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March 17, 2026The International Journal of Advanced Manufacturing Technology0 citationsOpen Access

Super duplex 2507 processing by DED AM: response to chemical composition fluctuations submitted to different cooling rates

JPJeferson Trevizan PachecoLSLeandro César da SilvaSWSten Wessman

Key Points

  • The research aims to understand how variations in chemical composition influence the characteristics of super duplex stainless steel 2507.
  • Utilized gas atomized powders from two suppliers classified as super duplex stainless steel 2507.
  • Applied directed energy deposition techniques (Laser and Plasma) with varying solidification kinetics.
  • Analyzed effects of different cooling rates and post-processing heat treatment on microstructure.
  • Alloy with low Cr_eq/Ni_eq ratio exhibited difficulties in achieving phase balance.
  • High Cr_eq/Ni_eq ratio resulted in a balanced phase structure in as-built conditions.
  • Microstructures differed, with low ratio showing a mix of ferrite and austenite, while the high ratio presented a mainly ferritic matrix.

Abstract

The broad compositional ranges defined as duplex stainless steels allow each supplier to market the same alloy with a unique chemical profile. This study investigates the hypothesis that these compositional shifts significantly affect the alloy’s final characteristics. Gas atomized powders from two suppliers, both classified as super duplex stainless steel 2507 (SDSS 2507) based on their nominal chemical composition and with similar granulometry, were processed using two solidification kinetics, imposed by directed energy deposition (DED) techniques: Laser and Plasma. An atomized powder presents low Cr₄ₐ/Ni₄ₐ ratio, promoting a ferritic–austenitic solidification mode, which made it difficult to achieve phase balance, despite different cooling rates and post processing heat treatment (PPHT) conditions. The other atomized powder has a high Cr₄ₐ/Ni₄ₐ ratio, which favored a fully ferritic solidification mode, resulting in a phase balance in the as-built condition for laser and plasma DED processes. While the low Cr₄ₐ/Ni₄ₐ ratio alloy had a microstructure composed of a mix of lathy and skeletal ferrite and austenite, high Cr₄ₐ/Ni₄ₐ ratio material exhibited ferritic matrix with intergranular, Widmanstatten and intragranular austenite.

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Cite This Study

Pacheco et al. (2026) studied this question.

synapsesocial.com/papers/69b8ef12deb47d591b8c520chttps://doi.org/10.1007/s00170-026-17866-4
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Effect of Ni Addition on the Phase Balance and Grain Boundary Character Distribution in 2507 Super Duplex Stainless Steel Fabricated via LPBF2026
  2. 2Tensile Properties and Fracture Analysis of Duplex (2205) and Super Duplex (2507) Stainless Steels, Produced via Laser Powder Bed Fusion Additive Manufacturing2024 · 1 citations
  3. 3Relationship Between the Ferrite/Austenite Ratio and Pitting Corrosion Resistance of 2507 Super Duplex Stainless Steel Produced by the LP‐DED Process2026
  4. 4Microstructural and Corrosion Behavior of Thin Sheet of Stainless Steel-Grade Super Duplex 2507 by Gas Tungsten Arc Welding2024 · 5 citations
  5. 5Evaluating the machining characteristics of 2507 super duplex stainless steels produced by laser powder bed fusion technology2026 · 1 citations