首页|选区激光熔化成形TiC/TC4复合材料的工艺参数与组织演变研究

选区激光熔化成形TiC/TC4复合材料的工艺参数与组织演变研究

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钛基复合材料具有高弹性模量、高比强度、高耐磨性和优异的高温耐久性等特点,在航空航天领域有良好的应用前景。采用低能球磨制备了纳米TiC颗粒与TC4的复合粉体,然后使用选区激光熔化(SLM)制备了 TiC/TC4钛基复合材料,分析了不同体能量密度(29~97 J/mm3)对复合材料成形质量、显微组织、显微硬度的影响,并总结了组织演变机理和TiC演变过程。结果表明,成形该复合材料的最佳体能量密度为50~70J/mm3,在该范围内试样的最高相对密度可达99。7%,显微硬度为385~392 HV。横截面上,显微组织的晶粒呈特殊的双尺寸分布,即由初生β等轴晶和沿其外围生长的不规则共晶区组成;纵截面上,显微组织呈鱼鳞状形貌分布且熔池内存在大量流纹状组织。复合材料中存在未溶TiC(主要分布于初生β晶界附近)、共晶TiC(主要呈链状网络分布于共晶β晶界)以及沉淀析出TiC(主要呈颗粒状分布于晶粒内)。随着体能量密度的增加,链状共晶TiC向棒状转变,晶内TiC尺寸长大。共晶TiC与β-Ti没有取向关系,共晶TiC、沉淀析出TiC与α'-Ti均存在明显取向关系,即{ 11-20}α'-Ti//{ 110}TiC。
Parameters and Microstructure Evolution of TiC/TC4 Composites Formed by Selective Laser Melting
Objective Titanium matrix composites have attracted considerable attention because of their high modulus of elasticity,high specific strength,high wear resistance,and excellent high-temperature durability.Most studies on titanium matrix composites(TMCs)focus primarily on the in-situ formed TiC reinforced composites.However,few studies have focused on the direct addition of TiC-reinforced titanium matrices.The manners in which the size,morphology,and distribution of TiC evolve during the SLM process and how they affect the microstructure and mechanical properties remain unclear.In this study,TiC/TC4 composites with directly added nanoscale TiC particles are successfully prepared by selective laser melting(SLM),and the microstructure evolution under different volume energy densities is investigated.Further,the TiC evolution during SLM and its influence on the microstructure and microhardness are analyzed.Thus,the findings of this study can provide the support for SLM preparation of titanium composites.Methods Herein,nanoscale TiC(diameter of 50-150 nm)and TC4 are selected as the reinforced phase and matrix,respectively.The composite powder with TiC uniformly embedded on the surface of the TC4 powder is obtained by low-energy ball milling.Subsequently,the TiC/TC4 composites are prepared via SLM with different volume energy densities(29-97 J/mm3).The forming quality and microstructures at different volume energy densities are observed using optical microscopy(OM)and scanning electron microscopy(SEM)equipped energy disperse spectroscope(EDS).The grain size and crystal orientation are investigated using electron backscattering diffractometer(EBSD),and the phase compositions are measured using X-ray diffraction(XRD).Finally,the microhardness is measured using a digital microhardness tester.Results and Discussions The optimized volume energy densities for the SLM formed TiC/TC4 composites are in the range of 50-70 J/mm3,with a relative density of 99.7%(Fig.3).Owing to the enrichment of TiC in the melt pool boundary zone,the microstructure of the composites exhibits a special double-sized grain distribution in the cross section(Fig.6).Owing to the rapid cooling characteristics of the SLM process,TiC cannot be sufficiently dissolved.Therefore,the SEM and EBSD results reveal three types of reinforcement:undissolved TiC,eutectic TiC,and precipitated TiC.Undissolved TiC is distributed primarily at the boundaries of coarse β equiaxed grains,eutectic TiC is distributed primarily in the boundaries of irregular eutectic β grains,and precipitated TiC is distributed primarily in the grains.With an increase in volume energy density,the chain-like eutectic TiC gradually transforms to rod-like eutectic TiC(Figs.7 and 8),the size of precipitated TiC inside the grain gradually increases,and the sizes of longitudinal and transverse a'-Ti gradually increase.Conclusions The optimal volume energy density for the formation of TiC/TC4 composites by SLM is 50-70/mm3,and the relative density is 99.7%within this parameter range.TiC is enriched in the melt-pool boundary region under a strong temperature gradient and Marangoni convection.The microstructure of the composite has a special double-size grain distribution in the cross section,consisting of primary β equiaxed grains and irregular eutectic regions growing on the periphery.In the longitudinal section,the molten pool is a fish scale,and some chain structures exist in the molten pool that grow from the direction of heat flow to the horizontal direction.With an increase in volume energy density,the size of primary β equiaxed grains decreases,outer-ring irregular eutectic region expands,and morphology of fish scales becomes sharp.The microhardness initially decreases and then increases,essentially reaching 385-392 HV in the optimal molding process window.TiC in the composites is composed primarily of undissolved TiC(distributed near the primary β grain boundaries),eutectic TiC(distributed in the eutectic β grain boundaries in a chain or rod-like network),and precipitated TiC(distributed in the grain in a granular manner).With an increase in volume energy density,the difference in TiC size and quantity inside and outside the molten pool increases,chain distribution of eutectic TiC changes to rod,and the size of TiC in the grains increases.Further,no obvious orientation relationship between eutectic TiC and β-Ti is observed;however,a distinct orientation relationship between eutectic and in-grain TiC and α'-Ti exists:{11-20} α'-Ti//{110}TiC.

laser techniquetitanium matrix compositesselective laser meltingmicrostructure evolutionTiC evolution

黄宏康、罗霞、戴玉宏、何鑫、刘允中、黄本生、范舟

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西南石油大学新能源与材料学院,四川成都 610500

成都新杉宇航科技有限公司,四川成都 610500

华南理工大学国家金属材料近净成形工程技术研究中心,广东 广州 510640

激光技术 钛基复合材料 选区激光熔化 显微组织演变 TiC演变

广东省重点领域研发计划项目四川省重点研发计划项目

2019B0909070012020YFH0151

2024

中国激光
中国光学学会 中科院上海光机所

中国激光

CSTPCD北大核心
影响因子:2.204
ISSN:0258-7025
年,卷(期):2024.51(16)