Discover Materials· 2026Q1
Hydrogen embrittlement susceptibility of AA7075 aluminum alloy subjected to continuous retrogression and re-aging treatment in an aggressive acidic chloride environment
- 0citations
- Q1SCImago
- 2026year
Short summary
A specific continuous retrogression and re-aging (RRA3) heat treatment (110 °C/5 h + 170 °C/14 h) for AA7075 aluminum alloy retained 90% of baseline threshold stress and 97% of fracture elongation after hydrogen exposure in an aggressive acidic chloride environment, a ~22% improvement over the T651 condition.
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Key points
- The RRA3 heat treatment (110 °C/5 h + 170 °C/14 h) for AA7075 alloy showed superior hydrogen embrittlement resistance.
- RRA3 specimens retained 90% of baseline threshold stress and 97% of fracture elongation after hydrogen exposure.
- This represents a ~22% improvement in strength index compared to the T651 reference condition.
- Microstructural analysis revealed discontinuous grain boundary precipitates and Zn/Cu-enriched phases in RRA3, suppressing hydrogen diffusion.
AI-generated from the title and abstract; the full text is not read.
Abstract
Abstract This study investigates the hydrogen embrittlement (HE) susceptibility of AA7075 aluminum alloy subjected to four continuous retrogression and re-aging (RRA) heat treatments in an aggressive acidic environment (3.5 wt% NaCl + 3 g/L NH₄SCN, pH 1.2). Susceptibility was assessed via incremental step-loading tests (ISLT) on hydrogen pre-charged specimens, supported by potentiodynamic polarization, transmission electron microscopy (TEM), selected-area electron diffraction (SAED), and energy-dispersive X-ray spectroscopy (EDS). Among the conditions evaluated, the stepped aging regime of 110 °C/5 h followed by 170 °C/14 h (RRA3) achieved the most favorable property balance, retaining 90% of baseline threshold stress and 97% of fracture elongation after hydrogen exposure — representing a ~ 22% improvement in strength index over the T651 reference. Potentiodynamic polarization confirmed superior electrochemical stability for RRA3, with corrosion current density approximately one order of magnitude lower than the least resistant condition. Microstructural analysis revealed that RRA3 promoted a discontinuous grain boundary precipitate morphology, widened precipitate-free zones, and Zn/Cu-enriched grain boundary phases, collectively suppressing hydrogen diffusion and intergranular decohesion. These results demonstrate that tailored continuous RRA processing can effectively decouple the inverse relationship between strength and hydrogen embrittlement resistance in AA7075.
The authors' abstract, as published at the source. Discover Materials, 2026 · DOI ↗
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Field: Metals and Alloys
Metals and AlloysMaterials Science