Lin Linhan, Kollipara Pavana Siddhartha, Zheng Yuebing
Walker Department of Mechanical Engineering, The University of Texas at Austin, Austin, TX 78712, USA.
Materials Science & Engineering Program and Texas Materials Institute, The University of Texas at Austin, Austin, TX 78712, USA.
Mater Today (Kidlington). 2019 Sep;28:49-62. doi: 10.1016/j.mattod.2019.05.022. Epub 2019 Jun 28.
The rapid development in materials science and engineering requests the manufacturing of materials in a more rational and designable manner. Beyond traditional manufacturing techniques, such as casting and coating, digital control of material morphology, composition, and structure represents a highly integrated and versatile approach. Digital manufacturing systems enable users to fabricate freeform materials, which lead to new functionalities and applications. Digital additive manufacturing (AM), which is a layer-by-layer fabrication approach to create three-dimensional (3D) products with complex geometries, is changing the way materials manufacturing is approached in traditional industry. More recently, digital printing of chemically synthesized colloidal nanoparticles has paved the way towards manufacturing a class of designer nanomaterials with properties precisely tailored by the nanoparticles and their interactions down to atomic scales. Despite the tremendous progress being made so far, multiple challenges have prevented the broader applications and impacts of the digital manufacturing technologies. This review features cutting-edge research in the development of some of the most advanced digital manufacturing methods. We focus on outlining major challenges in the field and providing our perspectives on the future research and development directions.
材料科学与工程的快速发展要求以更合理、可设计的方式制造材料。除了铸造和涂层等传统制造技术外,对材料形态、成分和结构的数字控制代表了一种高度集成且通用的方法。数字制造系统使用户能够制造自由形态的材料,从而带来新的功能和应用。数字增材制造(AM)是一种逐层制造方法,用于创建具有复杂几何形状的三维(3D)产品,它正在改变传统工业中材料制造的方式。最近,化学合成胶体纳米颗粒的数字印刷为制造一类具有精确定制性能的设计型纳米材料铺平了道路,这些性能由纳米颗粒及其在原子尺度上的相互作用精确调整。尽管到目前为止已经取得了巨大进展,但多重挑战阻碍了数字制造技术的更广泛应用和影响。本综述重点介绍了一些最先进数字制造方法开发方面的前沿研究。我们专注于概述该领域的主要挑战,并就未来的研发方向提供我们的观点。