thermodynamic equation
Recently Published Documents


TOTAL DOCUMENTS

71
(FIVE YEARS 3)

H-INDEX

13
(FIVE YEARS 1)

Author(s):  
Olaf Hellmuth ◽  
Rainer Feistel ◽  
Thomas Foken

AbstractThe differences between one classical and three state-of-the-art formulations of the mass density of humid air were quantified. Here, we present both the calculi for direct determination of the humid-air mass density employing the virial form of the thermodynamic equation of state, and a sufficiently accurate look-up-table for the quick-look determination of the humid-air mass density, which is based on the advanced Thermodynamic Equation of Seawater 2010.


Materials ◽  
2021 ◽  
Vol 14 (18) ◽  
pp. 5293
Author(s):  
Emil Sasimowski ◽  
Łukasz Majewski ◽  
Tomasz Jachowicz ◽  
Michał Sąsiadek

This paper presents the assumptions of a thermodynamic equation of state for polymers according to the Renner model. The experiments involved extruding a biocomposite based on poly(butylene succinate) that was filled with ground wheat bran with its size not exceeding 200 μm. The biocomposite was produced in pellet form with three different contents by weight of wheat bran, i.e., 10%, 30% and 50%. All specimens were examined for their thermodynamic p-v-T characteristics. Taking advantage of the SimFit module of Cadmould 3D-F, experimental results were used to determine the coefficients of thermodynamic equation of state for the tested biocomposite according to the Renner model. The coefficients were then used to calculate transition temperature and to create diagrams illustrating the relationship between pressure, temperature and specific volume for the tested biocomposite. The obtained results can serve as a basis for assessing the suitability of the biocomposite for injection molding, selecting technological parameters of this process, as well as for analyzing shrinkage and defects of injection-molded parts.


2017 ◽  
Vol 19 (24) ◽  
pp. 15821-15832 ◽  
Author(s):  
Frédéric Aitken ◽  
Ferdinand Volino ◽  
Luis Guillermo Mendoza-Luna ◽  
Klaus von Haeften ◽  
Jussi Eloranta

Electron mobility in superfluid helium is modeled between 0.1 and 2.2 K by a van der Waals-type thermodynamic equation of state, which relates the free volume of solvated electrons to temperature, density, and phase dependent internal pressure.


Daxue Huaxue ◽  
2016 ◽  
Vol 31 (7) ◽  
pp. 80-82
Author(s):  
Qi YANG ◽  
◽  
San-Ping CHEN ◽  
Yong-Qiang XUE ◽  
Sheng-Li GAO ◽  
...  

Sign in / Sign up

Export Citation Format

Share Document