Title of article :
Investigation on the crystallography of the transformation products of reverted austenite in intercritically reheated coarse grained heat affected zone
Author/Authors :
Yang You، نويسنده , , Chengjia Shang، نويسنده , , Liang Chen، نويسنده , , Sundaresa Subramanian، نويسنده ,
Issue Information :
ماهنامه با شماره پیاپی سال 2013
Abstract :
In present study the intercritically reheated coarse grained heat affected zone (ICCGHAZ) showing the worst impact toughness in the heat affected zone of multi-pass welding was simulated by Gleeble-1500, and its microstructure was investigated in detail by means of scanning electron microscope (SEM) and electron backscattering diffraction (EBSD). With the crystallographic information from EBSD scanning the area of a single reverted austenite grain which formed during the thermal cycles of second pass simulation was traced out. Within it two regions with different characteristic both in morphology and crystallography were found out, showing an un-uniform transformation of the reverted austenite. The region I is a bainitic region containing larger bainitic ferrite grains, while the region II is made up of several clusters containing tiny grains. Based on the crystallographic information each cluster was determined as martensite island thereby should be considered as blocky Martensite/Austenite constituent (M/A), which is hard phase and harmful for toughness. Analysis on the level of deformation shows that the region II is much higher deformed than the region I, indicating there is high stress concentration within the region II. The possible influence of the region I and the region II on fracture is discussed under the early proposed M/A’s fracture-initiating mechanisms. It suggests that the main cause of the toughness reduction is the un-uniform transformation of the reverted austenite, and the toughness performance of the ICCGHAZ could be improved if the transformation of the reverted austenite can be controlled to get higher uniformity.
Keywords :
Reverted austenite , Phase-transformation , Toughness , Fracture , Multi-pass welding
Journal title :
Materials and Design
Journal title :
Materials and Design