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Impact of Conventional and Laser-Assisted Machining on the Microstructure and Mechanical Properties of Ti-Nb-Cr-V-Ni High-Entropy Alloy Fabricated with Directed Energy Deposition
by
Jung, Dong-Won
, Lee, Jeung-Hoon
, Jeong, Ho-In
, Lee, Choon-Man
, Salem, Osama
in
3D printing
/ Additive manufacturing
/ Alloy development
/ Alloys
/ Analysis
/ Chemical composition
/ Composite materials
/ Cooling
/ Cooling rate
/ Cutting force
/ Deposition
/ Directed Energy Deposition
/ Efficiency
/ Entropy
/ Heat conductivity
/ Heat resistance
/ High entropy alloys
/ High temperature
/ high-entropy alloy
/ Intermetallic compounds
/ laser-assisted machining
/ Lasers
/ Machining
/ Mechanical properties
/ Microstructure
/ Nickel
/ Nickel alloys
/ Niobium
/ post-processing
/ Ratios
/ Softening
/ Solid phases
/ Solid solutions
/ Solidification
/ Specialty metals industry
/ Temperature
/ Tensile strength
/ Thermal conductivity
/ Titanium
/ Vanadium
2024
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Impact of Conventional and Laser-Assisted Machining on the Microstructure and Mechanical Properties of Ti-Nb-Cr-V-Ni High-Entropy Alloy Fabricated with Directed Energy Deposition
by
Jung, Dong-Won
, Lee, Jeung-Hoon
, Jeong, Ho-In
, Lee, Choon-Man
, Salem, Osama
in
3D printing
/ Additive manufacturing
/ Alloy development
/ Alloys
/ Analysis
/ Chemical composition
/ Composite materials
/ Cooling
/ Cooling rate
/ Cutting force
/ Deposition
/ Directed Energy Deposition
/ Efficiency
/ Entropy
/ Heat conductivity
/ Heat resistance
/ High entropy alloys
/ High temperature
/ high-entropy alloy
/ Intermetallic compounds
/ laser-assisted machining
/ Lasers
/ Machining
/ Mechanical properties
/ Microstructure
/ Nickel
/ Nickel alloys
/ Niobium
/ post-processing
/ Ratios
/ Softening
/ Solid phases
/ Solid solutions
/ Solidification
/ Specialty metals industry
/ Temperature
/ Tensile strength
/ Thermal conductivity
/ Titanium
/ Vanadium
2024
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Impact of Conventional and Laser-Assisted Machining on the Microstructure and Mechanical Properties of Ti-Nb-Cr-V-Ni High-Entropy Alloy Fabricated with Directed Energy Deposition
by
Jung, Dong-Won
, Lee, Jeung-Hoon
, Jeong, Ho-In
, Lee, Choon-Man
, Salem, Osama
in
3D printing
/ Additive manufacturing
/ Alloy development
/ Alloys
/ Analysis
/ Chemical composition
/ Composite materials
/ Cooling
/ Cooling rate
/ Cutting force
/ Deposition
/ Directed Energy Deposition
/ Efficiency
/ Entropy
/ Heat conductivity
/ Heat resistance
/ High entropy alloys
/ High temperature
/ high-entropy alloy
/ Intermetallic compounds
/ laser-assisted machining
/ Lasers
/ Machining
/ Mechanical properties
/ Microstructure
/ Nickel
/ Nickel alloys
/ Niobium
/ post-processing
/ Ratios
/ Softening
/ Solid phases
/ Solid solutions
/ Solidification
/ Specialty metals industry
/ Temperature
/ Tensile strength
/ Thermal conductivity
/ Titanium
/ Vanadium
2024
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Impact of Conventional and Laser-Assisted Machining on the Microstructure and Mechanical Properties of Ti-Nb-Cr-V-Ni High-Entropy Alloy Fabricated with Directed Energy Deposition
Journal Article
Impact of Conventional and Laser-Assisted Machining on the Microstructure and Mechanical Properties of Ti-Nb-Cr-V-Ni High-Entropy Alloy Fabricated with Directed Energy Deposition
2024
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Overview
The high-entropy alloy (HEA) has recently attracted significant interest due to its novel alloy design concept and exceptional mechanical properties, which may exhibit either a single or multi-phase structure. Specifically, refractory high-entropy alloys (RHEA) composed of titanium, niobium, and nickel-based HEA demonstrate remarkable mechanical properties at elevated temperatures. Additive manufacturing (AM), specifically Direct Energy Deposition (DED), is efficient in fabricating high-entropy alloys (HEA) owing to its fast-cooling rates, which promote uniform microstructures and reduce defects. This study involved the fabrication of the Ti33Nb28Cr11V11Ni17 (Ti-Nb-Cr-V-Ni) RHEA utilizing DED. Additionally, the post-processing of the fabricated alloy is conducted using conventional machining (CM) and laser-assisted machining (LAM). The results indicate thermal conductivity and specific heat increased, whereas tensile strength reduced with rising temperature. Significant softening was observed above 800 °C, resulting in a considerable decrease in tensile strength. Furthermore, the LAM caused material softening and reduced the cutting force by 60.0% relative to CM. Furthermore, the chemical composition of Ti-Nb-Cr-V-Ni remained unaffected even after post-processing with CM and LAM. The research indicates that post-processing with LAM is essential for developing resilient RHEA for practical use.
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