电磁悬浮测量液体Ti-V体系的密度、摩尔体积和表面张力的实验研究

IF 1.1 4区 工程技术 Q4 Engineering High Temperatures-high Pressures Pub Date : 2023-01-01 DOI:10.32908/hthp.v52.1355
B. Reiplinger, Y. Plevachuk, J. Brillo
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引用次数: 0

摘要

总结了液体Ti-V体系在电磁悬浮中密度、摩尔体积和表面张力的系统实验数据。采用光学膨胀法和振荡滴法研究了温度和成分的依赖关系。在所有被研究的成分中,密度和表面张力随温度的升高呈线性下降。纯钒的密度和表面张力最高,纯钛的密度和表面张力最低。因此,密度和表面张力随钛含量的增加而降低,但不是线性的。由于没有多余的数量,可以采用简单的模型来涵盖整个液体Ti-V系统。给出了实验数据和相应的线性拟合。
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Experimental study of density, molar volume and surface tension of the liquid Ti-V system measured in electromagnetic levitation
Systematical experimental data on density, molar volume and the surface tension, measured in electromagnetic levitation, has been summarized for the liquid Ti-V system. The optical dilatometry method as well as the oscillating drop technique have been employed to investigate the temperature- and compositional dependence. A linear decrease in density and surface tension with increasing temperature has been observed for all investigated compositions. Pure Vanadium shows hereby the highest density and surface tension while pure titanium shows the lowest density and surface tension respectively. Therefore, the density and surface tension decrease with increasing titanium content, however not linear. Since no excess quantities were available, simple models could be employed to cover the complete liquid Ti-V system. Experimental data as well as the corresponding linear fits are presented.
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来源期刊
High Temperatures-high Pressures
High Temperatures-high Pressures THERMODYNAMICS-MECHANICS
CiteScore
1.00
自引率
9.10%
发文量
6
期刊介绍: High Temperatures – High Pressures (HTHP) is an international journal publishing original peer-reviewed papers devoted to experimental and theoretical studies on thermophysical properties of matter, as well as experimental and modelling solutions for applications where control of thermophysical properties is critical, e.g. additive manufacturing. These studies deal with thermodynamic, thermal, and mechanical behaviour of materials, including transport and radiative properties. The journal provides a platform for disseminating knowledge of thermophysical properties, their measurement, their applications, equipment and techniques. HTHP covers the thermophysical properties of gases, liquids, and solids at all temperatures and under all physical conditions, with special emphasis on matter and applications under extreme conditions, e.g. high temperatures and high pressures. Additionally, HTHP publishes authoritative reviews of advances in thermophysics research, critical compilations of existing data, new technology, and industrial applications, plus book reviews.
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