Initial assessment of alternative carbon fiber geometries for design of cost-effective compressive performance: Size effect studies

IF 14.2 1区 材料科学 Q1 ENGINEERING, MULTIDISCIPLINARY Composites Part B: Engineering Pub Date : 2025-01-28 DOI:10.1016/j.compositesb.2025.112181
Robert E. Norris , Brandon L. Ennis , Ryan J. Clarke , David A. Miller , Daniel D. Samborsky , Fue Xiong , Ernesto Camarena
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Abstract

Carbon fiber provides opportunity to reduce weight in structural composites, including wind turbine blades, due to the material's superior specific stiffness and specific strength compared to alternatives. Despite these advantages, cost and compressive performance are considered weaknesses for carbon fiber products available today. Studies to produce low-cost carbon fiber alternatives, including the use of textile-derived precursor systems, have shown progress and merit through the DOE/ORNL low-cost carbon fiber initiatives. This work focuses on enabling increases in compressive strength through design of the carbon fiber geometry, applicable to both textile and conventional precursor systems, while also providing opportunities to reduce carbon fiber processing costs. Fiber-resin interface and fiber alignment are among the most frequently cited factors controlling composite compressive performance. However, it is believed that there is opportunity in traditionally unexplored routes to increasing compressive strength through alteration of the carbon fiber geometry by increasing the fiber area moment of inertia and/or the fiber perimeter and interfacial area. This paper presents initial results from manufacturing carbon fiber materials to assess the impacts of carbon fiber size on tested composite compressive performance with projected neutral or even beneficial impact on fiber and composite manufacturing economics. Carbon fiber systems with increasing size illustrate a favorable correlation for compressive performance greater than predicted from a micromechanical failure model. The manufacturing and mechanical test results support the hypothesis of this work that alterations to fiber geometry can be used to produce improvements of the compressive strength of carbon fiber reinforced polymers and provide incentive for related work in designing alternative shapes to further enhance compressive performance.
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设计具有成本效益的压缩性能的替代碳纤维几何形状的初步评估:尺寸效应研究
碳纤维为结构复合材料(包括风力涡轮机叶片)提供了减轻重量的机会,因为与其他材料相比,碳纤维具有优越的比刚度和比强度。尽管有这些优点,但成本和抗压性能是目前可用碳纤维产品的弱点。通过DOE/ORNL的低成本碳纤维计划,生产低成本碳纤维替代品的研究,包括使用纺织品衍生的前体系统,已经取得了进展和优点。这项工作的重点是通过设计碳纤维的几何形状来提高抗压强度,适用于纺织品和传统的前驱体系统,同时也提供了降低碳纤维加工成本的机会。纤维-树脂界面和纤维排列是控制复合材料压缩性能的最常见因素。然而,人们认为,通过改变碳纤维的几何形状,增加纤维面积的转动惯量和/或纤维周长和界面面积,在传统未开发的路线中,有机会提高抗压强度。本文介绍了碳纤维材料制造的初步结果,以评估碳纤维尺寸对测试复合材料压缩性能的影响,并预测对纤维和复合材料制造经济的中性甚至有益影响。随着尺寸的增加,碳纤维系统的压缩性能比微力学失效模型预测的要好。制造和机械测试结果支持了这项工作的假设,即改变纤维几何形状可以用来提高碳纤维增强聚合物的抗压强度,并为设计替代形状的相关工作提供激励,以进一步提高抗压性能。
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来源期刊
Composites Part B: Engineering
Composites Part B: Engineering 工程技术-材料科学:复合
CiteScore
24.40
自引率
11.50%
发文量
784
审稿时长
21 days
期刊介绍: Composites Part B: Engineering is a journal that publishes impactful research of high quality on composite materials. This research is supported by fundamental mechanics and materials science and engineering approaches. The targeted research can cover a wide range of length scales, ranging from nano to micro and meso, and even to the full product and structure level. The journal specifically focuses on engineering applications that involve high performance composites. These applications can range from low volume and high cost to high volume and low cost composite development. The main goal of the journal is to provide a platform for the prompt publication of original and high quality research. The emphasis is on design, development, modeling, validation, and manufacturing of engineering details and concepts. The journal welcomes both basic research papers and proposals for review articles. Authors are encouraged to address challenges across various application areas. These areas include, but are not limited to, aerospace, automotive, and other surface transportation. The journal also covers energy-related applications, with a focus on renewable energy. Other application areas include infrastructure, off-shore and maritime projects, health care technology, and recreational products.
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