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ASSESSMENT OF A GRADE 91 STEEL FORGING AND SEAMLESS PIPE SECTION AFTER 141,000-HOURS OF OPERATION IN A SUPERHEAT OUTLET HEADER

Research output: Contribution to journalConference articlepeer-review

Abstract

In this work, two unique heats of 9Cr creep strength enhanced ferritic (CSEF) steels extracted from a retired superheat outlet header after 141,000 hours of service were evaluated. These two CSEF steels were a forging manufactured to SA-182 F91 (F91) reducer and a seamless pipe produced to SA-335 P91 (P91) pipe. Their creep deformation and fracture behavior were assessed using a lever arm creep frame integrated with in-situ high-temperature digital image correlation (DIC) system. Critical metallurgical and microstructure factors, including composition, service damage, grain matrix degradation, precipitates, and inclusions were quantitatively characterized to link the performance of the two service aged F91 and P91 CSEF steels. The creep test results show the F91 and P91 steels exhibit a large variation in creep strength and creep ductility. The F91 steel fractured at 572 hours while P91 steel fractured at 1,901 hours when subjected to a test condition of 650 °C and 100 MPa. The nominal creep strains at fracture were 12.5% (F91) and 14.5% (P91), respectively. The high-resolution DIC strain measurements reveal the local creep strain in F91 was about 50% while the local creep strain in P91 was >80%. The characterization results show that the F91 steel possessed pre-existing creep damage from its time in service, a higher fraction of inclusions, and a faster matrix grain coarsening rate. These features contribute to the observed reduction in performance for the F91 steel. The context for these findings, and the importance of metallurgical risk in an integrated life management approach will be emphasized.

Original languageEnglish
Pages (from-to)1172-1182
Number of pages11
JournalAdvances in Materials Technology for Fossil Power Plants
Issue number2025
DOIs
StatePublished - 2025
Event10th International Conference on Advances in Materials, Manufacturing, and Repair for Power Plants, AM-EPRI 2024 - Indian Wells, United States
Duration: Feb 25 2025Feb 28 2025

Funding

This work is funded by the Department of Energy Office of Fossil Energy's Crosscutting Research Program (FWP-FEAA118) and the Strategic Partnership Project (NFE-20-08195). The research and development work was performed at the Oak Ridge National Laboratory, which is managed by UT-Battelle LLC for the US Department of Energy under contract DE-AC05-00OR22725. The authors would like to thank Mr. Doug Kyle and Mr. Douglas Stringfield at Oak Ridge National Laboratory for their technical assistance.

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