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Measurement of high-temperature strains in superalloy and carbon/carbon composites using chemical composition gratings

机译:使用化学成分光栅测量高温合金和碳/碳复合材料中的高温应变

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摘要

This paper describes an experimental and signal processing technique to perform high temperature tests on superalloy (INCONEL) and carbon/carbon structures using silicabased chemical composition gratings (CCGs). The results obtained from applying this technique at 940 °C in superalloys and 950 °C for carbon/carbon (C/C) composites are benchmarked against data obtained from four different methods. The results show that the wavelength responses of the CCGs bonded on the superalloy and on the C/C plate increase non-linearly with increasing temperatures. The temperature-dependent strain transfer coefficients recorded during the superalloy tests show quite stable results below 600 o C and tend to slightly decrase thereafter. The values of the strain transfer coefficients below 1000 °C are significantly affected by the thermal expansion coefficient of the substrate material and the interface. We demonstrate that the strain transfer coefficient calculation method used in this paper is not suitable for low and/or negative expansion material. The results of the relative errors show that the CCGs-F method based on the quadratic dependence of the wavelength shift versus the temperature appears to be the best to estimate the mechanical strains within the interval of temperatures considered and the measurement accuracy. The relative errors measured between 200 °C and 1000 °C are less than 5%.
机译:本文介绍了一种实验和信号处理技术,可使用基于硅的化学成分光栅(CCG)对高温合金(INCONEL)和碳/碳结构进行高温测试。将该技术在940°C的高温合金中和950°C的碳/碳(C / C)复合材料中应用的结果与四种不同方法获得的数据进行了比较。结果表明,结合在高温合金和C / C板上的CCG的波长响应随温度的升高呈非线性增加。在高温合金测试中记录的温度相关的应变传递系数显示出在600 o C以下相当稳定的结果,此后趋于轻微破裂。低于1000°C的应变传递系数的值受基材和界面热膨胀系数的影响很大。我们证明了本文中使用的应变传递系数计算方法不适用于低和/或负膨胀材料。相对误差的结果表明,基于波长漂移与温度的二次依赖关系的CCGs-F方法似乎是估计所考虑的温度范围内的机械应变和测量精度的最佳方法。在200°C至1000°C之间测得的相对误差小于5%。

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