纳米压痕法表征聚合物涂层的高温动态力学性能

IF 1.5 4区 材料科学 Q3 ENGINEERING, MECHANICAL Journal of Engineering Materials and Technology-transactions of The Asme Pub Date : 2021-11-17 DOI:10.1115/1.4053029
Y. Matsuda, Aref Samadi-Dooki, Yinjie Cen, Gisela Vazquez, Luke Bu
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引用次数: 1

摘要

聚合物涂层广泛应用于工业应用中。已知这些聚合物涂层的机械性能随温度和变形速率而变化。由于这些涂层的脆性和尺寸小,通过传统的单轴测试来表征其在高温下的动态力学性能是具有挑战性的。本文报道了聚合物涂层的力学性能,重点介绍了其在高达280°C的温度下的动态力学性能,通过具有尖锐压头尖端的动态纳米压痕技术进行了表征。纳米压痕用于表征机械响应,重点是封闭在高温阶段的聚合物涂层的动态力学性能。为了验证该方法,还通过单轴循环拉伸测试对参考PET的粘弹性特性进行了表征,该测试与所提出的技术表现出极好的一致性。所提出的纳米压痕方法可以应用于高温应用中使用的其他聚合物涂层和薄膜。
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High Temperature Dynamic Mechanical Properties Characterization of Polymer Coatings via Nanoindentation
Polymer coatings are widely used in industrial applications. The mechanical properties of these polymer coatings are known to vary with temperature and deformation rate. The characterization of the dynamic mechanical properties of these coatings at high temperatures via traditional uniaxial testing is challenging due often to their brittleness and small size. In this paper, the mechanical properties of polymer coatings are reported with emphasis on their dynamic mechanical properties at temperatures up to 280 °C characterized by a dynamic nanoindentation technique with a sharp indenter tip. Nanoindentation was used to characterize the mechanical response with emphasis on dynamic mechanical properties of polymer coatings enclosed in a high-temperature stage. To verify the method, the viscoelastic properties of a reference PET were also characterized by uniaxial cyclic tensile testing which exhibited an excellent agreement with the proposed technique. The proposed nanoindentation method can be applied to other polymer coatings and thin films that are used in applications at high temperatures.
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来源期刊
CiteScore
3.00
自引率
0.00%
发文量
30
审稿时长
4.5 months
期刊介绍: Multiscale characterization, modeling, and experiments; High-temperature creep, fatigue, and fracture; Elastic-plastic behavior; Environmental effects on material response, constitutive relations, materials processing, and microstructure mechanical property relationships
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