>
Fa   |   Ar   |   En
   Investigation of Carbon and Silicon Partitioning on Ferrite Hardening in A Medium Silicon Low Alloy Ferrite-Martensite Dual-Phase Steel  
   
نویسنده Khajesarvi A. ,Ghasemi Banadkouki S.
منبع International Journal Of Iron And Steel Society Of Iran - 2020 - دوره : 17 - شماره : 2 - صفحه:25 -33
چکیده    In this paper, the micromechanical behavior of ferrite microphase was evaluated in conjunction with carbon and silicon partitioning occurred during prior austenite to ferrite phase transformation using microhardness measurements supplemented by light observation and fieldemission scanning electron microscopy equipped with xray energy dispersive spectroscopy (eds). for this purpose, at first, the samples were austenitized at 900°c for 15 min and then aircooled (normalized) to room temperature in order to develop more starting homogeneous microstructural features in the proposed heattreated samples. the wide variety of ferritemartensite dualphase (dp) samples containing different volume fractions of ferrite and martensite microphases developed using stepquenching heat treatment processes at 750, 720, 700, and 680°c for 5 min isothermal holding time with the subsequent water quenching after being austenitized at 900°c for 15 min in the same conditions as to the direct waterquenched (wq) samples. the experimental results showed that, for a particular ferrite grain in a particular ferritemartensite dp samples, the ferrite location nearer to the ferritemartensite interfaces was accompanied with a significantly lower carbon and silicon centrations, while the associated ferrite hardening response was abnormally higher in comparison to that of the central regions of ferrite grains. this abnormal higher trend in ferrite hardness with lower carbon and silicon concentrations was attributed to the higher ferrite/martensite interaction of ferrite area adjacent to the martensite generated during martensitic phase transformation.
کلیدواژه Ferrite-Martensite ,Dual-Phase Microstracture ,Microhardness ,Hardening Variation ,Alloying Element Partitioning
آدرس Yazd University, Department Of Mining And Metallurgical Engineering, Iran, Yazd University, Department Of Mining And Metallurgical Engineering, Iran
پست الکترونیکی alikhajesarvi@stu.yazd.ac.ir
 
   Investigation of carbon and silicon partitioning on ferrite hardening in a medium silicon low alloy ferrite-martensite dual-phase steel  
   
Authors Khajesarvi Ali ,Ghasemi Banadkouki Seyed Sadegh
Abstract    In this paper, the micromechanical behavior of ferrite microphase was evaluated in conjunction with carbon and silicon partitioning occurred during prior austenite to ferrite phase transformation using microhardness measurements supplemented by light observation and fieldemission scanning electron microscopy equipped with Xray energy dispersive spectroscopy (EDS). For this purpose, at first, the samples were austenitized at 900°C for 15 min and then aircooled (normalized) to room temperature in order to develop more starting homogeneous microstructural features in the proposed heattreated samples. The wide variety of ferritemartensite dualphase (DP) samples containing different volume fractions of ferrite and martensite microphases developed using stepquenching heat treatment processes at 750, 720, 700, and 680°C for 5 min isothermal holding time with the subsequent water quenching after being austenitized at 900°C for 15 min in the same conditions as to the direct waterquenched (WQ) samples. The experimental results showed that, for a particular ferrite grain in a particular ferritemartensite DP samples, the ferrite location nearer to the ferritemartensite interfaces was accompanied with a significantly lower carbon and silicon centrations, while the associated ferrite hardening response was abnormally higher in comparison to that of the central regions of ferrite grains. This abnormal higher trend in ferrite hardness with lower carbon and silicon concentrations was attributed to the higher ferrite/martensite interaction of ferrite area adjacent to the martensite generated during martensitic phase transformation.
Keywords Ferrite-martensite ,dual-phase microstracture ,Microhardness ,hardening variation ,alloying element partitioning
 
 

Copyright 2023
Islamic World Science Citation Center
All Rights Reserved