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Mechanical Fatigue Measurement via a Vibrating Cantilever Beam for Self-Supported Thin Solid Films

机译:通过振动机械疲劳测量悬臂梁,且薄固体电影

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In this paper, we develop a novel experimental apparatus, referred to as the resonant frequency device, and establish methodology to measure the fatigue properties of thin solid films. Arranging thin-film strips of our specimens into the mechanical setting of a cantilever beam and using state-of-the-art piezo actuators to generate oscillation at the clamp of the cantilever, we create a system suitable for studying the material properties of the cantilever, such as Young's modulus, fatigue and possibly, loss tangent. Deformation of the cantilever is our controlled variable in the present study, and measured with fiber-optic probes pointed at the specimen and at the piezo driver. Stress is calculated from relative deformation of the cantilever specimen with respect to the piezo actuator via a photograph of the cantilever under vibration with a curve fitting method. A Lab View computer program is developed for the fatigue tests to accurately count number of cycles applied on the specimens, and a feedback mechanism is adopted to maintain displacement during the tests. Here, we present our experimental setup, procedure and theoretical models for material-property extraction. For small displacement, the two-dimensional Euler-Bernoulli beam theory is adopted. With large displacement, the system behaves as the Duffing oscillator due to geometrical nonlinearity. In addition, some experimental observations of the piezo actuators and fiber optics are reported. The method is applied to evaluate the fatigue properties of nanolayered copper-niobium composites and significant increase in the fatigue endurance limit compared to the constituent materials in the bulk form is noted.
机译:在本文中,我们开发一种新颖的实验器,称为共振频率测量设备,建立方法疲劳性能的薄固体薄膜。薄膜带我们的标本了机械悬臂梁的设置和使用先进的压电致动器来生成夹的振荡悬臂,我们创建一个系统适用于研究悬臂梁的材料属性,如杨氏模量、疲劳和可能的损失切。控制变量在当前的研究中,和用光纤探针测量指着标本和压电驱动程序。相对变形的计算悬臂标本对压电致动器通过一个悬臂的照片振动与曲线拟合方法。计算机程序开发的疲劳测试准确计数的循环次数应用于标本和一个反馈采用机制保持位移在测试。实验设置中,过程和理论模型物料性质提取。小位移,二维Euler-Bernoulli梁理论采用。大位移,系统表现为由于几何杜芬振荡器非线性。观测的压电致动器和纤维素光学报告。评估nanolayered的疲劳性能copper-niobium复合材料和重要增加疲劳疲劳极限进行比较大多数形式的组成材料指出。

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