Compact-tension (CT) specimens of the equiatomic Co–Cr–Fe–Mn–Ni high-entropy (Cantor) alloy were cycled to failure and the fracture surfaces examined by scanning electron microscopy. The surface separates into a fatigue-propagation region and a final overload zone. The fatigue region is predominantly transgranular and exhibits a tortuous, step-rich morphology with short secondary cracks—features consistent with heterogeneous slip in a low-stacking-fault-energy FCC alloy and with roughness-induced deflection. Localized parallel markings compatible with striation-like features appear in select high-magnification areas, although continuous periodic striations are not uniformly resolved. Final fracture proceeds by ductile microvoid coalescence, producing a dimpled morphology with occasional particle imprints at dimple bases. No pervasive intergranular decohesion is observed. Taken together, these observations indicate that fatigue-crack advance reflects a synergy of intrinsic crack-tip plasticity and extrinsic shielding that promotes crack-path tortuosity. Crack-closure was not quantified; interpretations are strictly fractography-based.

Fatigue crack growth behavior of a high entropy alloy

Bellini, Costanzo;Di Cocco, Vittorio;Iacoviello, Francesco;
2026-01-01

Abstract

Compact-tension (CT) specimens of the equiatomic Co–Cr–Fe–Mn–Ni high-entropy (Cantor) alloy were cycled to failure and the fracture surfaces examined by scanning electron microscopy. The surface separates into a fatigue-propagation region and a final overload zone. The fatigue region is predominantly transgranular and exhibits a tortuous, step-rich morphology with short secondary cracks—features consistent with heterogeneous slip in a low-stacking-fault-energy FCC alloy and with roughness-induced deflection. Localized parallel markings compatible with striation-like features appear in select high-magnification areas, although continuous periodic striations are not uniformly resolved. Final fracture proceeds by ductile microvoid coalescence, producing a dimpled morphology with occasional particle imprints at dimple bases. No pervasive intergranular decohesion is observed. Taken together, these observations indicate that fatigue-crack advance reflects a synergy of intrinsic crack-tip plasticity and extrinsic shielding that promotes crack-path tortuosity. Crack-closure was not quantified; interpretations are strictly fractography-based.
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11580/125444
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