On the Combined Effect of Elastic and Plastic Strain on Magnetic Barkhausen Noise Signals

[1]  P. R. Underhill,et al.  Decoupling the effect of stress and microstructure on MBN response in cast Q1N steel , 2021, Materials Science and Technology.

[2]  M. Sapieta,et al.  Detection of Elastic Deformation in Metal Materials in Infrared Spectral Range , 2021, Materials.

[3]  A. Edrisy,et al.  Angular magnetic Barkhausen noise of incline- and cross-rolled non-oriented electrical steel sheets , 2021, Materials Characterization.

[4]  Peter Sergeant,et al.  Magnetic Properties of Silicon Steel after Plastic Deformation , 2020, Materials.

[5]  S. Dong,et al.  Study on the Mechanism and Application of Applying Magnetic Barkhausen Noise to Evaluate Dislocation Density and Plastic Deformation , 2020, Studies in Applied Electromagnetics and Mechanics.

[6]  T. Krause Towards A Physics Based Model Of Magnetic Barkhausen Noise In Steel , 2020 .

[7]  Yisheng Zhang,et al.  Nondestructive evaluation of hot stamping boron steel with martensite/bainite mixed microstructures based on magnetic Barkhausen noise detection , 2020 .

[8]  B. Shaw,et al.  Non-Destructive Characterization of Subsurface Plastic Deformation in Case Carburized Steel Using Magnetic Barkhausen Noise Technique , 2019, European Journal of Engineering Research and Science.

[9]  T. Zavadil Nondestructive Testing Ultrasonic Technique for Localization of Areas Subjected to Creep Deformation on In-Service Pipings Manufactured From Low-Alloyed Steel , 2019, Journal of Pressure Vessel Technology.

[10]  M. Kostina,et al.  Thermoelectric Method of Plastic Deformation Detection , 2018, Materials Science Forum.

[11]  J. Gibmeier,et al.  Application of magnetic Barkhausen noise for residual stress analysis – Consideration of the microstructure , 2018, Materials Testing.

[12]  Shilei Li,et al.  Development of Intergranular Residual Stress and Its Implication to Mechanical Behaviors at Elevated Temperatures in AL6XN Austenitic Stainless Steel , 2018, Metallurgical and Materials Transactions A.

[13]  N. Hansen,et al.  The microstructural origin of work hardening stages , 2018 .

[14]  M. Kashefi,et al.  Nondestructive examination of decarburised layer of steels using eddy current and magnetic Barkhausen noise testing techniques , 2018 .

[15]  O. Melikhova,et al.  Monitoring of grinding burn via Barkhausen noise emission in case-hardened steel in large-bearing production , 2017 .

[16]  Z. Kowalewski,et al.  The Dominant Influence of Plastic Deformation Induced Residual Stress on the Barkhausen Effect Signal in Martensitic Steels , 2017 .

[17]  S. Papadopoulou Correlation of magnetic properties with deformation in electrical steels , 2016 .

[18]  M. Kashefi,et al.  An investigation into the applicability of Barkhausen noise technique in evaluation of machining properties of high carbon steel parts with different degrees of spheroidization , 2015 .

[19]  Toshiyuki Takagi,et al.  Quantitative Nondestructive Evaluation of Plastic Deformation in Carbon Steel Based on Electromagnetic Methods , 2014 .

[20]  Mohammad Mazinani,et al.  Comparative study of eddy current and Barkhausen noise nondestructive testing methods in microstructural examination of ferrite–martensite dual-phase steel , 2014 .

[21]  T. Uchimoto,et al.  A Numerical Method for Simulation of Nonlinear Eddy Current Testing Signals Based on Transient Ar Formulation , 2013 .

[22]  Yang Liu,et al.  Metal magnetic memory signal response to plastic deformation of low carbon steel , 2013 .

[23]  H. Sakamoto,et al.  Microstructure dependence of Barkhausen voltage pulse width in steel , 2012 .

[24]  R. Gou,et al.  Analysis on Test Method of Metal Magnetic Memory Mechanism of Ferromagnetic Materials Based Plastic Deformation , 2012 .

[25]  Chih-wen Chen,et al.  Magnetism and Metallurgy of Soft Magnetic Materials , 2011 .

[26]  Steven Andrew White,et al.  A Barkhausen noise testing system for CANDURTM feeder pipes , 2009 .

[27]  H. Carreon Detection of creep damage in a nickel-based superalloy turbine bucket using eddy current imaging , 2009 .

[28]  L. Padovese,et al.  Nondestructive inspection of plastic deformation in commercial carbon steels using magnetic Barkhausen noise , 2008 .

[29]  G. Bertotti,et al.  Barkhausen noise in plastically deformed low-carbon steels , 2008 .

[30]  J. Bydžovský,et al.  Magnetic behaviour of low-carbon steel in parallel and perpendicular directions to tensile deformation , 2007 .

[31]  O. Perevertov Influence of the residual stress on the magnetization process in mild steel , 2007 .

[32]  H. Mughrabi Dual role of deformation-induced geometrically necessary dislocations with respect to lattice plane misorientations and/or long-range internal stresses , 2006 .

[33]  X. Kleber,et al.  Characterization of the Residual Stresses in Plastically Deformed Ferrite-Martensite Steels Using Barkhausen Noise Measurements , 2005 .

[34]  A. Vincent,et al.  On the role of residual internal stresses and dislocations on Barkhausen noise in plastically deformed steel , 2004 .

[35]  M. Kuroda,et al.  Detection of plastic deformation and estimation of maximum value of residual stress in low carbon steel by X-ray stress analysis using statistical techniques , 2003 .

[36]  Dongil Kwon,et al.  Determination of welding residual stress distribution in API X65 pipeline using a modified magnetic Barkhausen noise method , 2003 .

[37]  D. Atherton,et al.  Influence of Lüders bands on magnetic Barkhausen noise and magnetic flux leakage signals , 2002 .

[38]  D. Atherton,et al.  Analysis of cold rolled steels of different reduction ratio using the magnetic Barkhausen noise technique , 2001 .

[39]  M. Sablik Modeling the effect of grain size and dislocation density on hysteretic magnetic properties in steels , 2001 .

[40]  David L. Atherton,et al.  Plastic versus elastic deformation effects on magnetic Barkhausen noise in steel , 2000 .

[41]  C. Heald,et al.  Origin of a magnetic easy axis in pipeline steel , 1999 .

[42]  T. Jayakumar,et al.  Effect of tensile deformation on micromagnetic parameters in 0.2% carbon steel and 2.25Cr–1Mo steel , 1999 .

[43]  David L. Atherton,et al.  Measurement of residual stress in steel using the magnetic Barkhausen noise technique , 1998 .

[44]  D. Atherton,et al.  Magnetic Barkhausen noise: stress-dependent mechanisms in steel , 1996 .

[45]  David L. Atherton,et al.  Investigation of the stress‐dependent magnetic easy axis in steel using magnetic Barkhausen noise , 1996 .

[46]  D. Atherton,et al.  Correlation of magnetic Barkhausen noise with core loss in oriented 3% Si–Fe steel laminates , 1996 .

[47]  Milton Ohring,et al.  Engineering Materials Science , 1995 .

[48]  David L. Atherton,et al.  Characterization of the magnetic easy axis in pipeline steel using magnetic Barkhausen noise , 1994 .

[49]  David L. Atherton,et al.  Influence of magnetizing parameters on the magnetic Barkhausen noise , 1992 .

[50]  D. Jiles The effect of stress on magnetic Barkhausen activity in ferromagnetic steels , 1989, International Magnetics Conference.

[51]  D. Utrata,et al.  Effects of tensile plastic deformation on the magnetic properties of AISI 4140 steel , 1987 .

[52]  H. Mughrabi,et al.  Dislocation wall and cell structures and long-range internal stresses in deformed metal crystals , 1983 .

[53]  M. Moilanen,et al.  Detection of plastic deformation during fatigue of mild steel by the measurement of Barkhausen noise , 1979 .

[54]  C. Graham,et al.  Introduction to Magnetic Materials , 1972 .

[55]  L. Padovese,et al.  Magnetic Barkhausen emission in lightly deformed AISI 1070 steel , 2012 .

[56]  L. Padovese,et al.  Evaluating Plastic Deformation by the Magnetic Barkhausen Noise , 2006 .

[57]  V. Suriyanon,et al.  IN R , 2006 .

[58]  M. Kuroda,et al.  Detection of plastic deformation in low carbon steel by SQUID magnetometer using statistical techniques , 2005 .

[59]  Catalin V. Mandache,et al.  Magnetic flux leakage investigation of interacting defects: Stress and geometry effects , 2004 .

[60]  R. Cahn,et al.  Materials science and engineering , 2023, Nature.