Babatunde A. Bamgbade
Virginia Commonwealth University
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Featured researches published by Babatunde A. Bamgbade.
Journal of Physical Chemistry B | 2013
Yue Wu; Babatunde A. Bamgbade; Ward A. Burgess; Deepak Tapriyal; Hseen O. Baled; Robert M. Enick; Mark A. McHugh
The cis and trans conformation of a branched cyclic hydrocarbon affects the packing and, hence, the density, exhibited by that compound. Reported here are density data for branched cyclohexane (C6) compounds including methylcyclohexane, ethylcyclohexane (ethylcC6), cis-1,2-dimethylcyclohexane (cis-1,2), cis-1,4-dimethylcyclohexane (cis-1,4), and trans-1,4-dimethylcyclohexane (trans-1,4) determined at temperatures up to 525 K and pressures up to 275 MPa. Of the four branched C6 isomers, cis-1,2 exhibits the largest densities and the smallest densities are exhibited by trans-1,4. The densities are modeled with the Peng-Robinson (PR) equation of state (EoS), the high-temperature, high-pressure, volume-translated (HTHP VT) PREoS, and the perturbed chain, statistical associating fluid theory (PC-SAFT) EoS. Model calculations highlight the capability of these equations to account for the different densities observed for the four isomers investigated in this study. The HTHP VT-PREoS provides modest improvements over the PREoS, but neither cubic EoS is capable of accounting for the effect of isomer structural differences on the observed densities. The PC-SAFT EoS, with pure component parameters from the literature or from a group contribution method, provides improved density predictions relative to those obtained with the PREoS or HTHP VT-PREoS. However, the PC-SAFT EoS, with either set of parameters, also cannot fully account for the effect of the C6 isomer structure on the resultant density.
Fluid Phase Equilibria | 2011
Yue Wu; Babatunde A. Bamgbade; Kun Liu; Mark A. McHugh; Hseen O. Baled; Robert M. Enick; Ward A. Burgess; Deepak Tapriyal; Bryan D. Morreale
Fluid Phase Equilibria | 2012
Babatunde A. Bamgbade; Yue Wu; Ward A. Burgess; Mark A. McHugh
Fluid Phase Equilibria | 2013
Ward A. Burgess; Deepak Tapriyal; Bryan D. Morreale; Yee Soong; Hseen O. Baled; Robert M. Enick; Yue Wu; Babatunde A. Bamgbade; Mark A. McHugh
International Journal of Thermophysics | 2013
Hseen O. Baled; Deepak Tapriyal; Bryan D. Morreale; Yee Soong; Isaac K. Gamwo; Val Krukonis; Babatunde A. Bamgbade; Yue Wu; Mark A. McHugh; Ward A. Burgess; Robert M. Enick
The Journal of Chemical Thermodynamics | 2014
Hseen O. Baled; Dazun Xing; Harrison Katz; Deepak Tapriyal; Isaac K. Gamwo; Yee Soong; Babatunde A. Bamgbade; Yue Wu; Kun Liu; Mark A. McHugh; Robert M. Enick
The Journal of Chemical Thermodynamics | 2013
Babatunde A. Bamgbade; Yue Wu; Hseen O. Baled; Robert M. Enick; Ward A. Burgess; Deepak Tapriyal; Mark A. McHugh
Industrial & Engineering Chemistry Research | 2015
Babatunde A. Bamgbade; Yue Wu; Ward A. Burgess; Deepak Tapriyal; Isaac K. Gamwo; Hseen O. Baled; Robert M. Enick; Mark A. McHugh
Industrial & Engineering Chemistry Research | 2013
Yue Wu; Babatunde A. Bamgbade; Hseen O. Baled; Robert M. Enick; Ward A. Burgess; Deepak Tapriyal; Mark A. McHugh
Fuel | 2013
Yue Wu; Kun Liu; Babatunde A. Bamgbade; Mark A. McHugh