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Acta Metall Sin  2021, Vol. 57 Issue (1): 103-110    DOI: 10.11900/0412.1961.2020.00158
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Effect of Micro-Alloying Element La on Solidification Microstructure and Mechanical Properties of Hypoeutectic Al-Si Alloys
ZHENG Qiuju1,2, YE Zhongfei3, JIANG Hongxiang1, LU Ming3, ZHANG Lili1, ZHAO Jiuzhou1,2()
1.Institute of Metal Research, Chinese Academy of Sciences, Shenyang 110016, China
2.School of Materials Science and Engineering, University of Science and Technology of China, Shenyang 110016, China
3.Electric Power Research Institute of State Grid Henan Electric Power Company, Zhengzhou 450052, China
Cite this article: 

ZHENG Qiuju, YE Zhongfei, JIANG Hongxiang, LU Ming, ZHANG Lili, ZHAO Jiuzhou. Effect of Micro-Alloying Element La on Solidification Microstructure and Mechanical Properties of Hypoeutectic Al-Si Alloys. Acta Metall Sin, 2021, 57(1): 103-110.

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Abstract  

Hypoeutectic Al-Si alloys are extensively used in the welding industry owing to their excellent cast-ability, low coefficient of thermal expansion, and good weldability. Unfortunately, Al-Si alloys solidify under conventional cooling conditions, forming coarse dendritic α-Al grains with an eutectic structure and a flake-like morphology that has poor mechanical properties. Chemical inoculations are often used to control the size of α-Al grains and the morphology of the eutectic Si particles. The grain refiner Al-Ti-B master alloy and eutectic Si modifier Sr are commonly used in industry. In recent years, great attention has been paid to controlling the microstructure and mechanical properties of hypoeutectic Al-Si alloys through the use of the cost-effective rare earth element La. Previous studies have mainly focused on the effects of La addition on the microstructural evolution and improvements of the mechanical properties. However, to date there have been no studies on the effects of combined addition of La, Al-Ti-B master alloy and Sr on the microstructure and mechanical properties of Al-Si alloys. In this work, solidification experiments were performed to investigate the effects of the micro-alloying element La, Al-Ti-B master alloy, and Sr on the solidification microstructure and mechanical properties of hypoeutectic Al-Si alloys. These results show that synergistic effects are achieved by combinations of La, Al-Ti-B master alloy, and Sr. An addition of 0.06%La was sufficient for effective α-Al grain refinement, eutectic Si particle modification, and improved the ductility of the alloys. Excess La addition formed a coarse LaAlSi intermetallic compound, which deteriorated the ductility of the alloy. The micro-alloying element La refined the α-Al grains by acting as a surfactant that decreased the wetting angle between the TiB2 nucleation substrate and the α-Al nucleus. It modified the eutectic Si particles by promoting the formation of the multiple Si twins and changing the growth behaviors of the Si particles.

Key words:  Al-Si alloy      micro-alloying element La      solidification microstructure      mechanical property     
Received:  12 May 2020     
ZTFLH:  TG113.12  
Fund: National Natural Science Foundation of China(51771210);Science and Technology Project of the Headquarters of Sate Grid Company of China(5500-201924129A-0-0-00)

URL: 

https://www.ams.org.cn/EN/10.11900/0412.1961.2020.00158     OR     https://www.ams.org.cn/EN/Y2021/V57/I1/103

Fig.1  OM images of Al-6Si alloys with La additions of 0 (a), 0.02% (b), 0.06% (c), and 0.10% (d)
Fig.2  Average grain size (<Dα-Al>) of Al-6Si alloys with different additive amounts of La
Fig.3  Low (a, c) and high (b, d) magnified SEM images of Al-6Si alloys without La (a, b) and with addition of 0.06%La (c, d)
Fig.4  TEM bright-field images (a, b) of eutectic Si particle and their SAED patterns (c, d) in the zone axis of [011]Si in the Al-6Si alloys without La (a, c) and with addition of 0.06%La (b, d)
Fig.5  Backscattered electron image (BEI) and EPMA mappings of the eutectic Si and La-rich phase particles in the Al-6Si alloy with 0.10%La addition
Fig.6  TEM bright-field image and EDS result (a), and SAED pattern in the zone axis of [100] (b) for the LaAlSi phase in the Al-6Si alloy with 0.10%La addition
Fig.7  Differential thermal analysis (DTA) cooling curves for the Al-6Si alloys with different additive amounts of La (a), and the change of the nucleation undercooling for the α-Al (ΔTα-Al) and the eutectic Si (ΔTSi) with different additive amounts of La (b)
Fig.8  Tensile properties of Al-6Si alloys with different additive amounts of La (YS—yield strength, UTS—ultimate tensile strength, El—elongation)
ElementAlSiLaSrTiB
Al------
Si-19-----
La-38-73----
Sr-18-4914---
Ti-30-662053--
B0-14-47-18-58-
Table 1  The enthalpy of mixing between various elements[23]
1 Zhao Z H, Xu Z, Wang G S, et al. Microstructure and property of welding joint weld with micro-Alloying 4043 welding wire [J]. Acta Metall. Sin., 2013, 49: 946
赵志浩, 徐 振, 王高松等. 微合金化4043铝合金焊丝焊接接头的组织与性能 [J]. 金属学报, 2013, 49: 946
2 Hegde S, Prabhu K N. Modification of eutectic silicon in Al-Si alloys [J]. J. Mater. Sci., 2008, 43: 3009
3 Guan R G, Tie D. A review on grain refinement of aluminum alloys: Progresses, challenges and prospects [J]. Acta Metall. Sin. (Engl. Lett.), 2017, 30: 409
4 Hosch T, Napolitano R E. The effect of the flake to fiber transition in silicon morphology on the tensile properties of Al-Si eutectic alloys [J]. Mater. Sci. Eng., 2010, A528: 226
5 Chen Z N, Kang H J, Fan G H, et al. Grain refinement of hypoeutectic Al-Si alloys with B [J]. Acta Mater., 2016, 120: 168
6 Timpel M, Wanderka N, Schlesiger R, et al. The role of strontium in modifying aluminium-silicon alloys [J]. Acta Mater., 2012, 60: 3920
7 Bolzoni L, Xia M X, Babu N H. Formation of equiaxed crystal structures in directionally solidified Al-Si alloys using Nb-based heterogeneous nuclei [J]. Sci. Rep., 2016, 6: 39554
8 Triveño Rios C, Peres M M, Bolfarini C, et al. Microstructure and mechanical properties of Al-Si-Mg ribbons [J]. J. Alloys Compd., 2010, 495: 386
9 Dang B, Zhang X, Chen Y Z, et al. Breaking through the strength-ductility trade-off dilemma in an Al-Si-based casting alloy [J]. Sci. Rep., 2016, 6: 30874
10 Zhang Z T, Li J, Yue H Y, et al. Microstructure evolution of A356 alloy under compound field [J]. J. Alloys Compd., 2009, 484: 458
11 Wang J Y, Wang B J, Huang L F. Structural evolution of Al-8%Si hypoeutectic alloy by ultrasonic processing [J]. J. Mater. Sci. Technol., 2017, 33: 1235
12 Liu Z, Xu L N, Yu Z F, et al. Research on the morphology and fractaldimension of primary phase in semisolid A356-La aluminum alloy by electro-magnetic stirring [J]. Acta Metall. Sin., 2016, 52: 698
刘 政, 徐丽娜, 余昭福等. 电磁场作用下半固态A356-La铝合金初生相形貌及分形维数的研究 [J]. 金属学报, 2016, 52: 698
13 Lu L, Dahle A K. Effects of combined additions of Sr and AlTiB grain refiners in hypoeutectic Al-Si foundry alloys [J]. Mater. Sci. Eng., 2006, A435-436: 288
14 Tan P, Yang Y, Sui Y D, et al. The influence of Al-10Sr or/ and Al-5Ti-1B on microstructure and mechanical properties of Al-12Si-4Cu-2Ni-0.8 Mg alloys [J]. J. Alloys Compd., 2019, 809: 151856
15 Timelli G, Caliari D, Rakhmonov J. Influence of process parameters and Sr addition on the microstructure and casting defects of LPDC A356 alloy for engine blocks [J]. J. Mater. Sci. Technol., 2016, 32: 515
16 Kairy S K, Rouxel B, Dumbre J, et al. Simultaneous improvement in corrosion resistance and hardness of a model 2xxx series Al-Cu alloy with the microstructural variation caused by Sc and Zr additions [J]. Corros. Sci., 2019, 158: 108095
17 Li J H, Wang X D, Ludwig T H, et al. Modification of eutectic Si in Al-Si alloys with Eu addition [J]. Acta Mater., 2015, 84: 153
18 Tsai Y C, Chou C Y, Lee S L, et al. Effect of trace La addition on the microstructures and mechanical properties of A356 (Al-7Si-0.35Mg) aluminum alloys [J]. J. Alloys Compd., 2009, 487: 157
19 Zheng Q J, Zhang L L, Jiang H X, et al. Effect mechanisms of micro-alloying element La on microstructure and mechanical properties of hypoeutectic Al-Si alloys [J]. J. Mater. Sci. Technol., 2020, 47: 142
20 Pourbahari B, Emamy M. Effects of La intermetallics on the structure and tensile properties of thin section gravity die-cast A357 Al alloy [J]. Mater. Des., 2016, 94: 111
21 Quested T E, Dinsdale A T, Greer A L. Thermodynamic modelling of growth-restriction effects in aluminium alloys [J]. Acta Mater., 2005, 53: 1323
22 Quested T E, Greer A L. Grain refinement of Al alloys: Mechanisms determining as-cast grain size in directional solidification [J]. Acta Mater., 2005, 53: 4643
23 Takeuchi A, Inoue A. Classification of bulk metallic glasses by atomic size difference, heat of mixing and period of constituent elements and its application to characterization of the main alloying element [J]. Mater. Trans, 2005, 46: 2817
24 Zhou S H, Napolitano R E. Phase equilibria and thermodynamic limits for partitionless crystallization in the Al-La binary system [J]. Acta Mater., 2006, 54: 831
25 Li S B, Du W B, Wang X D, et al. Effect of Zr addition on the grain refinement mechanism of Mg-Gd-Er alloys [J]. Acta Metall. Sin., 2018, 54: 911
李淑波, 杜文博, 王旭东等. Zr对Mg-Gd-Er合金晶粒细化机理的影响 [J]. 金属学报, 2018, 54: 911
26 Barrirero J, Pauly C, Engstler M, et al. Eutectic modification by ternary compound cluster formation in Al-Si alloys [J]. Sci. Rep., 2019, 9: 5506
27 Lu S Z, Hellawell A. The mechanism of silicon modification in aluminum-silicon alloys: Impurity induced twinning [J]. Metall. Trans., 1987, 18A: 1721
28 Sui Y D, Wang Q D, Wang G L, et al. Effects of Sr content on the microstructure and mechanical properties of cast Al-12Si-4Cu-2Ni-0.8Mg alloys [J]. J. Alloys Compd., 2015, 622: 572
29 Rao J S, Zhang J, Liu R X, et al. Modification of eutectic Si and the microstructure in an Al-7Si alloy with barium addition [J]. Mater. Sci. Eng., 2018, A728: 72
30 Samuel E, Golbahar B, Samuel A M, et al. Effect of grain refiner on the tensile and impact properties of Al-Si-Mg cast alloys [J]. Mater. Des., 2014, 56: 468
31 Ma S M, Wang X M. Mechanical properties and fracture of in-situ Al3Ti particulate reinforced A356 composites [J]. Mater. Sci. Eng., 2019, A754: 46
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