张永健, 蔡伯清, 王旭, 王瑞祥, 石忠宁. LiF-CaF2-Yb2O3熔盐及Ni-Yb合金表面张力研究[J]. 有色金属科学与工程, 2023, 14(6): 802-807. DOI: 10.13264/j.cnki.ysjskx.2023.06.007
引用本文: 张永健, 蔡伯清, 王旭, 王瑞祥, 石忠宁. LiF-CaF2-Yb2O3熔盐及Ni-Yb合金表面张力研究[J]. 有色金属科学与工程, 2023, 14(6): 802-807. DOI: 10.13264/j.cnki.ysjskx.2023.06.007
ZHANG Yongjian, CAI Boqing, WANG Xu, WANG Ruixiang, SHI Zhongning. Investigation of the surface tension of LiF-CaF2-Yb2O3 molten salt and Ni-Yb alloy[J]. Nonferrous Metals Science and Engineering, 2023, 14(6): 802-807. DOI: 10.13264/j.cnki.ysjskx.2023.06.007
Citation: ZHANG Yongjian, CAI Boqing, WANG Xu, WANG Ruixiang, SHI Zhongning. Investigation of the surface tension of LiF-CaF2-Yb2O3 molten salt and Ni-Yb alloy[J]. Nonferrous Metals Science and Engineering, 2023, 14(6): 802-807. DOI: 10.13264/j.cnki.ysjskx.2023.06.007

LiF-CaF2-Yb2O3熔盐及Ni-Yb合金表面张力研究

Investigation of the surface tension of LiF-CaF2-Yb2O3 molten salt and Ni-Yb alloy

  • 摘要: LiF-CaF2-Yb2O3熔盐体系的表面张力是优化电解制备Ni-Yb合金的关键物理化学性质之一。本文采用拉筒法测定在1 173~1 523 K温度范围内LiF-CaF2-Yb2O3体系的表面张力,并分析其变化规律,估算Ni-Yb合金的表面张力值。结果表明:在1 173~1 573 K范围内,随着温度的升高,LiF-CaF2体系的表面张力呈线性降低;LiF-CaF2-Yb2O3体系表面张力随着温度的升高而降低;而随着Yb2O3浓度的增加,在1%~4%(质量分数)范围内,LiF-CaF2-Yb2O3体系的表面张力先增大后减小,在Yb2O3约为1% 时达到最高值;不同配比的熔融Yb-Ni合金表面张力随温度变化较小;当Yb含量为0~10%(摩尔分数)时,Ni-Yb合金的表面张力值较高,液态Ni-Yb合金易与LiF-YbF3-Yb2O3熔盐分离。

     

    Abstract: The surface tension of the LiF-CaF2-Yb2O3 molten salt system is one of the key physical and chemical properties to optimize the preparation of Ni-Yb alloys by electrolysis. In this paper, the surface tension of the LiF-CaF2-Yb2O3 system was measured by the pulling cylinder method in the temperature range of 1 173 K to 1 523 K, its changing laws were analyzed, and the surface tension of the Ni-Yb alloy was estimated. The results showed that the surface tension of the LiF-CaF2 system decreased linearly with the increase of temperature in the range of 1 173 K to 1 573 K. The surface tension of the LiF-CaF2-Yb2O3 system also decreased with the increase of temperature in the range of 1 173 K to 1 573 K, while the surface tension of the LiF-CaF2-Yb2O3 system increased at first and then decreased with the increase of Yb2O3 concentration in the range of 1% to 4% (mass fraction). The surface tension of the LiF-CaF2-Yb2O3 system reached the highest value when the content of Yb2O3 was about 1% (mass fraction) in the LiF-CaF2 system. The surface tension of the liquid Yb-Ni alloy changed little with different components and temperatures. When the content of Yb is in the range of 0 to 0.10% (mole fraction), the surface tension of the Ni-Yb alloy is higher, so liquid Ni-Yb alloy easily separates from LiF-YbF3-Yb2O3 molten salt.

     

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