Linhao Guo , Tianyu Yu , Jiahui Yao , Yikai Ma , Mingjun Chen
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引用次数: 0
Abstract
Particle-reinforced polymers attracted great attention in aerospace and automotive, where fiber alignment plays a critical role. Conventional manufacturing methods and magnetic/electric field-based fiber alignment techniques require certain filler geometries and electromagnetic properties, severely limiting their applicability. In this study, a novel ultrasound-assisted stereolithography additive manufacturing technique was developed, exploiting acoustic radiation forces generated from the acoustic property mismatches between fiber fillers and polymer matrix, manipulating multidirectional alignment of glass fibers and graphene particles during 3D printing. A method to quantify the fiber alignment level was developed and profound effects of ultrasonic driving voltage and fiber mass fraction on the fiber alignment rates were clarified, enabling up to 93.44 % orientation rate within the target angular range. Tensile testing of five fiber-aligned specimens revealed that the 0° unidirectionally aligned sample exhibited superior performance, with tensile strength increasing by 46.29 % compared to random-aligned samples and by 91.43 % compared with pure polymers. By integrating a rotating platform with the acoustic radiation force field, layer-by-layer fiber angle control was realized, facilitating the fabrication of complex 3D structures—including bionic flowers, character patterns, and intricate geometries. The developed technique was further validated using spherical nickel-coated graphite particles, attaining a 90.20 % orientation rate, expanding its potential for aligning particles with different geometries during 3D printing of particle-reinforced polymers.
期刊介绍:
Additive Manufacturing stands as a peer-reviewed journal dedicated to delivering high-quality research papers and reviews in the field of additive manufacturing, serving both academia and industry leaders. The journal's objective is to recognize the innovative essence of additive manufacturing and its diverse applications, providing a comprehensive overview of current developments and future prospects.
The transformative potential of additive manufacturing technologies in product design and manufacturing is poised to disrupt traditional approaches. In response to this paradigm shift, a distinctive and comprehensive publication outlet was essential. Additive Manufacturing fulfills this need, offering a platform for engineers, materials scientists, and practitioners across academia and various industries to document and share innovations in these evolving technologies.