Fatigue Crack Growth Characterization of Additive Manufactured Electron Beam Melted Ti6Al4V
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Abstract
The rapid advancement of metal additive manufacturing (AM) has led to a stronginterest in producing AM components for load-bearing and safety-critical applications.
Compared to subtractive manufacturing, benefits of AM include printing at near-net
shape and allowing more complex geometry. With this design flexibility, parts can be
built with reduced weight, and subsequently, reduced cost. Additionally, with a powder
bed fusion (PBF) process, powder reuse is possible, further lowering material costs.
This dissertation investigates a titanium alloy (Ti6Al4V) manufactured by a PBF
AM process called electron beam melting (EBM). EBM is one of the most popular
PBF processes used on the market due to its relatively high build speeds, its ability to
produce as-built (AB) Ti6Al4V with negligible residual stresses, and its near-vacuum
environment that reduces oxidation effects and contamination. Similarly, Ti6Al4V is a
widely used alloy, known as the ”workhorse” of the aerospace industry due to its high
strength-to-weight ratio and corrosion-resistance.
Despite the many benefits of EBM Ti6Al4V and the research done on its high cycle
fatigue (HCF) and fracture toughness (FT) properties, there is still limited understanding
of its damage tolerance (DT), specifically fatigue crack growth (FCG) when
a defect/crack is present in the part. Results show that resistance to FCG (ΔKth)
is influenced by microstructural features, specifically larger α features (α-laths, grain
boundary α, and α phase volume fraction), where larger values contribute to improved
ΔKth. There is a positive trend between both thickness and build height on ΔKth, as
well as a subsequent positive effect with the α grains. Similarly, after HIP+machining,
α microstructural features increase, improving ΔKth. Although there is not a strong
relationship between microstructural feature size and the orientation of the specimen,
there is a significant difference in ΔKth depending on orientation. This is due to
the orientation of the prior β grains and GB α parallel to the build direction, leading
to differences in crack growth resistance from microstructural boundaries so that
ΔKth,vert > ΔKth,flat > ΔKth,horiz.
ΔKth of EBM Ti6Al4V considering different build factors is predicted using analytical
models based on linear-elastic fracture mechanics (LEFM). The Hartman-Schijve
equation is used to model the FCG curve and predict ΔKth for long crack growth
and the Kitagawa-Takahashi diagram is used to predict ΔKth in the presence of small
defects/short cracks < 1000μm. Numerical simulation is also performed using finite
element analysis (FEA) to validate the FCG behavior of EBM Ti6Al4V. This research
contributes to a deeper knowledge of DT of EBM Ti6Al4V that supports integration
of this technology as a reliable manufacturing process for application in safety-critical
components in the aerospace industry and beyond.
Description
Thesis (Ph.D.)--University of Washington, 2026
