Thermo-mechanical experimental investigations of 3D-printed elastomeric polyurethane from low to intermediate strain rates

IF 1.9 4区 工程技术 Q3 MECHANICS
Jie Yang , Zisheng Liao , Mokarram Hossain , Guanyu Huang , Kai Wang , Xiaohu Yao
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引用次数: 0

Abstract

Additively manufactured (3D-printed) elastomers have increasing applications in impact resistance devices such as helmets, shoe soles, and shock absorbing architectured metamaterials. These rapidly expanding areas require a proper understanding of the thermo-mechanical behaviours of soft polymers. In this contribution, thermal–mechanical properties of 3D-printed elastomeric polyurethane (EPU) are extensively characterised under low to high strain rates which are missing in the literature. The EPU under investigation is digitally manufactured using a Digital Light Synthesis (DLS) technology and is characterised by tensile experiments with a wide range of strain rates spanning from 0.001/s to 500/s and temperature variations of -20 °C to 60 °C. The experimental results reveal deformation nonlinearity, thermal-sensitivity, and strain rate-sensitivity in the elastomer. Moreover, the study reveals the occurrence of the glass transition phenomenon, which is commonly observed in soft materials under low-temperature and high strain-rate conditions. Various graphical illustrations are presented to depict the effects of temperature and strain rate on the stress response. It is observed that as temperature decreases or strain rate increases, the stress amplifies and becomes more sensitive to variations in temperature or strain rate. Additionally, higher strain levels further enhance the stress sensitivity to these variations. The microscopic mechanisms behind the thermal and strain rate sensitivities are discussed, taking into account the influence of the strain level. Overall, this study contributes to a proper understanding of the thermo-mechanical behaviours of digitally-printed soft polymers, particularly in dynamic scenarios.

低至中应变率3d打印弹性体聚氨酯的热力学实验研究
增材制造(3d打印)弹性体在头盔、鞋底和减震结构超材料等抗冲击设备中的应用越来越多。这些迅速扩大的领域需要对软聚合物的热机械行为有正确的理解。在这一贡献中,3d打印弹性体聚氨酯(EPU)的热机械性能在低至高应变率下被广泛表征,这在文献中是缺失的。正在研究的EPU是使用数字光合成(DLS)技术进行数字化制造的,其特点是拉伸实验,应变速率范围从0.001/s到500/s,温度变化范围为-20°C到60°C。实验结果表明,弹性体具有变形非线性、热敏性和应变率敏感性。此外,研究还揭示了低温、高应变率条件下软质材料中常见的玻璃化转变现象的发生。给出了各种图形插图来描述温度和应变速率对应力响应的影响。观察到,随着温度的降低或应变速率的增加,应力增大,并且对温度或应变速率的变化更加敏感。此外,较高的应变水平进一步增强了对这些变化的应力敏感性。考虑到应变水平的影响,讨论了热敏感性和应变率敏感性背后的微观机制。总的来说,这项研究有助于正确理解数字印刷软聚合物的热机械行为,特别是在动态情况下。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
4.10
自引率
4.20%
发文量
114
审稿时长
9 months
期刊介绍: Mechanics Research Communications publishes, as rapidly as possible, peer-reviewed manuscripts of high standards but restricted length. It aims to provide: • a fast means of communication • an exchange of ideas among workers in mechanics • an effective method of bringing new results quickly to the public • an informal vehicle for the discussion • of ideas that may still be in the formative stages The field of Mechanics will be understood to encompass the behavior of continua, fluids, solids, particles and their mixtures. Submissions must contain a strong, novel contribution to the field of mechanics, and ideally should be focused on current issues in the field involving theoretical, experimental and/or applied research, preferably within the broad expertise encompassed by the Board of Associate Editors. Deviations from these areas should be discussed in advance with the Editor-in-Chief.
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