About this Abstract |
| Meeting |
MS&T26: Materials Science & Technology
|
| Symposium
|
Additive Manufacturing Modeling, Simulation, and Machine Learning: Microstructure, Mechanics, and Process
|
| Presentation Title |
Crack Growth and Failure Under High Cycle Fatigue of Pore-Containing 316L Stainless Steel Fabricated with Laser Powder Bed Fusion |
| Author(s) |
Michaela Anna Luebbers, Allison M. Beese |
| On-Site Speaker (Planned) |
Michaela Anna Luebbers |
| Abstract Scope |
In this work, the effect of diameter of a single, penny-shaped pore on high cycle fatigue crack growth and failure in additively manufactured 316L stainless steel was studied. At a given applied stress, increasing pore diameter led to exponentially decreasing fatigue life. A modified Basquin model is proposed to incorporate the dependence of cycles to failure on initial pore diameter. The inclusion of the smallest pore was found to more significantly reduce fatigue life than the same diameter pore reduced strain to failure under monotonic loading as compared to dense samples. Crack growth of all pore-containing samples was modeled with the Paris-Erdogan law. This work provides a foundational understanding of the impact of internal pores on fatigue life, which can guide risk-based acceptance criteria for additively manufactured components. |