Consolidation of water-atomized chromium-nickel-alloyed powder metallurgy steel through novel processing routes
Journal article, 2024

When processing powder metallurgy (PM) steels, the conventional press and sinter route can reach a relative density up to 95%, which is insufficient for applications when dynamic mechanical performance is critical. In this study, a novel route is demonstrated consisting of cold isostatic pressing (CIP) followed by sintering and capsule-free hot isostatic pressing (HIP), allowing to achieve full density PM steels. Water-atomized steel powder admixed with 2 wt.% Ni was subjected to CIP and followed by sintering in 90N2/10H2 atmosphere at 1120 and 1250 degrees C, and in vacuum (10-2 mbar) at 1250 and 1350 degrees C, respectively. At the highest explored CIP pressure of 600 MPa, the three high-temperature sintering runs at 1250 degrees C in 90N2/10H2 atmosphere and vacuum, and 1350 degrees C in vacuum resulted in relative density of similar to 94% and closed surface pores. This condition with necessary closed porosity then allowed subsequent capsule-free HIP after sintering, resulting in full densification of the components.

capsule-free hot isostatic pressing

sintering

powder metallurgy

full densification

cold isostatic pressing

Author

Anok Babu Nagaram

Chalmers, Industrial and Materials Science, Materials and manufacture

Maheswaran Vattur Sundaram

Höganäs

Johannes Gardstam

Quintus Technologies AB

Michael Andersson

Höganäs

Zhuoer Chen

Chalmers, Industrial and Materials Science, Materials and manufacture

Eduard Hryha

Chalmers, Industrial and Materials Science, Materials and manufacture

Lars Nyborg

Chalmers, Industrial and Materials Science, Materials and manufacture

Powder Metallurgy

0032-5899 (ISSN) 1743-2901 (eISSN)

Vol. 67 1 6-17

Full Density PM-steel through New Processing Routes

VINNOVA (2018-02371), 2018-07-01 -- 2021-06-30.

LIGHTer Academy Phase 3

VINNOVA (2020-04526), 2024-02-05 -- 2025-12-31.

Subject Categories

Metallurgy and Metallic Materials

DOI

10.1177/00325899231213007

More information

Latest update

5/6/2024 1