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使用熔融沉积建模法进行纤维增强塑料复合材料的3D打印:现状综述。

3D Printing of Fiber-Reinforced Plastic Composites Using Fused Deposition Modeling: A Status Review.

作者信息

Pervaiz Salman, Qureshi Taimur Ali, Kashwani Ghanim, Kannan Sathish

机构信息

Department of Mechanical and Industrial Engineering, Rochester Institute of Technology, Dubai Campus, Dubai P.O. Box 341055, United Arab Emirates.

Engineering Division, New York University Abu Dhabi, Abu Dhabi P.O. Box 129188, United Arab Emirates.

出版信息

Materials (Basel). 2021 Aug 12;14(16):4520. doi: 10.3390/ma14164520.

Abstract

Composite materials are a combination of two or more types of materials used to enhance the mechanical and structural properties of engineering products. When fibers are mixed in the polymeric matrix, the composite material is known as fiber-reinforced polymer (FRP). FRP materials are widely used in structural applications related to defense, automotive, aerospace, and sports-based industries. These materials are used in producing lightweight components with high tensile strength and rigidity. The fiber component in fiber-reinforced polymers provides the desired strength-to-weight ratio; however, the polymer portion costs less, and the process of making the matrix is quite straightforward. There is a high demand in industrial sectors, such as defense and military, aerospace, automotive, biomedical and sports, to manufacture these fiber-reinforced polymers using 3D printing and additive manufacturing technologies. FRP composites are used in diversified applications such as military vehicles, shelters, war fighting safety equipment, fighter aircrafts, naval ships, and submarine structures. Techniques to fabricate composite materials, degrade the weight-to-strength ratio and the tensile strength of the components, and they can play a critical role towards the service life of the components. Fused deposition modeling (FDM) is a technique for 3D printing that allows layered fabrication of parts using thermoplastic composites. Complex shape and geometry with enhanced mechanical properties can be obtained using this technique. This paper highlights the limitations in the development of FRPs and challenges associated with their mechanical properties. The future prospects of carbon fiber (CF) and polymeric matrixes are also mentioned in this study. The study also highlights different areas requiring further investigation in FDM-assisted 3D printing. The available literature on FRP composites is focused only on describing the properties of the product and the potential applications for it. It has been observed that scientific knowledge has gaps when it comes to predicting the performance of FRP composite parts fabricated under 3D printing (FDM) techniques. The mechanical properties of 3D-printed FRPs were studied so that a correlation between the 3D printing method could be established. This review paper will be helpful for researchers, scientists, manufacturers, etc., working in the area of FDM-assisted 3D printing of FRPs.

摘要

复合材料是两种或更多种材料的组合,用于增强工程产品的机械和结构性能。当纤维混入聚合物基体中时,这种复合材料就被称为纤维增强聚合物(FRP)。FRP材料广泛应用于与国防、汽车、航空航天和体育相关的结构应用中。这些材料用于生产具有高拉伸强度和刚性的轻质部件。纤维增强聚合物中的纤维成分提供了所需的强度重量比;然而,聚合物部分成本较低,并且制造基体的过程相当简单。在国防和军事、航空航天、汽车、生物医学和体育等工业领域,对使用3D打印和增材制造技术制造这些纤维增强聚合物有很高的需求。FRP复合材料用于多种应用,如军用车辆、掩体、作战安全设备、战斗机、海军舰艇和潜艇结构。制造复合材料的技术、降低部件的重量强度比和拉伸强度,并且它们可以对部件的使用寿命起到关键作用。熔融沉积建模(FDM)是一种3D打印技术,它允许使用热塑性复合材料分层制造零件。使用这种技术可以获得具有增强机械性能的复杂形状和几何结构。本文强调了FRP开发中的局限性以及与其机械性能相关的挑战。本研究还提到了碳纤维(CF)和聚合物基体的未来前景。该研究还强调了在FDM辅助3D打印中需要进一步研究的不同领域。关于FRP复合材料的现有文献仅专注于描述产品的性能及其潜在应用。据观察,在预测通过3D打印(FDM)技术制造的FRP复合材料部件的性能方面,科学知识存在差距。对3D打印的FRP的机械性能进行了研究,以便能够建立3D打印方法之间的相关性。这篇综述论文将对从事FRP的FDM辅助3D打印领域工作的研究人员、科学家、制造商等有所帮助。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3757/8399339/4319fe246689/materials-14-04520-g004.jpg

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