viscoelastic nature. It is therefore not surprising that the interrelationship between structure, property, and process is not fully understood. Consequently, the major purpose of this research work was to investigate this interrelationship, and ways to scale it to utilization. First, four prepreg materials, which performed differently in the manufacturing of composite parts, but were supposedly identical, were characterized. The property variations that were found among these prepregs in terms of tack and frictional resistance assessed the need for improved understanding of the prepregging process. Therefore, the influence of the processing parameters on final prepreg quality were investigated, and led to the definition of more adequate process descriptors. Additionally, one of the characterization techniques used in this work, temperature modulated differential scanning calorimetry, was examined in depth with the development of a mathematical model. This model, which enabled the exploration of the relationship between user parameters, sample thermophysical properties, and final results, was then compared to literature data. Collectively, this work explored and identified the key connectors between process, structure, and property as they relate to the manufacturing, design, and performance of composite materials.
机译:纤维增强复合材料是增强纤维和树脂基体的组合,与传统材料相比具有许多优势,因此已广泛应用于航空航天和体育用品行业。复合材料提供的优点中,最常提及的是重量减轻,高模量,高强度重量比,耐腐蚀性和耐疲劳性。尽管它们的属性是理想的,但是由于它们的异质性,各向异性和粘弹性,复合材料很难加工。因此,不完全理解结构,属性和过程之间的相互关系就不足为奇了。因此,这项研究工作的主要目的是研究这种相互关系,以及将其扩展到利用率的方法。首先,对四种预浸材料进行了表征,这些材料在复合零件的制造中表现不同,但据推测是相同的。这些预浸料在粘着性和摩擦阻力方面发现的性能变化评估了对更好地了解预浸工艺的需求。因此,研究了工艺参数对最终预浸料质量的影响,并导致定义了更充分的工艺描述符。此外,随着数学模型的发展,深入研究了这项工作中使用的一种表征技术,即温度调制差示扫描量热法。然后,该模型可以探索用户参数,样品热物理性质和最终结果之间的关系,然后与文献数据进行比较。总的来说,这项工作探索并确定了与复合材料的制造,设计和性能相关的过程,结构和特性之间的关键联系。

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