Javascript must be enabled to continue!
Effect of Niobium on the Microstructure and Mechanical Properties of Alloyed Ductile Irons and Austempered Ductile Irons
View through CrossRef
In this research, different ductile irons and austempered ductile irons were successfully developed using several alloying contents of nickel, copper and microalloying with niobium. Additionally, special nanocarbon powder was added to the molten iron to enhance the nucleation tendency of spheroidal graphite and compensate for the possible negative effect of Nb addition on the nodule morphology. Metallographic analysis showed that increasing the niobium content in the alloy to 0.1 wt % raises the number of graphite eutectic cells and refines the final structure of the graphite. Moreover, the nodule count of graphite slightly increased, but it concurrently decreased the nodularity when the Nb amount reached 0.1 wt %. SEM micrographs illustrated that nano- to microsized niobium carbides (NbC) particles were dispersed in the matrix of the Nb microalloyed ductile irons. Both optical and SEM micrographs clearly showed that alloying of ductile irons with nickel, copper and microalloying with niobium had a significant effect on defining the final pearlite structure. Coarse, fine, broken and spheroidized pearlite structures were simultaneously observed in all investigated alloys. Dilatometry studies demonstrated that the nano NbC particles acted as nucleation sites for graphite and ferrite needles. Therefore, Nb addition accelerated the formation of ausferrite during the austempering stage. Finally, alloying with Cu, Ni and microalloying with Nb led to developing novel grades of ADI with excellent strength/ductility property combination.
Title: Effect of Niobium on the Microstructure and Mechanical Properties of Alloyed Ductile Irons and Austempered Ductile Irons
Description:
In this research, different ductile irons and austempered ductile irons were successfully developed using several alloying contents of nickel, copper and microalloying with niobium.
Additionally, special nanocarbon powder was added to the molten iron to enhance the nucleation tendency of spheroidal graphite and compensate for the possible negative effect of Nb addition on the nodule morphology.
Metallographic analysis showed that increasing the niobium content in the alloy to 0.
1 wt % raises the number of graphite eutectic cells and refines the final structure of the graphite.
Moreover, the nodule count of graphite slightly increased, but it concurrently decreased the nodularity when the Nb amount reached 0.
1 wt %.
SEM micrographs illustrated that nano- to microsized niobium carbides (NbC) particles were dispersed in the matrix of the Nb microalloyed ductile irons.
Both optical and SEM micrographs clearly showed that alloying of ductile irons with nickel, copper and microalloying with niobium had a significant effect on defining the final pearlite structure.
Coarse, fine, broken and spheroidized pearlite structures were simultaneously observed in all investigated alloys.
Dilatometry studies demonstrated that the nano NbC particles acted as nucleation sites for graphite and ferrite needles.
Therefore, Nb addition accelerated the formation of ausferrite during the austempering stage.
Finally, alloying with Cu, Ni and microalloying with Nb led to developing novel grades of ADI with excellent strength/ductility property combination.
Related Results
Foundry Practice for Cast Irons
Foundry Practice for Cast Irons
Abstract
This article discusses foundry practices that are critical to the successful production of iron castings including melting practices (selection of meltin...
Characterization of Matrices and Graphite Forms of Cast Irons by Electromagnetic Nondestructive Evaluation
Characterization of Matrices and Graphite Forms of Cast Irons by Electromagnetic Nondestructive Evaluation
Mechanical properties of cast irons are mainly determined by two factors of microstructures, graphite morphology and type of matrices. Both graphite morphology and matrices affect ...
Austempered Ductile Iron (ADI): Influence of Austempering Temperature on Microstructure, Mechanical and Wear Properties and Energy Consumption
Austempered Ductile Iron (ADI): Influence of Austempering Temperature on Microstructure, Mechanical and Wear Properties and Energy Consumption
Alloyed Ductile iron, austenitized at 840 °C for 30 min in a special sealed austempering furnace, was austempered for 30 min in molten salt mixture at 4 trial temperatures of 300 °...
Damping Performance of Manganese Alloyed Austempered Ductile Iron
Damping Performance of Manganese Alloyed Austempered Ductile Iron
Austempered ductile iron has gained increased interest as an ideal choice of material for mechanical components exposed to dynamic loading. Apart from strength and ductility, mater...
Development of High Strength Ductile Iron with Niobium Addition
Development of High Strength Ductile Iron with Niobium Addition
The studies emphasis on the development of niobium alloyed ductile iron with higher strength comparing to unalloyed ductile iron. 0.5wt% to 2wt% niobium were added into mixture of ...
Development and properties of austempered low alloyed white cast iron
Development and properties of austempered low alloyed white cast iron
Abstract
This study examined the response of low-alloy white cast iron to austempering heat treatment. In addition, it investigated the microstructure and mechanical...
Characterization of Matrices and Graphite Forms of Cast Irons by Electromagnetic Nondestructive Evaluation
Characterization of Matrices and Graphite Forms of Cast Irons by Electromagnetic Nondestructive Evaluation
Mechanical properties of cast irons are mainly determined by two factors of microstructures, graphite forms and matrices. Both graphite forms and matrices affect electromagnetic pr...
EFFECT OF ANTIMONY ON THE WEAR RESISTANCE AND IMPACT TOUGHNESS OF CARBIDIC AUSTEMPERED DUCTILE IRON (CADI)
EFFECT OF ANTIMONY ON THE WEAR RESISTANCE AND IMPACT TOUGHNESS OF CARBIDIC AUSTEMPERED DUCTILE IRON (CADI)
This work investigated the effect of antimony on the impact toughness and wear resistance of carbidic austempered ductile iron (CADI). Six alloys with a carbon equivalent value of ...

