研究目的
Investigating the effects of forming parameters on the microstructure and mechanical properties of 316L stainless steel parts fabricated by selective laser melting.
研究成果
The study concluded that the angle with the xz plane has a significant effect on the experiment indexes, with the layer thickness having the greatest effect. The optimal forming parameters were identified, and the errors between predicted and actual values were within a reasonable range. The microstructure of the formed parts showed directional solidification, and the fracture was identified as a ductile fracture. The hardness near the fracture was higher than that of the substrate, and the indexes regarding the selective laser melting parts were higher than the ASTM-A182 and ASTM-F3184-16 standards.
研究不足
The study focuses on the effects of forming parameters on the microstructure and mechanical properties of 316L stainless steel parts fabricated by selective laser melting. The limitations include the specific range of parameters tested and the focus on 316L stainless steel, which may not be applicable to other materials or beyond the tested parameter ranges.
1:Experimental Design and Method Selection:
The study used the response surface method to investigate the influence of multiple factors on indicators based on both mathematics and statistics. The least square method was used to obtain the regression equation by second-order polynomial fitting.
2:Sample Selection and Data Sources:
316L stainless steel powder was selected for the experiment. Tensile parts with various forming angles were prepared by selective laser melting for the test of density, surface roughness, and mechanical properties.
3:List of Experimental Equipment and Materials:
The D280 AM machine, WD-E stretching tester, KERN analytical balance ABJ 320-4NM, TIME3220T roughness meter, MQX1200-40 atmosphere box furnace, XQ-1 metallographic specimen mounting press, YMPZ-1 automatic metallographic specimen grinding and polishing machine, EVO18 ZEISS scanning electron microscope, and SmartLab (9) X-ray diffractometer (XRD) were used.
4:Experimental Procedures and Operational Workflow:
The experiment involved forming parts with various angles, measuring their density, surface roughness, and mechanical properties, and analyzing their microstructure and fracture morphology.
5:Data Analysis Methods:
The data were treated using multivariate regression fitting to obtain the regression equations of the response surface roughness, density, tensile strength, and elongation.
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EVO18 ZEISS scanning electron microscope
EVO18
ZEISS
Microstructure observation
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D280 AM machine
D280
Guangzhou Riton Laser Co., Ltd.
Forming parts with selective laser melting technique
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WD-E stretching tester
WD-E
Tensile test
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KERN analytical balance
ABJ 320-4NM
KERN
Quality measurement
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TIME3220T roughness meter
TIME3220T
Detecting surface roughness
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MQX1200-40 atmosphere box furnace
MQX1200-40
Heat treatment
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XQ-1 metallographic specimen mounting press
XQ-1
Metallographic preparation
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YMPZ-1 automatic metallographic specimen grinding and polishing machine
YMPZ-1
Metallographic preparation
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SmartLab (9) X-ray diffractometer
SmartLab (9)
Phase analysis
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