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Determination of the elastic properties of multi-layered foils by the four-point micro-bending test

机译:用四点微弯曲试验测定多层箔的弹性

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A new test method for the determination of the elastic properties of thin multilayered foils is introduced, where the geometry of the test is scaled down from the macroscopic four-point bending test. The mechanical test makes use of a novel, multi-purpose mechanical tester with nanometre displacement capability in three orthogonal directions, which allows the elimination of uncertainties associated with misalignment or twist of the jig. The particularly small dimensions of the test specimens prevent the use of the classical expressions of beam theory. To account for deflections of the same magnitude as the thickness of the beam, the analysis proceeds in three distinct steps. Firstly, the limits of applicability of the elementary beam theory are shown, the emphasis being put on large deformations. Secondly, a novel approach is introduced that deals properly with large deformations, making use of elliptic integrals to calculate the deflection of the foil. Thirdly, it is shown that the effects of frictional forces at the fulcrums must be included to describe experimental data properly while the range of experimental displacements allowed is extended. The analytical model is shown to compare favourably with the results of a 2D finite element model. As a result, a set of master curves are calculated and used to deduce the composite Young's modulus of the foil. Experimental data collected on a range of titanium/titanium nitride nano-composite films are further exploited following these methods, and shown to agree well with theoretical results derived by the classical laminate theory, using macroscopic bulk properties of the constituents. Thereby, it is demonstrated that small length scale metrology does not necessarily imply small deformation regimes.
机译:介绍了一种用于确定多层薄箔的弹性性能的新测试方法,该方法的测试几何尺寸从宏观四点弯曲测试按比例缩小。机械测试利用了新颖的多功能机械测试仪,该测试仪在三个正交方向上具有纳米位移能力,从而消除了与夹具未对准或扭曲相关的不确定性。试样的尺寸特别小,无法使用梁理论的经典表达。为了说明与光束厚度相同大小的挠度,分析分三个不同的步骤进行。首先,显示了基本梁理论的适用范围,重点是大变形。其次,介绍了一种新颖的方法,该方法可以正确处理大变形,并利用椭圆积分计算箔的挠度。第三,表明必须扩大摩擦力在支点处的影响,以正确描述实验数据,同时扩大允许的实验位移范围。分析模型显示与2D有限元模型的结果相比具有优势。结果,计算了一组主曲线,并用来推导该箔的复合杨氏模量。按照这些方法,可以进一步利用在一系列钛/氮化钛纳米复合膜上收集的实验数据,并证明这些数据与常规层压理论的理论结果十分吻合,使用的是这些成分的宏观性质。因此,证明了小长度尺度的计量并不一定意味着小的变形状态。

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