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An experimental investigation into the stress and strain development of a Ni-base single crystal superalloy during cooling from solidification

机译:镍基单晶高温凝固冷却过程中应力和应变发展的实验研究

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In-situ neutron diffraction has been used to study the stress and strain development in a single crystal Ni-base superalloy (CMSX4) during stress relaxation testing under displacement control mode. It was found that the macroscopic strain is dependent not only on stress and temperature but also on time, suggesting that the overall strain development during stress relaxation is a typical visco-plastic behaviour. The visco-plastic and lattice relaxation strain rates were obtained as best-fit equations from the experimentally measured data encompassing a range of stresses and temperatures. The relaxation lattice strain rate was found to be highly dependent on stress and temperature. It was an order of magnitude smaller than the visco-plastic strain in displacement control mode. An in-situ cooling experiment was also carried out but under strain control mode to simulate the casting condition where the metal solidifies and cools in a rigid ceramic mould. It was found that the stress relaxation was significant in this case and the lattice relaxation dominated visco-plasticity in the early stage of cooling. These results were compared with the calculations using the currently developed visco-plastic law and some key points are discussed. (C) 2016 Elsevier Ltd. All rights reserved.
机译:在位移控制模式下的应力松弛测试中,原位中子衍射已用于研究单晶镍基高温合金(CMSX4)中的应力和应变发展。发现宏观应变不仅取决于应力和温度,还取决于时间,这表明应力松弛过程中的整体应变发展是典型的粘塑性行为。从包含一定范围的应力和温度的实验测量数据中,以最佳拟合方程形式获得了粘塑性和晶格弛豫应变速率。发现弛豫晶格应变速率高度依赖于应力和温度。它比位移控制模式下的粘塑性应变小一个数量级。还进行了原位冷却实验,但在应变控制模式下模拟了铸造条件,其中金属在刚性陶瓷模具中凝固并冷却。发现在这种情况下应力松弛是显着的,并且在冷却的早期,晶格松弛主导了粘塑性。将这些结果与使用当前开发的粘塑性定律进行的计算进行了比较,并讨论了一些关键点。 (C)2016 Elsevier Ltd.保留所有权利。

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