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Meeting 2025 TMS Annual Meeting & Exhibition
Symposium Additive Manufacturing of Refractory Metallic Materials
Presentation Title Dense and Crack-Free Pure Tungsten Manufactured by Electron Beam Powder Bed Fusion Using Chemically Reduced Powder
Author(s) Arun Ramanathan Balachandramurthi, Ian Crawford, Gloria Graf, Ulf Ackelid, Ulric Ljungblad, Greta Lindwall
On-Site Speaker (Planned) Ian Crawford
Abstract Scope Tungsten is a candidate material for plasma facing components in fusion reactors owing to its properties such as high melting point, high thermal conductivity, low sputtering yield, resistance to hydrogen isotopes, etc. Due to the poor machinability of tungsten, there is an increasing interest to fabricate tungsten parts using additive manufacturing. However, tungsten built with laser beam powder bed fusion (PBF-LB) is prone to cracking. The deflection speed of the beam in electron beam powder bed fusion process (PBF-EB) is orders of magnitude higher than PBF-LB. Inertia-free high deflection speed of the electron beam facilitates unique scanning strategies enabling capabilities such as thermal management, microstructure tailoring, etc. In this study, we demonstrate manufacturing of fully dense and crack-free pure tungsten and explore innovative spot melting strategies. Process-microstructure-properties relationships for different e-beam scanning patterns with chemically reduced tungsten powder are investigated. Video material will be used for illustration.
Proceedings Inclusion? Planned:
Keywords Additive Manufacturing, Nuclear Materials, Characterization

OTHER PAPERS PLANNED FOR THIS SYMPOSIUM

A Comparison of Niobium Alloys C103 and Nb521
A New Angle to View the Battle with Oxygen in Molybdenum (Mo) Laser Powder Bed Fusion (LPBF)
Additive Manufacturing and High-Temperature Mechanical Behavior of High-Performance Refractory Alloys
Additive Manufacturing Informed Tantalum Alloy Development
Alloy Design and Microstructure-Property Relationships for Non-Equiatomic Ti-Zr-Nb-Ta-V-Cr Alloys with Tensile Ductility Made By Laser Powder Bed Fusion
Atomistic and Phase Field Simulations of Rapid Solidification Towards Refractory High Entropy Alloys
Computational Design of Graded Refractory Metal Structures
Custom Refractory Alloy Synthesis and Processing
Dense and Crack-Free Pure Tungsten Manufactured by Electron Beam Powder Bed Fusion Using Chemically Reduced Powder
Design and Development of a Reduced Cost, Hf-Free Nb-Based Alloy for Additive Manufacturing Guided by CALPHAD
Design and Development of a Refractory Complex Concentrated Alloy for Additive Manufacturing of Advancing Space Propulsion Components
Development of Molybdenum Alloys for Use with Powder Blown Laser Direct Energy Deposition Additive Manufacturing
Direct Energy Deposition of Tungsten by High Repetition High Power Femtosecond Laser
Directed Energy Deposition of Vanadium for Interlayers in Laser Welding
Effects of Oxygen Concentration in Ductile to Brittle Transition Temperature (DBTT) of Niobium C103 Fabricated via Laser Direct Energy Deposition.
Elevated Temperature Mechanical Performance of Historical Niobium Alloys
Elevated Temperature Testing of LP – DED C103 Thin Wall Structures
Enhanced Development of Tungsten Alloy Plasma Facing Materials
Exploring Fabrication Pathways, Phase Evolution and Structure-Property Relationships in High Temperature Functionally Graded Material
Hafnium-Based Refractory High Entropy Alloy Structures Produced Via Additive Manufacturing for Extreme Temperature Applications
High-Throughput Refractory Alloy Design for Additive Manufacturing
High Temperature Mechanical Properties of Laser Powder Bed Fusion Processed Nb-Based C103 Alloy
Hot-fire Testing of C103 Nozzle Extensions
Impact of Ceramic Nanoparticle Additions on the Properties of Additive Manufactured Refractory Metals
Impact of Multi-Scale Microstructural Heterogeneities on the Mechanical Behavior of Additively Manufactured and Post-Processed Nb-Based C103 Alloy
Impact of Stochastic Scanning Strategies in Electron Beam Powder Bed Fusion of Tungsten Alloys
Joining Niobium Refractory Alloy with Titanium Alloy in Direct Energy Deposition Additive Manufacturing Process
Laser Assisted Additive Manufacturing of W and W-Re for Fusion Power Application: Material Response in Manufacturing Environment
Laser Powder Bed Fusion of C103 and Refractory-Based Alloys - Material Development Using Ultrasonic Atomization
Microstructural Evolution and Mechanical Properties of Additively Manufactured W-Ta Alloys
Microstructural Evolution in Laser Powder Bed Fusion Processed W and W-Re
Process-Structure-Property Relationships of Additively Manufactured Refractory Metals
Prototype Elements Manufactured from Molybdenum and Tungsten Modified with Rhenium Using LPBF Technology
Reactive Synthesis in Additive Manufacturing of an Ultrahigh-Temperature Mo-Si-B-Ti Alloy
Solid State Additive Manufacturing of Refractory Alloys Using Cold Spray Technology
Thermo-Mechanical Testing Approach of Additive Manufactured Ultra-High Temperature Refractory Alloys
Thermomechanical Model Based Approach to Mitigate Crack Susceptibility in Additive Manufactured Refractory Material.
Uncovering the Ultra-High Temperature Deformation Mechanisms of Novel Refractory Alloys
Understanding the Elevated Temperature Properties of Niobium-Based Alloys Relevant to Aerospace Applications
WC-Based Functionally Graded Materials Fabricated by Laser Powder Directed Energy Deposition

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