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Study of the effect of heat treatment on fatigue crack growth behaviour of 316L stainless steel produced by selective laser melting

机译:热处理对选择性激光熔炼316L不锈钢疲劳裂纹扩展行为的影响研究

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This study is focused on stainless steel type 316L produced by selective laser melting (SLM). This steel is very resistant to corrosion in acidic environments and has extremely good strength properties at elevated temperatures. It is also characterized by a very good weldability. These properties allow for various applications of 316L in different fields. The widespread application of 316L opens up various possibilities for production of parts using SLM. Therefore, it is important to characterize the fatigue crack growth behaviour. In the present paper, the crack growth behaviour of SLM 316L stainless steel has been investigated in its as-built condition and in different heat treatment conditions. The effect of build orientation on the crack growth path is also studied by performing fatigue crack growth tests on compact tension specimens built at 0° and 45° orientations relative to the build direction. A heat treatment above the recrystallization temperature followed by quenching is shown to create compressive residual stresses that improve the resistance against crack propagation considerably. The 45° build orientation shows crack propagation at an angle to the initial notch plane, which reveals that anisotropy still persists after heat treatment.
机译:这项研究的重点是通过选择性激光熔化(SLM)生产的316L不锈钢。这种钢在酸性环境中非常耐腐蚀,并且在高温下具有非常好的强度性能。它还具有很好的可焊性。这些特性允许316L在不同领域中的各种应用。 316L的广泛应用为使用SLM生产零件开辟了各种可能性。因此,表征疲劳裂纹扩展行为很重要。在本文中,已经研究了SLM 316L不锈钢在初始状态和不同热处理条件下的裂纹扩展行为。通过在相对于构建方向为0°和45°取向的紧凑型拉伸试样上进行疲劳裂纹扩展测试,也研究了构建方向对裂纹扩展路径的影响。显示出高于再结晶温度的热处理,然后淬火,会产生压缩残余应力,从而大大提高了抗裂纹扩展的能力。 45°的构建方向显示裂纹以与初始刻槽平面成一定角度的方式传播,这表明在热处理后各向异性仍然存在。

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    Siemens Industry Software, Interleuvenlaan 68, 3001 Leuven, Belgium;

    Department of Mechanical and Industrial Engineering, NTNU, Richard Birkelands vei 2B, 7010 Trondheim, Norway;

    Department of Mechanical and Industrial Engineering, NTNU, Richard Birkelands vei 2B, 7010 Trondheim, Norway;

    SINTEF, 7010 Trondheim, Norway;

    Mechanical Design and Manufacturing Centre, Brandenburg University of Technology Cottbus-Senftenberg, Konrad, Wachsmann, Allee 17, Cottbus D-03046, Germany;

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