Joseph Athul, Mahesh Vinyas, Harursampath Dineshkumar
Nonlinear Multifunctional Composites Analysis and Design (NMCAD) Laboratory, Department of Aerospace Engineering, Indian Institute of Science, Bangalore, 560012 India.
Department of Mechanical Engineering, National Institute of Technology, Silchar, Assam 788010 India.
Adv Manuf. 2021;9(3):342-368. doi: 10.1007/s40436-021-00357-y. Epub 2021 Jun 24.
Auxetic structures are a special class of structural components that exhibit a negative Poisson's ratio (NPR) because of their constituent materials, internal microstructure, or structural geometry. To realize such structures, specialized manufacturing processes are required to achieve a dimensional accuracy, reduction of material wastage, and a quicker fabrication. Hence, additive manufacturing (AM) techniques play a pivotal role in this context. AM is a layer-wise manufacturing process and builds the structure as per the designed geometry with appreciable precision and accuracy. Hence, it is extremely beneficial to fabricate auxetic structures using AM, which is otherwise a tedious and expensive task. In this study, a detailed discussion of the various AM techniques used in the fabrication of auxetic structures is presented. The advancements and advantages put forward by the AM domain have offered a plethora of opportunities for the fabrication and development of unconventional structures. Therefore, the authors have attempted to provide a meaningful encapsulation and a detailed discussion of the most recent of such advancements pertaining to auxetic structures. The article opens with a brief history of the growth of auxetic materials and later auxetic structures. Subsequently, discussions centering on the different AM techniques employed for the realization of auxetic structures are conducted. The basic principle, advantages, and disadvantages of these processes are discussed to provide an in-depth understanding of the current level of research. Furthermore, the performance of some of the prominent auxetic structures realized through these methods is discussed to compare their benefits and shortcomings. In addition, the influences of geometric and process parameters on such structures are evaluated through a comprehensive review to assess their feasibility for the later-mentioned applications. Finally, valuable insights into the applications, limitations, and prospects of AM for auxetic structures are provided to enable the readers to gauge the vitality of such manufacturing as a production method.
拉胀结构是一类特殊的结构部件,由于其组成材料、内部微观结构或结构几何形状,呈现出负泊松比(NPR)。为了实现这种结构,需要专门的制造工艺来达到尺寸精度、减少材料浪费并加快制造速度。因此,增材制造(AM)技术在这方面发挥着关键作用。增材制造是一种逐层制造工艺,能够按照设计的几何形状以相当高的精度构建结构。因此,使用增材制造来制造拉胀结构极其有益,否则这将是一项繁琐且昂贵的任务。在本研究中,对用于制造拉胀结构的各种增材制造技术进行了详细讨论。增材制造领域所取得的进展和优势为非常规结构的制造和开发提供了大量机会。因此,作者试图对与拉胀结构相关的最新进展进行有意义的总结和详细讨论。文章开篇简要介绍了拉胀材料以及后来拉胀结构的发展历程。随后,围绕用于实现拉胀结构的不同增材制造技术展开讨论。对这些工艺的基本原理、优缺点进行了探讨,以深入了解当前的研究水平。此外,还讨论了通过这些方法实现的一些突出拉胀结构的性能,以比较它们的优缺点。另外,通过全面综述评估了几何和工艺参数对这类结构的影响,以评估它们在上述应用中的可行性。最后,提供了关于增材制造在拉胀结构应用、局限性和前景的宝贵见解,以使读者能够衡量这种制造作为一种生产方法的活力。