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  1. Journal of Materials Engineering and Performance
  2. Journal of Materials Engineering and Performance : Volume 11
  3. Journal of Materials Engineering and Performance : Volume 11, Issue 3, June 2002
  4. An analysis of induction hardening of ferritic ductile iron
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Journal of Materials Engineering and Performance : Volume 26
Journal of Materials Engineering and Performance : Volume 25
Journal of Materials Engineering and Performance : Volume 24
Journal of Materials Engineering and Performance : Volume 23
Journal of Materials Engineering and Performance : Volume 22
Journal of Materials Engineering and Performance : Volume 21
Journal of Materials Engineering and Performance : Volume 20
Journal of Materials Engineering and Performance : Volume 19
Journal of Materials Engineering and Performance : Volume 18
Journal of Materials Engineering and Performance : Volume 17
Journal of Materials Engineering and Performance : Volume 16
Journal of Materials Engineering and Performance : Volume 15
Journal of Materials Engineering and Performance : Volume 14
Journal of Materials Engineering and Performance : Volume 13
Journal of Materials Engineering and Performance : Volume 12
Journal of Materials Engineering and Performance : Volume 11
Journal of Materials Engineering and Performance : Volume 11, Issue 6, December 2002
Journal of Materials Engineering and Performance : Volume 11, Issue 5, October 2002
Journal of Materials Engineering and Performance : Volume 11, Issue 4, August 2002
Journal of Materials Engineering and Performance : Volume 11, Issue 3, June 2002
In situ repair welding of steam turbine shroud for replacing a cracked blade
The effect of the increase in graphite volumetric percentage on the strength and hardness of Al-4 weight percent Mg-graphite composites
Hydraulic erosion of concrete by a submerged jet
Effect of sintering temperature on the room temperature properties of Al$_{90}$Mn$_{8}$Ce$_{2}$ alloy
Heat transfer at the metal/substrate interface during solidification of Pb-Sn solder alloys
Influence of martensite volume fraction on fatigue limit of a dual-phase steel
An analysis of induction hardening of ferritic ductile iron
Cratering on thermosonic copper wire ball bonding
The effect of the third body on the fretting wear behavior of coatings
Laser surface hardening of gray cast iron used for piston ring
Dissolution susceptibility of the oxide species formed on mild steel during its oxidation in molten NaNO$_{3}$-KNO$_{3}$ eutectic mixture
Filler metal selection for welding a high nitrogen stainless steel
Comparison of shape memory effect between casting and forged alloys of Fe14Mn6Si9Cr5Ni
Development of polypropylene-based ultraviolet-stabilized formulations for harsh environments
A model for shrinkage of a spherical void in the center of a grain: Influence of lattice diffusion
Positron annihilation lifetime (PAL) studies of the variations of microstructure during isochronal annealing of Cu-Zn (60/40) alloy
Journal of Materials Engineering and Performance : Volume 11, Issue 2, April 2002
Journal of Materials Engineering and Performance : Volume 11, Issue 1, February 2002
Journal of Materials Engineering and Performance : Volume 10
Journal of Materials Engineering and Performance : Volume 9
Journal of Materials Engineering and Performance : Volume 8
Journal of Materials Engineering and Performance : Volume 7
Journal of Materials Engineering and Performance : Volume 6

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An analysis of induction hardening of ferritic ductile iron

Content Provider Springer Nature Link
Author Smoljan, Božo Cajner, Franjo Landek, Darko
Copyright Year 2002
Abstract Achievements of the induction hardening of ferritic ductile iron were investigated. Ductile iron is not advisable for use in induction hardening because of the small carbon content in the metal matrix of ferritic ductile iron. The carbon content in the metal matrix of ductile iron can be increased by additional preparation of metal matrix before final induction heat hardening. Wear resistance of the induction hardened ferritic ductile iron can increase as result of increased carbon content of the metal matrix and higher hardness after induction hardening. Some heat pretreatments for metal matrix preparation were applied before the induction hardening of ferritic ductile iron. The process parameters of the induction hardening heat pretreatment were analyzed and optimized. According to recommended elemental composition of ferritic ductile iron and required mechanical properties, the process parameters of the investigated induction heat pretreatment were optimized. The efficiency of pretreatment processes of induction hardening was analyzed. Applicability and manufacture ability of engineering components by proposed heat pretreatments were investigated. The limitations of the investigated heat pretreatment applications were estimated by the comparison of mechanical properties of heat-treated specimens.
Starting Page 278
Ending Page 282
Page Count 5
File Format PDF
ISSN 10599495
Journal Journal of Materials Engineering and Performance
Volume Number 11
Issue Number 3
e-ISSN 15441024
Language English
Publisher Springer-Verlag
Publisher Date 2002-01-01
Publisher Place New York
Access Restriction One Nation One Subscription (ONOS)
Subject Keyword ductile iron ferritic iron induction hardening metal matrix Characterization and Evaluation of Materials Materials Science Tribology, Corrosion and Coatings Quality Control, Reliability, Safety and Risk Engineering Design
Content Type Text
Resource Type Article
Subject Mechanics of Materials Materials Science Mechanical Engineering
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