Ultrasonic characterization of 3D-printed polymer objects

IF 3.8 2区 物理与天体物理 Q1 ACOUSTICS Ultrasonics Pub Date : 2025-01-15 DOI:10.1016/j.ultras.2025.107572
Timoteo F. de Oliveira , André C.M. Cavalheiro , F. Buiochi , Marcos S.G. Tsuzuki , José P. Leão-Neto , Giclênio C. Silva , Glauber T. Silva , J. Henrique Lopes
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Abstract

3D printing technology, also known as Additive Manufacturing (AM), has revolutionized object prototyping, offering a simple, cost-effective, and efficient approach to creating structures with diverse spatial features. However, the mechanical properties of 3D-printed structures are highly dependent on the material type and manufacturing technique employed. In this study, ultrasonic testing methods were used to comprehensively characterize standard samples produced using two popular printing techniques: material extrusion and vat photopolymerization. The investigation focuses on seven commonly used 3D printing polymer materials, namely nylon, PET-G, flexible polymer, polycarbonate, acrylonitrile butadiene styrene (ABS), polylactic acid (PLA), and photopolymer resin. Through ultrasonic testing, the mechanical parameters of objects made of different polymer materials were found. Some of these parameters are Young’s modulus, shear modulus, acoustic impedance, and absorption. A comparative analysis of these parameters in different objects provides insights about their respective performance and behavior. This information may be useful to enhance the design and performance of ultrasonic lenses and lab-on-a-chip devices. Findings indicate that the vat photopolymerization printing process yields high-quality samples that exhibit minimal deviations in thickness, diameter, and surface parallelism. Moreover, microscopic analysis of the vat photopolymerization samples revealed low levels of porosity, which suggests that the material can be considered homogeneous. In contrast, the material extrusion samples showed significant porosity in the form of gaps between the deposited filaments, which had a direct impact on their mechanical and acoustic properties.
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3d打印聚合物物体的超声表征。
3D打印技术,也被称为增材制造(AM),已经彻底改变了对象原型,提供了一种简单,经济高效的方法来创建具有不同空间特征的结构。然而,3d打印结构的机械性能高度依赖于所采用的材料类型和制造技术。在这项研究中,超声波测试方法被用于全面表征标准样品使用两种流行的印刷技术:材料挤压和还原光聚合。研究重点是7种常用的3D打印高分子材料,即尼龙、PET-G、柔性聚合物、聚碳酸酯、丙烯腈-丁二烯-苯乙烯(ABS)、聚乳酸(PLA)和光聚合物树脂。通过超声检测,得到了不同高分子材料制成的物体的力学参数。这些参数包括杨氏模量、剪切模量、声阻抗和吸收。在不同对象中对这些参数进行比较分析,可以深入了解它们各自的性能和行为。这些信息可能有助于提高超声透镜和芯片实验室设备的设计和性能。研究结果表明,还原光聚合印刷工艺产生高质量的样品,在厚度,直径和表面平行度方面表现出最小的偏差。此外,还原光聚合样品的微观分析显示孔隙率低,这表明材料可以被认为是均匀的。相比之下,材料挤压样品表现出明显的孔隙率,其形式是沉积细丝之间的间隙,这直接影响了材料的力学和声学性能。
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来源期刊
Ultrasonics
Ultrasonics 医学-核医学
CiteScore
7.60
自引率
19.00%
发文量
186
审稿时长
3.9 months
期刊介绍: Ultrasonics is the only internationally established journal which covers the entire field of ultrasound research and technology and all its many applications. Ultrasonics contains a variety of sections to keep readers fully informed and up-to-date on the whole spectrum of research and development throughout the world. Ultrasonics publishes papers of exceptional quality and of relevance to both academia and industry. Manuscripts in which ultrasonics is a central issue and not simply an incidental tool or minor issue, are welcomed. As well as top quality original research papers and review articles by world renowned experts, Ultrasonics also regularly features short communications, a calendar of forthcoming events and special issues dedicated to topical subjects.
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