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首页> 外文期刊>Materials Science and Engineering. A, Structural Materials: Properties, Microstructure and Processing >Transient liquid phase bonding of Inconel 718 and Inconel 625 with BNi-2: Modeling and experimental investigations
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Transient liquid phase bonding of Inconel 718 and Inconel 625 with BNi-2: Modeling and experimental investigations

机译:Inconel 718和Inconel 625与BNi-2的瞬时液相键合:建模和实验研究

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In this study, a combination of direct experimentation and computational modeling approach was used to predict the time required to complete isothermal solidification during the transient liquid phase bonding of Inconel 718 and 625 superalloys, two most commonly used superalloys in aero-engine hot section components, with nickel based filler alloy, BNi-2. However, unlike conventional modeling, the diffusion of solute atoms was modeled by the Random Walk Modeling technique which can take into account the physical and chemical uncertainties associated with the transient liquid phase bonding experiments. The model equations for migrating solid/liquid interface and solute distribution approaches have been modified and presented in this article. Cumulative probability distribution and probability density function of predicted isothermal solidification times were calculated for different process conditions. The predicted isothermal solidification time range with different confidence levels has been verified with experimental data. Good agreement was observed. The times required for complete isothermal solidification were found to be significantly less than those of other nickel superalloys with different nickel based brazing fillers. Further, significant reduction of holding time was observed with increasing bonding temperature and with decreasing joint gap and no significant grain growth has been observed in the temperature range being investigated (1325-1394 K).
机译:在这项研究中,结合了直接实验和计算模型方法,预测了Inconel 718和625高温合金(在航空发动机热型部件中最常用的两种高温合金)的瞬态液相键合过程中完成等温凝固所需的时间。镍基填充合金BNi-2。但是,与常规建模不同,溶质原子的扩散是通过随机游走建模技术建模的,该技术可以考虑与瞬时液相键合实验相关的物理和化学不确定性。本文对用于迁移固/液界面和溶质分布方法的模型方程进行了修改和介绍。计算了不同工艺条件下的等温凝固时间的累积概率分布和概率密度函数。实验数据验证了具有不同置信度的预测等温凝固时间范围。观察到良好的一致性。发现完全等温固化所需的时间明显少于具有不同镍基钎料的其他镍超合金。此外,观察到随着粘结温度的升高和接缝间隙的减小,保持时间显着减少,并且在所研究的温度范围(1325-1394 K)中未观察到明显的晶粒长大。

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