Abstract
This study focuses on the mechanical characterization of an additively manufactured metallic superalloy, IN718, using micro tensile (MT) and instrumented indentation testing (IIT) techniques. Additive manufacturing (AM) or 3D printing enables complex geometries and unique microstructures in superalloys, which influence their mechanical behavior under stress. In addition, material directions in 3D-printed metals induce anisotropic mechanical properties that result from the layer-by-layer manufacturing process. To assess these properties, the MT tests are conducted along three major material directions: build, diagonal, and transverse. A digital image correlation (DIC) technique is implemented during the tests to measure the full-field strain on the specimen surface. These tests provide detailed insights into the alloy's strength, ductility, and strain behavior at small scales. Similarly, the nanoindentation tests are conducted by pressing a spherical and a three-sided diamond pyramid Berkovich indenter onto the material surface. These tests offer localized measurements of hardness and elastic modulus. Using two indenter geometries allows for a more systematic understanding of the material's mechanical properties across different scales and conditions, capturing both bulk and localized responses. Furthermore, the finite element (FE) simulations of the indentation tests are performed. The axisymmetric model is utilized to identify and optimize material parameters, while the 3D model is utilized to understand the detailed material behavior including localized stress and strain fields. The load-displacement predictions from the FE models are compared and matched with experimental results by adjusting the material parameters. The unified experimental and numerical approaches is executed to understand the alloy's mechanical response and capture the effects of AM-induced microstructural variations. This combined approach aids in understanding and optimizing the mechanical performance of superalloys produced through AM, supporting advancements in high-performance applications such as aerospace and energy sectors.
| Original language | English |
|---|---|
| Title of host publication | Smart Additive Manufacturing; Multi-Material Processing in AM; Advances in Metal AM Processes; In Situ Monitoring, Non-Destructive Evaluation, and Qualification for AM; Advances in Manufacturing and Processing of Polymers and Composites; Laser-Based Advanced Manufacturing and Material Processing; Smart, Innovative, and Low-Cost Tooling Systems for Advanced Materials Manufacturing; Bio-Manufacturing of Engineered Living Materials |
| ISBN (Electronic) | 9780791889015 |
| DOIs | |
| State | Published - 2025 |
| Event | ASME 2025 20th International Manufacturing Science and Engineering Conference, MSEC 2025 - Greenville, United States Duration: Jun 23 2025 → Jun 27 2025 |
Publication series
| Name | Proceedings of ASME 2025 20th International Manufacturing Science and Engineering Conference, MSEC 2025 |
|---|---|
| Volume | 1 |
Conference
| Conference | ASME 2025 20th International Manufacturing Science and Engineering Conference, MSEC 2025 |
|---|---|
| Country/Territory | United States |
| City | Greenville |
| Period | 6/23/25 → 6/27/25 |
Bibliographical note
Publisher Copyright:Copyright © 2025 by ASME.
Funding
The material is based upon work supported by NASA Kentucky EPSCoR under NASA award No: 1000200044. The authors would like to thank Dr. Christopher Kantzos and Dr. Cheryl Bowman for their help with sample preparation and material support.
| Funders | Funder number |
|---|---|
| Kentucky Space Grant Consortium | |
| National Aeronautics and Space Administration | 1000200044 |
UN SDGs
This output contributes to the following UN Sustainable Development Goals (SDGs)
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SDG 3 Good Health and Well-being
Keywords
- Additive Manufacturing. Nano Indentation
- Berkovich indenter
- IN718 alloy
ASJC Scopus subject areas
- Industrial and Manufacturing Engineering
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