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Surface layer nanocrystallization of carbon steels subjected to severe shot peening: Analysis and optimization

机译:碳钢的表面层纳米晶体经受严重射击喷丸:分析和优化

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Severe shot peening (SSP) process is widely used for surface nanocrysallization of a bulk material that demonstrates excellent mechanical properties compared with its coarse-grained equivalents. In this study, a plastically deformed surface was produced with nanostructured grains on different materials of AISI 1045, 1050, and 1060 carbon steels by means of SSP. Shot peening was applied with a wide range of Almen intensities and coverages. Optical microscopy, scanning electron microscopy, field emission scanning electron microscopy, high resolution transmission electron microscope observations, and X-ray diffraction analysis were employed to analyze the mechanism of grain refinement experimentally as well as the surface roughness and residual stress measurements. Afterwards, different shot peening treatments were used to develop a novel alternative approach based on artificial neural network (ANN) for modelling as well as parametric and sensitivity analysis of grain refinement and surface roughness. The experimental results were utilized to implement the ANN. The modelling results indicated that the neural network-based approach can be used to effectively analyze nanocrystallization and roughness variations of the shot peened carbon steels.
机译:严重的喷丸喷丸(SSP)方法广泛用于散装材料的表面纳米晶,与其粗粒等同物相比,散装材料的优异的机械性能。在该研究中,通过SSP使用纳米结构晶粒在不同材料的不同材料上用纳米结构晶粒制备。喷枪采用广泛的Almen强度和覆盖范围应用。光学显微镜,扫描电子显微镜,现场发射扫描电子显微镜,高分辨率透射电子显微镜观察和X射线衍射分析,通过实验分析晶粒细化的机制以及表面粗糙度和残余应力测量。之后,使用不同的喷丸治疗来开发基于人工神经网络(ANN)的新型替代方法,用于建模,以及对晶粒细化和表面粗糙度的参数和敏感性分析。实验结果用于实施ANN。建模结果表明,基于神经网络的方法可用于有效分析射击喷丸碳钢的纳米晶体化和粗糙度变化。

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