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X-ray Determination of Compressive Residual Stresses in Spring Steel Generated by High-Speed Water Quenching

机译:X射线测定高速水淬产生的弹簧钢压缩残余应力

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摘要

Automotive components manufacturers use the 5160 steel in leaf and coil springs. The industrial heat treatment process consists in austenitizing followed by the oil quenching and tempering process. Typically, compressive residual stresses are induced by shot peening on the surface of automotive springs to bestow compressive residual stresses that improve the fatigue resistance and increase the service life of the parts after heat treatment. In this work, a high-speed quenching was used to achieve compressive residual stresses on the surface of AISI/SAE 5160 steel samples by producing high thermal gradients and interrupting the cooling in order to generate a case-core microstructure. A special laboratory equipment was designed and built, which uses water as the quenching media in a high-speed water chamber. The severity of the cooling was characterized with embedded thermocouples to obtain the cooling curves at different depths from the surface. Samples were cooled for various times to produce different hardened case depths. The microstructure of specimens was observed with a scanning electron microscope (SEM). X-ray diffraction (XRD) was used to estimate the magnitude of residual stresses on the surface of the specimens. Compressive residual stresses at the surface and sub-surface of about −700 MPa were obtained.
机译:汽车零部件制造商在板簧和螺旋弹簧中使用5160钢。工业热处理过程包括奥氏体化,然后进行油淬和回火。通常,压缩残余应力是由汽车弹簧表面的喷丸处理引起的,以赋予压缩残余应力,从而改善了抗疲劳性并延长了热处理后零件的使用寿命。在这项工作中,通过产生高的热梯度并中断冷却以产生壳芯微结构,使用高速淬火来实现AISI / SAE 5160钢样品表面的压缩残余应力。设计并建造了一种特殊的实验室设备,该设备使用水作为高速水室内的淬火介质。用嵌入式热电偶对冷却的严重性进行了表征,以获得距表面不同深度的冷却曲线。将样品冷却不同的时间以产生不同的硬化表面深度。用扫描电子显微镜(SEM)观察样品的微观结构。 X射线衍射(XRD)用于估计样品表面上的残余应力的大小。在表面和子表面处获得约-700 MPa的压缩残余应力。

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