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Article Details

  • Article Code : FIRAT-AKADEMI-8822-4173
  • Article Type : Araştırma Makalesi
  • Publication Number : 2A0180
  • Page Number : 15-22
  • Doi : 10.12739/NWSA.2020.15.1.2A0180
  • Abstract Reading : 607
  • Download : 126
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Issue Details

  • Year : 2020
  • Volume : 15
  • Issue : 1
  • Number of Articles Published : 3
  • Published Date : 1.01.2020

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Technological Applied Sciences

Serial Number : 2A
ISSN No. : 1308-7223
Release Interval (in a Year) : 4 Issues

THE EFFECT OF SINTERING TIME ON TENSILE STRENGTH OF NB-V MICROALLOYED POWDER METALLURGY STEELS

Mehmet Akif ERDEN1

Microalloyed steels can be defined as low alloyed high strength steels which increase the strength of steel by mechanisms such as precipitation hardening, aggregation hardening, particle size reduction, dispersion hardening by adding microalloy elements such as aluminium, niobium, vanadium and titanium in the range of 0.05% and 0.20%. Powder metallurgy is one of the manufacturing methods in which small parts which are difficult to manufacture can be produced in series with some parts which are close to the final shape with minimum material loss and which cannot be produced by other production methods. In this work, effect of different sintering time (1h., 2h. and 3h.) on the tensile strength of powder metallurgy (PM) plain carbon steel and microalloyed steels with different amount of niobium and vanadium content (0-0.1-0.2 wt%) were investigated. As a result, it was determined that the added alloying elements increased the mechanical properties. 0.2 wt % Nb-V added and sintered 2 h. PM steel showed the highest values in yield strength (YS), ultimate tensile strength (UTS).

Keywords
Powder Metallurgy, Nb-V Microalloyed Steels, Microstructure, Tensile Test, Sintering Time,

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Authors

Mehmet Akif ERDEN (1) (Corresponding Author)

Karabük Üniversitesi
makiferden@karabuk.edu.tr | 0000-0003-1081-4713

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References
[1] Alzahougi, A., Elitaş, M. and Demir, B., (2018). RSW Junctions of Advanced Automotive Sheet Steel by Using Different Electrode Pressures. Engineering, Technology & Applied Science Research, 8(5):3492-3495.