scholarly journals The prediction of helium gas viscosity under high pressure and high temperature with the Chapman-Enskog solution and excess viscosity

2017 ◽  
Vol 799 ◽  
pp. 012008
Author(s):  
Elin Yusibani ◽  
Yasuyuki Takata ◽  
Zaki Suud ◽  
Dwi Irwanto
Netsu Bussei ◽  
2010 ◽  
Vol 24 (1) ◽  
pp. 21-27 ◽  
Author(s):  
Elin YUSIBANI ◽  
Peter L. WOODFIELD ◽  
Kanei SHINZATO ◽  
M. KOHNO ◽  
Yasuyuki TAKATA ◽  
...  

2014 ◽  
Vol 2014 ◽  
pp. 1-7 ◽  
Author(s):  
Beibei Feng ◽  
Shiming Wang ◽  
Shengqiang Li ◽  
Xingtuan Yang ◽  
Shengyao Jiang

Numerical simulation is performed to investigate the pressure distribution of helium gas under high pressure and high temperature for 10 MW High Temperature Gas-Cooled Reactor (HTGR-10). Experimental studies are first conducted on a self-built test system to investigate the static pressure distribution of a 90° elbow and validate the credibility of the computational approach. The 90° elbow is designed and manufactured geometrically the same as HTGR-10. Based on the experimental data, comparison of static pressure of inner wall and outer wall of 90° elbow with numerical results is carried out to verify the numerical approach. With high agreement between experimental results and numerical results of water flowing through 90° elbow, flow characteristics of helium gas under high pressure and high temperature are investigated on the confirmed numerical approach for flow measurement. And wall pressure distribution of eight cross sections of 90° elbow is given in detail to represent the entire region of the elbow.


2011 ◽  
Vol 32 (6) ◽  
pp. 1111-1124 ◽  
Author(s):  
Elin Yusibani ◽  
Yosuke Nagahama ◽  
Masamichi Kohno ◽  
Yasuyuki Takata ◽  
Peter L. Woodfield ◽  
...  

Author(s):  
E. F. Koch

Because of the extremely rigid lattice structure of diamond, generating new dislocations or moving existing dislocations in diamond by applying mechanical stress at ambient temperature is very difficult. Analysis of portions of diamonds deformed under bending stress at elevated temperature has shown that diamond deforms plastically under suitable conditions and that its primary slip systems are on the ﹛111﹜ planes. Plastic deformation in diamond is more commonly observed during the high temperature - high pressure sintering process used to make diamond compacts. The pressure and temperature conditions in the sintering presses are sufficiently high that many diamond grains in the sintered compact show deformed microtructures.In this report commercially available polycrystalline diamond discs for rock cutting applications were analyzed to study the deformation substructures in the diamond grains using transmission electron microscopy. An individual diamond particle can be plastically deformed in a high pressure apparatus at high temperature, but it is nearly impossible to prepare such a particle for TEM observation, since any medium in which the diamond is mounted wears away faster than the diamond during ion milling and the diamond is lost.


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