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Flow and fracture behaviour of FV535 steel at different triaxialities, strain rates and temperatures

机译:FV535钢在不同三轴性,应变速率和温度下的流动和断裂行为

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摘要

The new generation jet engines operate at highly demanding working conditions. Such conditions need very precise design which implies an exhaustive study of the engine materials and behaviour in their extreme working conditions. With this purpose, this work intends to describe a numerically-based calibration of the widely-used Johnson–Cook fracture model, as well as its validation through high temperature ballistic impact tests. To do so, a widely-used turbine casing material is studied. This material is the Firth Vickers 535 martensitic stainless steel. Quasi-static tensile tests at various temperatures in a universal testing machine, as well as dynamic tests in a Split Hopkinson Pressure Bar, are carried out at different triaxialities. Using ABAQUS/Standard and LS-DYNA numerical codes, experimental data are matched. This method allows the researcher to obtain critical data of equivalent plastic strain and triaxility, which allows for more precise calibration of the Johnson–Cook fracture model. Such enhancement allows study of the fracture behaviour of the material across its usage temperature range.
机译:新一代喷气发动机在苛刻的工作条件下运行。这些条件需要非常精确的设计,这意味着需要对发动机材料及其在极端工作条件下的性能进行详尽的研究。出于这个目的,这项工作旨在描述广泛使用的Johnson-Cook断裂模型的基于数字的校准,以及通过高温弹道冲击试验进行的验证。为此,研究了广泛使用的涡轮机壳体材料。这种材料是Firth Vickers 535马氏体不锈钢。在不同的三轴度下,在通用测试机中的各种温度下进行准静态拉伸测试,以及在Split Hopkinson压力棒中进行动态测试。使用ABAQUS / Standard和LS-DYNA数字代码,可以匹配实验数据。这种方法使研究人员可以获得等效塑性应变和三轴性的关键数据,从而可以更精确地校准Johnson-Cook断裂模型。这种增强允许研究材料在其使用温度范围内的断裂行为。

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