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Design and characterization of 3D-printed TPU-based lattice structures. Application to methodology for the design of personalized therapeutic products

格子(音乐) 刚度 机械工程 计算机科学 材料科学 结构工程 工程类 声学 物理
作者
Sergio de la Rosa,Pedro F. Mayuet,Cátia S. Silva,Álvaro M. Sampaio,Lucía Rodríguez-Parada
出处
期刊:Rapid Prototyping Journal [Emerald (MCB UP)]
卷期号:30 (11): 72-86 被引量:10
标识
DOI:10.1108/rpj-08-2023-0287
摘要

Purpose This papers aims to study lattice structures in terms of geometric variables, manufacturing variables and material-based variants and their correlation with compressive behaviour for their application in a methodology for the design and development of personalized elastic therapeutic products. Design/methodology/approach Lattice samples were designed and manufactured using extrusion-based additive manufacturing technologies. Mechanical tests were carried out on lattice samples for elasticity characterization purposes. The relationships between sample stiffness and key geometric and manufacturing variables were subsequently used in the case study on the design of a pressure cushion model for validation purposes. Differentiated areas were established according to patient’s pressure map to subsequently make a correlation between the patient’s pressure needs and lattice samples stiffness. Findings A substantial and wide variation in lattice compressive behaviour was found depending on the key study variables. The proposed methodology made it possible to efficiently identify and adjust the pressure of the different areas of the product to adapt them to the elastic needs of the patient. In this sense, the characterization lattice samples turned out to provide an effective and flexible response to the pressure requirements. Originality/value This study provides a generalized foundation of lattice structural design and adjustable stiffness in application of pressure cushions, which can be equally applied to other designs with similar purposes. The relevance and contribution of this work lie in the proposed methodology for the design of personalized therapeutic products based on the use of individual lattice structures that function as independent customizable cells.

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