Effects of Environmental Oxygen Content and Dissolved Oxygen on the Surface Tension and Viscosity of Liquid Nickel

The NASA Marshall Space Flight Center’s electrostatic levitation (ESL) laboratory has recently added an oxygen partial pressure controller. This system allows the oxygen partial pressure within the vacuum chamber to be measured and controlled in the range from approximately 10 - 28 to 10 - 9 bar, wh...

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Veröffentlicht in:International journal of thermophysics 2016-07, Vol.37 (7), p.1-11, Article 76
Hauptverfasser: SanSoucie, M. P., Rogers, J. R., Kumar, V., Rodriguez, J., Xiao, X., Matson, D. M.
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container_end_page 11
container_issue 7
container_start_page 1
container_title International journal of thermophysics
container_volume 37
creator SanSoucie, M. P.
Rogers, J. R.
Kumar, V.
Rodriguez, J.
Xiao, X.
Matson, D. M.
description The NASA Marshall Space Flight Center’s electrostatic levitation (ESL) laboratory has recently added an oxygen partial pressure controller. This system allows the oxygen partial pressure within the vacuum chamber to be measured and controlled in the range from approximately 10 - 28 to 10 - 9 bar, while in a vacuum atmosphere. The oxygen control system installed in the ESL laboratory’s main chamber consists of an oxygen sensor, oxygen pump, and a control unit. The sensor is a potentiometric device that determines the difference in oxygen activity in two gas compartments (inside the chamber and the air outside of the chamber) separated by an electrolyte. The pump utilizes coulometric titration to either add or remove oxygen. The system is controlled by a desktop control unit, which can also be accessed via a computer. The controller performs temperature control for the sensor and pump, has a PID-based current loop and a control algorithm. Oxygen partial pressure has been shown to play a significant role in the surface tension of liquid metals. Oxide films or dissolved oxygen may lead to significant changes in surface tension. The effects on surface tension and viscosity by oxygen partial pressure in the surrounding environment and the melt dissolved oxygen content will be evaluated, and the results will be presented. The surface tension and viscosity will be measured at several different oxygen partial pressures while the sample is undercooled. Surface tension and viscosity will be measured using the oscillating droplet method.
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M.</au><format>journal</format><genre>article</genre><ristype>JOUR</ristype><atitle>Effects of Environmental Oxygen Content and Dissolved Oxygen on the Surface Tension and Viscosity of Liquid Nickel</atitle><jtitle>International journal of thermophysics</jtitle><stitle>Int J Thermophys</stitle><date>2016-07-01</date><risdate>2016</risdate><volume>37</volume><issue>7</issue><spage>1</spage><epage>11</epage><pages>1-11</pages><artnum>76</artnum><issn>0195-928X</issn><eissn>1572-9567</eissn><abstract>The NASA Marshall Space Flight Center’s electrostatic levitation (ESL) laboratory has recently added an oxygen partial pressure controller. This system allows the oxygen partial pressure within the vacuum chamber to be measured and controlled in the range from approximately 10 - 28 to 10 - 9 bar, while in a vacuum atmosphere. The oxygen control system installed in the ESL laboratory’s main chamber consists of an oxygen sensor, oxygen pump, and a control unit. 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subjects 19th Symposium of Thermophysical Properties
Classical Mechanics
Condensed Matter Physics
Control systems
Droplets
Industrial Chemistry/Chemical Engineering
Oxygen
Partial pressure
Physical Chemistry
Physics
Physics and Astronomy
Surface tension
The 19th Symposium on Thermophysical Properties
Vacuum chambers
Viscosity
title Effects of Environmental Oxygen Content and Dissolved Oxygen on the Surface Tension and Viscosity of Liquid Nickel
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