date: 2017-11-02T08:41:15Z pdf:PDFVersion: 1.5 pdf:docinfo:title: Development of a Model for Dynamic Recrystallization Consistent with the Second Derivative Criterion xmp:CreatorTool: LaTeX with hyperref package access_permission:can_print_degraded: true subject: Dynamic recrystallization (DRX) processes are widely used in industrial hot working operations, not only to keep the forming forces low but also to control the microstructure and final properties of the workpiece. According to the second derivative criterion (SDC) by Poliak and Jonas, the onset of DRX can be detected from an inflection point in the strain-hardening rate as a function of flow stress. Various models are available that can predict the evolution of flow stress from incipient plastic flow up to steady-state deformation in the presence of DRX. Some of these models have been implemented into finite element codes and are widely used for the design of metal forming processes, but their consistency with the SDC has not been investigated. This work identifies three sources of inconsistencies that models for DRX may exhibit. For a consistent modeling of the DRX kinetics, a new strain-hardening model for the hardening stages III to IV is proposed and combined with consistent recrystallization kinetics. The model is devised in the Kocks-Mecking space based on characteristic transition in the strain-hardening rate. A linear variation of the transition and inflection points is observed for alloy 800H at all tested temperatures and strain rates. The comparison of experimental and model results shows that the model is able to follow the course of the strain-hardening rate very precisely, such that highly accurate flow stress predictions are obtained. dc:format: application/pdf; version=1.5 pdf:docinfo:creator_tool: LaTeX with hyperref package access_permission:fill_in_form: true pdf:encrypted: false dc:title: Development of a Model for Dynamic Recrystallization Consistent with the Second Derivative Criterion modified: 2017-11-02T08:41:15Z cp:subject: Dynamic recrystallization (DRX) processes are widely used in industrial hot working operations, not only to keep the forming forces low but also to control the microstructure and final properties of the workpiece. According to the second derivative criterion (SDC) by Poliak and Jonas, the onset of DRX can be detected from an inflection point in the strain-hardening rate as a function of flow stress. Various models are available that can predict the evolution of flow stress from incipient plastic flow up to steady-state deformation in the presence of DRX. Some of these models have been implemented into finite element codes and are widely used for the design of metal forming processes, but their consistency with the SDC has not been investigated. This work identifies three sources of inconsistencies that models for DRX may exhibit. For a consistent modeling of the DRX kinetics, a new strain-hardening model for the hardening stages III to IV is proposed and combined with consistent recrystallization kinetics. The model is devised in the Kocks-Mecking space based on characteristic transition in the strain-hardening rate. A linear variation of the transition and inflection points is observed for alloy 800H at all tested temperatures and strain rates. The comparison of experimental and model results shows that the model is able to follow the course of the strain-hardening rate very precisely, such that highly accurate flow stress predictions are obtained. pdf:docinfo:subject: Dynamic recrystallization (DRX) processes are widely used in industrial hot working operations, not only to keep the forming forces low but also to control the microstructure and final properties of the workpiece. According to the second derivative criterion (SDC) by Poliak and Jonas, the onset of DRX can be detected from an inflection point in the strain-hardening rate as a function of flow stress. Various models are available that can predict the evolution of flow stress from incipient plastic flow up to steady-state deformation in the presence of DRX. Some of these models have been implemented into finite element codes and are widely used for the design of metal forming processes, but their consistency with the SDC has not been investigated. This work identifies three sources of inconsistencies that models for DRX may exhibit. For a consistent modeling of the DRX kinetics, a new strain-hardening model for the hardening stages III to IV is proposed and combined with consistent recrystallization kinetics. The model is devised in the Kocks-Mecking space based on characteristic transition in the strain-hardening rate. A linear variation of the transition and inflection points is observed for alloy 800H at all tested temperatures and strain rates. The comparison of experimental and model results shows that the model is able to follow the course of the strain-hardening rate very precisely, such that highly accurate flow stress predictions are obtained. pdf:docinfo:creator: Muhammad Imran, Markus Kühbach, Franz Roters and Markus Bambach PTEX.Fullbanner: This is pdfTeX, Version 3.14159265-2.6-1.40.17 (TeX Live 2016/W32TeX) kpathsea version 6.2.2 meta:author: Muhammad Imran, Markus Kühbach, Franz Roters and Markus Bambach trapped: False meta:creation-date: 2017-11-02T08:41:15Z created: 2017-11-02T08:41:15Z access_permission:extract_for_accessibility: true Creation-Date: 2017-11-02T08:41:15Z Author: Muhammad Imran, Markus Kühbach, Franz Roters and Markus Bambach producer: pdfTeX-1.40.17 pdf:docinfo:producer: pdfTeX-1.40.17 pdf:unmappedUnicodeCharsPerPage: 0 Keywords: dynamic recovery; recrystallization; second derivative criterion; alloy 800H access_permission:modify_annotations: true dc:creator: Muhammad Imran, Markus Kühbach, Franz Roters and Markus Bambach dcterms:created: 2017-11-02T08:41:15Z Last-Modified: 2017-11-02T08:41:15Z dcterms:modified: 2017-11-02T08:41:15Z title: Development of a Model for Dynamic Recrystallization Consistent with the Second Derivative Criterion Last-Save-Date: 2017-11-02T08:41:15Z pdf:docinfo:keywords: dynamic recovery; recrystallization; second derivative criterion; alloy 800H pdf:docinfo:modified: 2017-11-02T08:41:15Z meta:save-date: 2017-11-02T08:41:15Z pdf:docinfo:custom:PTEX.Fullbanner: This is pdfTeX, Version 3.14159265-2.6-1.40.17 (TeX Live 2016/W32TeX) kpathsea version 6.2.2 Content-Type: application/pdf X-Parsed-By: org.apache.tika.parser.DefaultParser creator: Muhammad Imran, Markus Kühbach, Franz Roters and Markus Bambach dc:subject: dynamic recovery; recrystallization; second derivative criterion; alloy 800H access_permission:assemble_document: true xmpTPg:NPages: 18 pdf:charsPerPage: 3075 access_permission:extract_content: true access_permission:can_print: true pdf:docinfo:trapped: False meta:keyword: dynamic recovery; recrystallization; second derivative criterion; alloy 800H access_permission:can_modify: true pdf:docinfo:created: 2017-11-02T08:41:15Z