Non-Destructive Characterization of Subsurface Residual Stress Fields and Correlation with Microstructural Conditions in a Shot-Peened Inconel Component

被引:0
作者
J.-S. Park
K. Yildizli
E. Demir
P.R. Dawson
M.P. Miller
机构
[1] Argonne National Laboratory,Advanced Photon Source
[2] Ondokuz Mayis University,Department of Mechanical Engineering, Faculty of Engineering
[3] Sabanci University,Faculty of Engineering and Natural Sciences
[4] Cornell University,Sibley School of Mechanical and Aerospace Engineering
来源
Experimental Mechanics | 2018年 / 58卷
关键词
Shot-peening; Residual stress; X-ray diffraction; Finite element method; Nickel superalloy;
D O I
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中图分类号
学科分类号
摘要
Shot-peening is an important surface treatment used in a preventative way to guard against fatigue failures. The residual stress state imparted by shot-peening deters the formation and propagation of surface cracks. In this paper, we describe the measurement of residual stresses in an Inconel, IN100, sample using lattice strains measured using High Energy X-ray Diffraction (HEXD) and a Bi-Scale Optimization Method (BSOM). HEXD enabled rapid, non-destructive lattice strain measurements over a large region of the sample. Subsurface strains were obtained using a conical slit setup. The BSOM utilizes a macroscale representation of the sample and a spherical harmonic-based crystal scale representation of crystal orientation space at each experimental point (diffraction volume). A roughly biaxial stress state was predicted with a von Mises equivalent stress between 300 MPa and 400 MPa near the surface. The layer of material with high residual stress induced by shot-peening was found to be approximately 1 mm thick. Diffraction peak width, EBSD, and microhardness measurements were also made on the same sample, which rendered more qualitative measures of the plasticity-related effects of the shot-peening induced residual stress field. All of these measurements show a dimishing shot-peening plasticity with the increasing depth.
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页码:1389 / 1406
页数:17
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