结合鞍钢开发的厚度0.27 mm HiB取向硅钢的经验,研究了热轧、常化、冷轧、脱碳退火、高温退火等工序微观组织、织构的变化和演变规律。结果表明:热轧浅表层的组织为再结晶组织,中心层为未完全再结晶的带状组织,常化后均发生再结晶和再...结合鞍钢开发的厚度0.27 mm HiB取向硅钢的经验,研究了热轧、常化、冷轧、脱碳退火、高温退火等工序微观组织、织构的变化和演变规律。结果表明:热轧浅表层的组织为再结晶组织,中心层为未完全再结晶的带状组织,常化后均发生再结晶和再结晶组织的长大,取向硅钢的组织在冷轧和脱碳退火后转变为铁素体的等轴晶粒,经过二次再结晶后,Goss织构晶粒成长为毫米级的大晶粒。热轧浅表层是Goss{110}〈001〉织构的发源地,经过常化后Goss织构原位加强,冷轧后Goss织构转变为{111}〈112〉且部分残留在变形剪切带处,从而在二次再结晶时,形成了以Goss织构为主要织构组分的HiB取向硅钢。展开更多
An explicit polycrystal plasticity model was proposed to investigate the deformation mechanism of cold ring rolling in view of texture evolution. The model was created by deducing a set of linear incremental controlli...An explicit polycrystal plasticity model was proposed to investigate the deformation mechanism of cold ring rolling in view of texture evolution. The model was created by deducing a set of linear incremental controlling equations within the framework of crystal plasticity theory. It was directly solved by a linear algorithm within a two-level procedure so that its efficiency and stability were guaranteed. A subroutine VUMAT for ABAQUS/Explicit was developed to combine this model with the 3D FE model of cold ring rolling. Results indicate that the model is reliable in predictions of stress-strain response and texture evolution in the dynamic complicated forming process; the shear strain in RD of the ring is the critical deformation mode according to the sharp Goss component ({110}?100?) of deformed ring; texture and crystallographic structure of the ring blank do not affect texture type of the deformed ring;texture evolves rapidly at the later stage of rolling, which results in a dramatically increasing deformation of the ring.展开更多
文摘结合鞍钢开发的厚度0.27 mm HiB取向硅钢的经验,研究了热轧、常化、冷轧、脱碳退火、高温退火等工序微观组织、织构的变化和演变规律。结果表明:热轧浅表层的组织为再结晶组织,中心层为未完全再结晶的带状组织,常化后均发生再结晶和再结晶组织的长大,取向硅钢的组织在冷轧和脱碳退火后转变为铁素体的等轴晶粒,经过二次再结晶后,Goss织构晶粒成长为毫米级的大晶粒。热轧浅表层是Goss{110}〈001〉织构的发源地,经过常化后Goss织构原位加强,冷轧后Goss织构转变为{111}〈112〉且部分残留在变形剪切带处,从而在二次再结晶时,形成了以Goss织构为主要织构组分的HiB取向硅钢。
基金Project(52130509) supported by the National Natural Science Foundation,ChinaProject(BIPTACF-010) supported by the Cultivation Foundation from Beijing Institute of Petrochemical Technology,China。
基金Changzhou Science and Technology Plan Project“Green Intelligent Manufacturing Key Technology Cooperation for Rail Transit Brake System Core Components”(CZ20210034)National Key Research and Development Project(2018YFB1307902)+6 种基金National Natural Science Foundation of China(52175353)Shanxi Young Top Talent Project,Shanxi Province Science Foundation for Youths(201901D211312)Excellent Young Academic Leaders in Shanxi Colleges and Universities(2019045)Excellent Achievements Cultivation Project of Shanxi Higher Education Institutions(2019KJ028)Shanxi Graduate Education Innovation Project(2019SY482)Key Research and Development Projects of Shanxi Province(201903D121043)Taiyuan University of Science and Technology Graduate Education Innovation Project(SY2022005)。
基金Project (51175428) supported by the National Natural Science Foundation of ChinaProject (B08040) supported by Program of Introducing Talents of Discipline to Universities ("111"Project),China
文摘An explicit polycrystal plasticity model was proposed to investigate the deformation mechanism of cold ring rolling in view of texture evolution. The model was created by deducing a set of linear incremental controlling equations within the framework of crystal plasticity theory. It was directly solved by a linear algorithm within a two-level procedure so that its efficiency and stability were guaranteed. A subroutine VUMAT for ABAQUS/Explicit was developed to combine this model with the 3D FE model of cold ring rolling. Results indicate that the model is reliable in predictions of stress-strain response and texture evolution in the dynamic complicated forming process; the shear strain in RD of the ring is the critical deformation mode according to the sharp Goss component ({110}?100?) of deformed ring; texture and crystallographic structure of the ring blank do not affect texture type of the deformed ring;texture evolves rapidly at the later stage of rolling, which results in a dramatically increasing deformation of the ring.
基金Project (2011CB012802) supported by the National Basic Research Program of ChinaProject (51175428) supported by the National Natural Science Foundation of ChinaProject (B08040) supported by the Programme of Introducing Talents of Discipline to Universities("111" Project)