首页|高压凝固原位自生Al2O3/Al复合材料微观组织与热膨胀性能研究

高压凝固原位自生Al2O3/Al复合材料微观组织与热膨胀性能研究

扫码查看
Al2O3颗粒增强铝基复合材料具有众多优异性能,使其成为汽车轻量化和电子封装等行业的首选材料。但随着Al2O3体积分数的增加,复合材料强度和硬度提升而塑韧性明显降低。主要是因为Al2O3强化相润湿性差而发生团聚现象。在Al-12Si粉末中添加不同含量的Fe2O3(1%与3%)粉末制坯。采用高压凝固(0。02,2。5和3 GPa)将坯料烧结。复合材料中Fe2O3与Al发生置换反应制得纳米级Al2O3颗粒。结果表明:复合材料由α-Al,β-Si,Fe2O3和新生成的Al2O3衍射峰组成,呈现"网状晶界+块状硅+基体"形貌。通过对"网状晶界"分析,发现网状晶界是由纳米级的Al2O3颗粒、部分未参与反应的Fe2O3以及反应生成的Fe相组成。在XRD图谱中无Fe相衍射峰是由于生成的Fe相含量较少并且其在Al中有一定的固溶度。另外,凝固的压力越高网状晶界越密集,Fe2O3含量越高网状晶界越明显。对比复合材料热膨胀系数第一次与第二次加热结果发现。第一次加热时,由于高压固溶的硅析出热膨胀系数(CTE)曲线有峰值出现。另外,由于Fe2O3自身的CTE值也较铝合金的小,加入Fe2O3含量高的材料的热膨胀系数反而较小。在第二次加热时,由于第一次加热后缓慢冷却,所以均无热膨胀系数峰值出现。并且第二次加热最大热膨胀系数值较第一次降低75%。
Microstructure on Thermal Expansion Coefficient of In-Situ Al2O3/Al Compos-ites by High Pressure Solidification
Al2O3 particle reinforced aluminum matrix composites exhibit excellent properties,such as high strength,high hardness,wear resistance and low coefficient of thermal expansion,making them the preferred material in aerospace,automotive light weight and electronic packaging industries.In the production,with the increase of Al2O3 volume in the matrix,the strength and hardness of the composites were increased,while the plastic toughness was decreased.The main reason was that the wettability of Al2O3 strengthen-ing phase is poor,which leads to agglomeration when entering the matrix.In this paper,the nanometer Al2O3 particle reinforced Al ma-trix composites were prepared by in-situ high-pressure solidification(0.02,2.5 and 3 GPa)to refine Al2O3 particles and make them distribute.In these composites,Al2O3 particles were produced in-situ by the substitution reactions of Fe2O3 and Al.Compared with Al matrix composites which were directly added Al2O3 particles,the composites of in-situ Al2O3 particle possessed the characteristics of excellent interface bonding,good compatibility and nano-sized particles.Then the microstructure of the composites was analyzed by scanning electron microscope(SEM),X-ray diffraction(XRD)and energy dispersive spectrometer(EDS),and the effects of micro-structure on density and thermal expansion of the composites were discussed.The results showed that Fe2O3/Al-12Si composites were composed of α-Al,β-Si,Fe2O3 and new product Al2O3.The microstructure showed that the composites were mainly composed of"nano network grain boundary+bulk silicon+matrix".Through EDS analysis of the"network grain boundary",it was found that the network grain boundary was composed of nano-sized Al2O3 particles,some Fe2O3 particles were not involved in the reaction and Fe phase pro-duced by the reaction.The non-Fe diffraction peak in XRD was due to the low content of Fe phase produced and a certain solid solubili-ty in Al.Additionally,with the increase of the pressure,the network boundaries became denser,and the higher Fe2O3 content was,the more obvious the network grain boundaries were.In summary,the solidification process could be briefly described as follows:when the sample was heated under high pressure,and the melting point of Al was low beginning to melt and the reaction of Fe2O3 in contact with the surrounding was accelerated.However,the displacement of atoms was limited under extremely high pressure,and Fe2O3 could not be supplemented in time.On the other hand,the product of Al2O3 at the melt front increased the resistance at the melt front.The final Al2O3 ceramic phase and some unreacted Fe2O3 were distributed at grain boundaries.Al2O3 phase and part of Fe2O3 that did not participate in the reaction were distributed at the grain boundary.The coefficient of thermal expansion(CTE)of Fe2O3/Al-1 2Si composites in the first heating process was different from that in the second heating process.During the first heating,the CTE of the Fe2O3/Al-12Si composites could be divided into three regions according to the temperature and the peak appears.The peak value was caused by the precipitation of solid solution Si in the matrix during heating.In addition,because CTE value of Fe2O3 was also smaller than that of Al alloy,CTE value of composites with l%Fe2O,content was 33.84×10-6 K-1 at 740 K,which was higher than that of the composites with 3%Fe2O3 content of 32.83×10-6 K-1.During the second heating,no peak of the coefficient of thermal expansion oc-curred due to the slow cooling after the first heating,and the maximum thermal expansion coefficient of the second heating was 75%lower than that of the first heating.

high pressure solidificationin-situ Al2O3 particlesmicrostructurecoefficient of thermal expansion(CTE)

陈志鹏、朱冬冬、王刚、董多、王晓红

展开 >

安徽工程大学材料科学与工程学院安徽省高性能有色金属重点实验室,安徽芜湖 241000

衢州学院机械工程学院,浙江衢州 324000

高压凝固 原位自生Al2O3颗粒 微观组织 热膨胀系数(CTE)

国家自然科学基金项目国家自然科学基金项目国家自然科学基金项目安徽省自然科学基金项目浙江省自然科学基金项目安徽省人才工程基金项目

5180111251704001520711882008085J23LQ20E010003Z17550020001

2024

稀有金属
北京有色金属研究总院

稀有金属

CSTPCD北大核心
影响因子:1.483
ISSN:0258-7076
年,卷(期):2024.48(4)
  • 28