基于FLiNaK的氟化物和氟氧化物熔融体系电导率研究

IF 0.3 Q4 METALLURGY & METALLURGICAL ENGINEERING Russian Metallurgy (Metally) Pub Date : 2025-01-23 DOI:10.1134/S0036029524701829
E. V. Nikolaeva, A. L. Bovet, I. D. Zakiryanova
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引用次数: 0

摘要

在480 ~ 777℃范围内测量了LiF-KF-NaF (FLiNaK)熔融体系的电导率。对氟化钠熔液的实验数据与含KF、NaF和LiF的单体、双、三元氟化液的实验数据进行了比较。由此得出的电导率与体系摩尔体积的关系表明,在867℃和Vm大于23 cm3/mol时,比电导率实际上与摩尔体积和熔融混合物组成无关。测定了氟化铈添加量为0 ~ 25mol %时,氟化铈熔融体系的电导率随氟化铈温度和浓度的变化。此外,还测量了Li2O添加量为2.3 mol %时0.85 FLiNaK-0.15CeF3-Li2O熔融体系的电导率。研究表明,氟化铈和氧化物的加入会降低氟化液体系的电导率。
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Electrical Conductivity of Fluoride and Oxyfluoride Molten Systems Based on FLiNaK

The electrical conductivity of LiF–KF–NaF (FLiNaK) molten system was measured in the temperature range 480–777°C. The comparison of the obtained experimental data on molten FLiNaK with the available data for individual, double and ternary fluoride melts containing KF, NaF and LiF was carried out. The resulting dependence of electrical conductivity on molar volume of the system demonstrates that at 867°C and Vm larger than 23 cm3/mol the specific electrical conductivity is practically independent on molar volume and respectively on the molten mixture composition. The electrical conductivity of FLiNaK–CeF3 molten systems with the cerium fluoride additions ranging from 0 to 25 mol % was measured depending on both the temperature and concentration of CeF3. In addition, the electrical conductivity of 0.85 FLiNaK–0.15CeF3–Li2O molten system with Li2O additions up to 2.3 mol % was measured. The investigation demonstrates that the addition of cerium fluoride and oxide results in a decrease of the electrical conductivity of the fluoride molten system.

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来源期刊
Russian Metallurgy (Metally)
Russian Metallurgy (Metally) METALLURGY & METALLURGICAL ENGINEERING-
CiteScore
0.70
自引率
25.00%
发文量
140
期刊介绍: Russian Metallurgy (Metally)  publishes results of original experimental and theoretical research in the form of reviews and regular articles devoted to topical problems of metallurgy, physical metallurgy, and treatment of ferrous, nonferrous, rare, and other metals and alloys, intermetallic compounds, and metallic composite materials. The journal focuses on physicochemical properties of metallurgical materials (ores, slags, matters, and melts of metals and alloys); physicochemical processes (thermodynamics and kinetics of pyrometallurgical, hydrometallurgical, electrochemical, and other processes); theoretical metallurgy; metal forming; thermoplastic and thermochemical treatment; computation and experimental determination of phase diagrams and thermokinetic diagrams; mechanisms and kinetics of phase transitions in metallic materials; relations between the chemical composition, phase and structural states of materials and their physicochemical and service properties; interaction between metallic materials and external media; and effects of radiation on these materials.
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