研究目的
Investigating the influence of processing parameters on the microstructure and tensile property of 85W-15Ni produced by laser direct deposition.
研究成果
The research concludes that increasing the laser energy density improves the relative density and tensile property of 85W-15Ni samples up to a certain point. Beyond this point, excessive laser energy density leads to the formation of more W-W grain boundaries, which are detrimental to the tensile property. The optimal laser energy density for the best tensile properties was found to be 395 J/mm3.
研究不足
The study focuses on the influence of laser power and scanning speed on the microstructure and tensile property of 85W-15Ni produced by LDD. The research does not explore the effects of other processing parameters or the scalability of the process for industrial applications.
1:Experimental Design and Method Selection
Laser direct deposition (LDD) was utilized to produce plate-like shape 85W-15Ni parts with different processing parameters (laser power and scanning speed). The influence of these parameters and their corresponding laser energy density on the microstructural characterization, phase composition, and tensile property was investigated.
2:Sample Selection and Data Sources
Hydrogen-reduced irregular shaped W powder and gas-atomized near spherical Ni powder with particle size range of between 45 and 100 μm were used. The Ni powder was mixed with W powder at the mass ratio of 15 wt.% and then dried by heating in a vacuum oven at 60 °C for 4 hours.
3:List of Experimental Equipment and Materials
YASKAWA DX200 6-axis robot, YLR-1000 IPG fiber laser (λ=1070 nm) with a maximum output power of 1000 W, water-cooling system, automatic powder delivery system, Zeiss Axiovert 40 MAT optical microscope, Quanta 250F scanning electron microscope (SEM) equipped with energy dispersive X-ray spectroscopy (EDS), transmission electron microscope (TEM, Tecnai G2 20 LaB6), Bruker-AXS D8 Advance X-Ray Diffraction (XRD), UTM4000 stretch tester.
4:Experimental Procedures and Operational Workflow
The mixed powder was feed coaxially into the focal point of the laser at the rate of 14 g/min. Argon was used as the shielding gas at the flow rate of 9 L/min. The plate-like shape parts were prepared layer by layer by moving the laser head back and forth. The cross sections of samples were obtained by cutting, mechanically ground, and then electrochemically etched with 10 % oxalic acid solution at 20 V and 1 A for 8~10 s.
5:Data Analysis Methods
The microstructure and fracture surface of specimens were evaluated using optical microscope and SEM. The phase composition of samples was identified by XRD. The density was measured by the Archimedes water immersion method. The tensile tests were carried out on UTM4000 stretch tester at 0.5 mm/min stretching speed.
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Quanta 250F scanning electron microscope
Quanta 250F
FEI
Equipped with energy dispersive X-ray spectroscopy (EDS) for detailed microstructural analysis and elemental composition.
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Tecnai G2 20 LaB6 transmission electron microscope
Tecnai G2 20 LaB6
FEI
Used for further investigation of the microstructure of dendrite area.
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Bruker-AXS D8 Advance X-Ray Diffraction
D8 Advance
Bruker-AXS
Identifies the phase composition of samples.
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YLR-1000 IPG fiber laser
YLR-1000
IPG
Provides the high-energy laser beam required for melting and sintering the powder materials.
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Zeiss Axiovert 40 MAT optical microscope
Axiovert 40 MAT
Zeiss
Used to evaluate the microstructure of the specimens.
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YASKAWA DX200 6-axis robot
DX200
YASKAWA
Used for precise movement and positioning during the laser direct deposition process.
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UTM4000 stretch tester
UTM4000
Carries out tensile tests on the specimens.
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