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In Situ Synchrotron X-Ray Diffraction Stress Analysis During Laser Surface Line Hardening of Samples with Specific Geometric Features

机译:具有特定几何特征的样品的激光表面线硬化过程中的原位同步加速器X射线衍射应力分析

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Multiple in situ X-ray diffraction experiments of temperature controlled laser line hardening processes have been carried out at the German Electron Synchrotron (DESY) in Hamburg, Germany. During the process, the local strain and stress evolution were monitored using synchrotron radiation with a time resolution of 50 Hz with a spatial resolution of less than 01 mm. To quantify sample geometry effects on the stress formation and hence the residual stress state in the process zone, different samples with geometric features made of steel grade AISI4140 were line hardened by means of a high-power diode laser unit using a maximum control temperature of 950 °C at constant laser feed of 0.8 m/min. A specially designed process chamber was used in the experiment, allowing the control of the inert gas atmosphere to avoid surface oxidization. The symmetric application of four fast micro-strip line detectors allows for the real-time measurement of several diffraction lines hkl during the heat treatment process. The thermal and elastic strains were separated and time resolved stress analysis was carried out using a conventional X-ray stress analysis approach. The results were carefully discussed using data obtained by numerical process simulation by finite element method (FEM). It could be shown and explained that geometric features (radii) in the process zone of laser surface line hardening lead to a decrease of resulting residual stresses transverse to the processed workpiece zone.
机译:在德国汉堡的德国电子同步加速器(DESY)上进行了温度控制激光线硬化工艺的多个原位X射线衍射实验。在此过程中,使用同步加速器辐射监测局部应变和应力变化,同步辐射辐射的时间分辨率为50 Hz,空间分辨率小于01 mm。为了量化样品几何形状对应力形成的影响,从而量化工艺区域中的残余应力状态,使用高功率二极管激光装置,通过最大控制温度为950的线,对由钢级AISI4140制成的具有几何特征的不同样品进行了线固化。恒定激光进给度为0.8 m / min时为°C。实验中使用了专门设计的处理室,可以控制惰性气体气氛以避免表面氧化。四个快速微带线检测器的对称应用可在热处理过程中实时测量多个衍射线hkl。分离热应变和弹性应变,并使用常规的X射线应力分析方法进行时间分辨应力分析。使用通过有限元方法(FEM)进行数值过程仿真获得的数据仔细讨论了结果。可以示出和解释,激光表面线硬化的加工区域中的几何特征(半径)导致横向于加工的工件区域的所产生的残余应力的减小。

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