Measurement of the Effectiveness of Half Value Breadth of X-ray Diffraction Profile for Residual Stress Analysis using FEM Based on the Inherent Strain Methodology on the Cold-formed Part
Author:
Affiliation:
1. Steel Casting & Forging Division, KOBE steel, LTD.
2. Mechanical Engineering Laboratory, KOBE steel, LTD.
3. Graduate School of Natural Science & Technology
Publisher
Society of Materials Science, Japan
Subject
Mechanical Engineering,Mechanics of Materials,Condensed Matter Physics,General Materials Science
Link
https://www.jstage.jst.go.jp/article/jsms/68/4/68_332/_pdf
Reference6 articles.
1. 1) Y. Ueda, K. Fukuda, K. Nakacho and S. Endo, “A new measuring method of residual stresses with the aid of finite element method and reliability of estimated values”, Journal of the Society of Naval Architects of Japan, Vol.138, pp.499-507 (1975).
2. 2) K. Nakacho, N. Ogawa and T. Ohta, “Measurement of welding residual stresses of reactor vessel by inherent strain method - Diagnosis of inherent strain distribution function”, Quarterly Journal of the Japan Welding Society, Vol.27, No.4, pp.297-306 (2009).
3. 3) K. Nakacho, N. Ogawa, T. Ohta and M. Nayama, “Inherent-strain-based theory of measurement of three-dimensional residual stress distribution and its application to a welded joint in a reactor vessel”, Transactions of the ASME, Journal of Pressure Vessel Technology, Vol.136, No.3, p.031401 (2014).
4. 4) M. Ogawa, “Non-destructive evaluation of welding residual stresses in the thickness direction via X-ray diffraction”, Transactions of the Japan Society of Mechanical Engineers, Vol.80, No.815, p.SMM0195 (2014).
5. 5) M. Matsuda, K. Okita, T. Nakagawa and T. Sasaki, “Application of X-ray Stress Measurement for Residual Stress Analysis by Inherent Strain Method: Comparison of cosα and sin2ψ method”, Mechanical Engineering Journal, Vol.4, Issue5, p.17-00022 (2017).
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