Heat input effect on the microstructural transformation and mechanical properties in GTAW welds of a409L ferritic stainless steel

Jorge A. Delgado, Ricardo R. Ambriz, Ricardo Cuenca-Álvarez, Norma Alatorre, Francisco F. Curiel

Research output: Contribution to journalArticlepeer-review

9 Scopus citations

Abstract

Welds without filler metal and welds using a conventional austenitic stainless steel filler metal (ER308L) were performed to join a ferritic stainless steel with Gas Tungsten Arc Welding process (GTAW). Welding parameters were adjusted to obtain three different heat input values. Microstructure reveals the presence of coarse ferritic matrix and martensite laths in the Heat Affected Zone (HAZ). Dilution between filler and base metal was correlated with the presence of austenite, martensite and ferrite in the weld metal. Weld thermal cycles were measured to correlate the microstructural transformation in the HAZ. Microhardness measurements (maps and profiles) allow to identify the different zones of the welded joints (weld metal, HAZ, and base metal). Comparing the base metal with the weld metal and the HAZ, a hardness increment (172 HV0.5 to 350 HV0.5 and 310 HV0.5 , respectively) was observed, which has been attributed to the martensite formation. Tensile strength of the welded joints without filler metal increased moderately with respect to base metal. In contrast, ductility was approximately 25% higher than base metal, which provided a toughness improvement of the welded joints.

Original languageEnglish
Article numbere068
JournalRevista de Metalurgia (Madrid)
Volume52
Issue number2
DOIs
StatePublished - 1 Apr 2016

Keywords

  • 409l ferritic stainless steel
  • Gtaw heat input
  • Microhardness
  • Tensile properties
  • Weld thermal cycles

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