3D printer-driven design of a non-assembly titanium surgical instrument using compliant lattice flexures

材料科学 顺应机制 3D打印 机械工程 刚度 网格 结构工程 纳米技术 工程类 复合材料 有限元法 几何学 数学
作者
Kirsten Lussenburg,Remi van Starkenburg,Aimée Sakes,Paul Breedveld
出处
期刊:Materials & Design [Elsevier BV]
卷期号:240: 112845-112845 被引量:2
标识
DOI:10.1016/j.matdes.2024.112845
摘要

Metal additive manufacturing is a promising technology for the production of functional medical products, due to its high shape complexity and resolution, and ability to withstand sterilization temperatures. This study explores the possibility of designing a completely non-assembly steerable surgical instrument using Selective Laser Melting. Despite its advantages for medical devices, the rough surface quality of unfinished parts can be problematic for non-assembly designs, leading to increased friction and wear in rigid body mechanisms and tendon-actuated mechanisms. We investigated printing of rolling contact joints with crossed flexures as low-friction joints, adjusted for printing in titanium for the design of the instrument. Grid-based lattice structures were incorporated as miniature flexures, and we explored the influence of various grid sizes on the flexibility and bending stiffness of the lattices. Based on this exploration, we altered the rolling joint configuration from two crossed flexures to a single straight flexure for our design. The resulting steerable surgical instrument design is completely non-assembly, including its actuation, facilitates easy removal of support structures, and requires no surface finishing steps. It has a diameter of less than 20 mm, facilitates opening and closing of a grasper, and steering of the grasper by 20 degrees.

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