Urquhart Lewis, Tamburrino Francesco, Neri Paolo, Wodehouse Andrew, Fingland Craig, Razionale Armando Viviano
University of Strathclyde, Glasgow, UK.
University of Pisa, Pisa, Italy.
Int J Interact Des Manuf. 2024;18(8):5457-5467. doi: 10.1007/s12008-023-01682-1. Epub 2023 Dec 21.
This paper explores how the examination of additively manufactured auxetic componentry can be applied in human-centred design settings with particular focus on biomedical products. Firstly, the design applications of auxetics are detailed followed by a review of the key problems facing practical researchers in the field with the treatment of boundary conditions identified as a key issue. The testing setup that is then introduced utilises a novel method of part mounting and facilitates optical analysis and real-time force-displacement measurements. A study is advanced that analyses three different auxetic structures (re-entrant, chiral, and semi-rigid), a set of samples of which were additively manufactured in flexible TPU material. A range of parameters were varied across the three designs including interior geometry and wall thicknesses in order to demonstrate the effectiveness of the setup for the examination of the different structures. The results from these examinations are subsequently discussed and a number of suggestions made regarding how this kind of analysis may be integrated into novel design development workflows for achieving human-centred biomedical devices which often require detailed consideration of ergonomic and usability factors.
本文探讨了如何将增材制造的负泊松比组件的研究应用于以人为本的设计环境中,特别关注生物医学产品。首先,详细介绍了负泊松比材料的设计应用,随后回顾了该领域实际研究人员面临的关键问题,其中边界条件的处理被确定为一个关键问题。接着介绍的测试装置采用了一种新颖的零件安装方法,并便于进行光学分析和实时力-位移测量。推进了一项研究,该研究分析了三种不同的负泊松比结构(凹痕型、手性型和半刚性型),并使用柔性TPU材料通过增材制造制作了一组样本。在这三种设计中改变了一系列参数,包括内部几何形状和壁厚,以证明该装置对不同结构进行检测的有效性。随后讨论了这些检测的结果,并就如何将这种分析整合到新颖的设计开发工作流程中提出了一些建议,以实现以人为本的生物医学设备,这类设备通常需要详细考虑人体工程学和可用性因素。