Tuli Noshin Tasnim, Khatun Sinthea, Rashid Adib Bin
Industrial and Production Engineering Department, Military Institute of Science and Technology (MIST), Dhaka-1216, Bangladesh.
Heliyon. 2024 Mar 5;10(5):e27328. doi: 10.1016/j.heliyon.2024.e27328. eCollection 2024 Mar 15.
Rapid advancements in the field of 3D printing in the last several decades have made it possible to produce complex and unique parts with remarkable precision and accuracy. Investigating the use of 3D printing to create various high-performance materials is a relatively new field that is expanding exponentially worldwide. Automobile, biomedical, construction, aerospace, electronics, and metal and alloy industries are among the most prolific users of 3D printing technology. Modern 3D printing technologies, such as polymer matrices that use fiber-reinforced composites (FRCs) to enhance the mechanical qualities of printed components greatly, have been useful to several industries. High stiffness and tensile strength lightweight components are developed from these materials. Fiber-reinforced composites have a wide range of applications, such as military vehicles, fighter aircraft, underwater structures, shelters, and warfare equipment. Fabricating FRCs using fused deposition modeling (FDM) is also advantageous over other 3D printing methods due to its low cost and ease of operation. The impact of different continuous fiber and matrix polymer selections on FRC performance is covered in this review paper. We will also evaluate the important parameters influencing FRC characteristics and review the most recent equipment and methods for fabricating FRCs. Furthermore, the challenges associated with 3D printing fiber-reinforced composites are covered. The constraints of present technology have also been used to identify future research areas.
在过去几十年里,3D打印领域的快速发展使得生产具有卓越精度和准确性的复杂独特部件成为可能。研究使用3D打印来制造各种高性能材料是一个相对较新的领域,并且正在全球范围内呈指数级扩展。汽车、生物医学、建筑、航空航天、电子以及金属和合金行业是3D打印技术的最多产用户。现代3D打印技术,例如使用纤维增强复合材料(FRC)来极大提高打印部件机械性能的聚合物基体,已经对多个行业有用。这些材料可制造出具有高刚度和拉伸强度的轻质部件。纤维增强复合材料有广泛的应用,如军用车辆、战斗机、水下结构、庇护所和战争装备。由于成本低且操作简便,使用熔融沉积建模(FDM)制造FRC也比其他3D打印方法更具优势。本文综述了不同连续纤维和基体聚合物选择对FRC性能的影响。我们还将评估影响FRC特性的重要参数,并综述制造FRC的最新设备和方法。此外,还涵盖了与3D打印纤维增强复合材料相关的挑战。当前技术的限制也被用于确定未来的研究领域。