Effect of Wave Process of Plastic Deformation at Forging on the Fatigue Fracture Mechanism of Titanium Compressor Disks of Gas Turbine Engine

Author:

Shanyavskiy Andrey A.12,Soldatenkov Alexey P.1,Nikitin Alexandr D.2

Affiliation:

1. Aviation Register for Russian Federation, Airport Sheremetievo-1, PO Box 54, 141426 Moscow Region, Chimkinskiy State, Russia

2. Institute of Computer Aided Design, 2nd Brestskaya street 19/18, 123056 Moscow, Russia

Abstract

The low-cycle fatigue behavior of the VT3-1 titanium alloy (Ti–6Al–3Mo–2Cr alloy) under loading with a triangular and trapezoidal shape of cycle waveform was studied on round specimens prepared from forged compressor disks of a gas turbine engine. The filament type structure after forging has alternating filaments with the ductile and quasi-brittle state of the metal as a result of the wave process of plastic deformation during the metal forging process. The crack propagation, regardless of the cyclic waveform shape, occurs by the crack meso-tunneling mechanism: initially, the cracks propagate along the filaments by a quasi-brittle mechanism with the formation of a facetted pattern relief on the fracture surface reflecting the two-phase structure of the titanium alloy, and then, the bridge between the meso-tunnels is fractured with the formation of fatigue striations. The part of the crack growth duration Np/Nf in the durability Nf is determined on the basis of measuring the fatigue striation spacing, and it depends on the crack path with respect to the material filaments. The growth of a fatigue crack in the case of in-service failure of a compressor disk of a gas turbine engine is considered, taking into account the crack meso-tunneling effect, and the fatigue crack growth duration in the disk is determined on the basis of quantitative fractography.

Funder

Russian Science Foundation

Publisher

MDPI AG

Reference22 articles.

1. Shanyavskiy, A. (2003). Tolerance Fatigue Failures of Aircraft Components. Synergetics in Engineering Applications, Monografy. (In Russian).

2. Progress in Structural Materials for Aerospace Systems;Williams;Acta Mater,2003

3. Failures in inspection procedures: case studies;McEvily;Eng. Fail. Anal.,2004

4. Fractographic Analysis of Fatigue Crack Growth in Engine Compressor Disks of Ti-6Al-3Mo-2Cr Titanium Alloy;Shanyavskiy;Fatigue Fract. Engng Mater. Struct.,1995

5. Fatigue Crack Growth in Aroengine Compressor Disks Made from Titanium Alloy;Shanyavskiy;Fatigue Fract. Engng. Mater. Struct.,1999

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