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  1. Journal of Materials Engineering and Performance
  2. Journal of Materials Engineering and Performance : Volume 14
  3. Journal of Materials Engineering and Performance : Volume 14, Issue 3, June 2005
  4. Viscosity model for pure gases at atmospheric conditions
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Journal of Materials Engineering and Performance : Volume 26
Journal of Materials Engineering and Performance : Volume 25
Journal of Materials Engineering and Performance : Volume 24
Journal of Materials Engineering and Performance : Volume 23
Journal of Materials Engineering and Performance : Volume 22
Journal of Materials Engineering and Performance : Volume 21
Journal of Materials Engineering and Performance : Volume 20
Journal of Materials Engineering and Performance : Volume 19
Journal of Materials Engineering and Performance : Volume 18
Journal of Materials Engineering and Performance : Volume 17
Journal of Materials Engineering and Performance : Volume 16
Journal of Materials Engineering and Performance : Volume 15
Journal of Materials Engineering and Performance : Volume 14
Journal of Materials Engineering and Performance : Volume 14, Issue 6, December 2005
Journal of Materials Engineering and Performance : Volume 14, Issue 5, October 2005
Journal of Materials Engineering and Performance : Volume 14, Issue 4, August 2005
Journal of Materials Engineering and Performance : Volume 14, Issue 3, June 2005
U.S. program on materials technology for ultra-supercritical coal power plants
Machining cancellous bone prior to prosthetic implantation
Eutectic modification in a low-chromium white cast iron by a mixture of titanium, rare earths, and bismuth: Part II. effect on the wear behavior
Analysis of hard-facing appearance of specific powdered superalloys for PTA-coating processes
Partitioning of energy loss in glass-fiber-reinforced polymers under transverse loading
Effect of joint design on mechanical properties of AL7075 weldment
Evaluation of microstructure and electrochemical corrosion behavior of austenitic 316 stainless steel weld metals with varying chemical compositions
Negative effects of reactive sputtering in an industrial plasma nitriding
The effect of residual stresses induced by prestraining on fatigue life of notched specimens
Degradation behavior of Ni$_{3}$Al plasma-sprayed boiler tube steels in an energy generation system
Prediction and analysis of the aging properties of rapidly solidified Cu-Cr-Sn-Zn alloy through neural network
Effects of low-temperature aging on AISI 444 steel
Dimensional analysis in steel rod rolling for different types of grooves
Specific pressure in steel rod rolling with grooves
Viscosity model for pure gases at atmospheric conditions
Finite-element analysis on thermomechanical behavior of a marine propeller casting in the sand-casting process
Interaction analysis of the twin-roller strip-casting process and the implications for process control
Deformation behavior of a slab with width reduction in a hot mill
Journal of Materials Engineering and Performance : Volume 14, Issue 2, April 2005
Journal of Materials Engineering and Performance : Volume 14, Issue 1, February 2005
Journal of Materials Engineering and Performance : Volume 13
Journal of Materials Engineering and Performance : Volume 12
Journal of Materials Engineering and Performance : Volume 11
Journal of Materials Engineering and Performance : Volume 10
Journal of Materials Engineering and Performance : Volume 9
Journal of Materials Engineering and Performance : Volume 8
Journal of Materials Engineering and Performance : Volume 7
Journal of Materials Engineering and Performance : Volume 6

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Viscosity model for pure gases at atmospheric conditions

Content Provider Springer Nature Link
Author Miadonye, Adango McKenna, Tara M.
Copyright Year 2005
Abstract The production processes for petroleum gases use a broad range of simulation packages to reduce the capital, time, and cost associated with actual recovery and pipeline transportation. The viscosity model is an important component of these packages. In this study, two simple-to-use empirical models are presented for predicting the viscosity of petroleum gases: the three-parameter Yaws equation; and the correlation of Miadonye-Clyburn. New values were obtained for the constants in Yaws’ equation for various hydrocarbon gases. Alternatively, the Yaws equation has been extended to cover nonhydrocarbon gases, some for the first time, and new values were derived for the constants for these gases. The results obtained with the new constants were compared with the viscosity predictions from both the Yaws and the Miadonye-Clyburn correlations. For four petroleum gases and two nonhydrocarbon gases at temperatures from 100 to 1500 K, the models gave viscosity predictions with overall average absolute deviations of 0.30 and 0.75% for the Yaws correlation with new constants, and 1.17 and 2.7% for the Miadonye-Clyburn correlation for viscosity predictions based on one viscosity value. Both models are simple to incorporate in design and simulation packages, and are accurate within the limits of experimental errors for the viscosities of petroleum gases.
Starting Page 383
Ending Page 387
Page Count 5
File Format PDF
ISSN 10599495
Journal Journal of Materials Engineering and Performance
Volume Number 14
Issue Number 3
e-ISSN 15441024
Language English
Publisher Springer-Verlag
Publisher Date 2005-01-01
Publisher Place New York
Access Restriction One Nation One Subscription (ONOS)
Subject Keyword gas viscosity correlation hydrocarbons transport property of gas viscosity modeling Characterization and Evaluation of Materials Materials Science Tribology, Corrosion and Coatings Quality Control, Reliability, Safety and Risk Engineering Design
Content Type Text
Resource Type Article
Subject Mechanics of Materials Materials Science Mechanical Engineering
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