Pal Akhilesh Kumar, Mohanty Amar K, Misra Manjusri
Bioproducts Discovery and Development Centre, Department of Plant Agriculture, University of Guelph Crop Science Building, 50 Stone Road East Guelph Ontario N1G 2W1 Canada
School of Engineering, University of Guelph Thornbrough Building, 50 Stone Road East Guelph Ontario N1G 2W1 Canada.
RSC Adv. 2021 Nov 12;11(58):36398-36438. doi: 10.1039/d1ra04060j. eCollection 2021 Nov 10.
The worldwide demand for additive manufacturing (AM) is increasing due to its ability to produce more challenging customized objects based on the process parameters for engineering applications. The processing of conventional materials by AM processes is a critically demanded research stream, which has generated a path-breaking scenario in the rapid manufacturing and upcycling of plastics. The exponential growth of AM in the worldwide polymer market is expected to exceed 20 billion US dollars by 2021 in areas of automotive, medical, aerospace, energy and customized consumer products. The development of functional polymers and composites by 3D printing-based technologies has been explored significantly due to its cost-effective, easier integration into customized geometries, higher efficacy, higher precision, freedom of material utilization as compared to traditional injection molding, and thermoforming techniques. Since polymers are the most explored class of materials in AM to overcome the limitations, this review describes the latest research conducted on petroleum-based polymers and their composites using various AM techniques such as fused filament fabrication (FFF), selective laser sintering (SLS), and stereolithography (SLA) related to 3D printing in engineering applications such as biomedical, automotive, aerospace and electronics.
由于增材制造(AM)能够根据工程应用的工艺参数生产更具挑战性的定制物体,因此全球对其需求不断增加。通过增材制造工艺加工传统材料是一个迫切需要研究的领域,这在塑料的快速制造和升级再造方面开创了先河。预计到2021年,增材制造在全球聚合物市场的指数级增长将在汽车、医疗、航空航天、能源和定制消费品等领域超过200亿美元。与传统注塑成型和热成型技术相比,基于3D打印的技术开发功能聚合物和复合材料因其成本效益高、更容易集成到定制几何形状中、效率更高、精度更高、材料使用自由度更大而得到了广泛探索。由于聚合物是增材制造中为克服局限性而研究最多的一类材料,本文综述了使用各种增材制造技术,如熔融长丝制造(FFF)、选择性激光烧结(SLS)和立体光刻(SLA),对石油基聚合物及其复合材料进行的最新研究,这些研究与生物医学、汽车、航空航天和电子等工程应用中的3D打印相关。