2022 Swanson School Summary of Faculty Research

Page 46

CHEMICAL & PETROLEUM ENGINEERING

Robert M. Enick, PhD Bayer Professor Vice Chair for Research, ChE & PetE NETL Researcher

807 Benedum Hall | 3700 O’Hara Street | Pittsburgh, PA 15261 P:412-624-9649

C:412-277-0154 rme@pitt.edu

High Pressure Phase Behavior and Viscosity Related to Enhanced Oil Recovery, Carbon Capture and Supercritical Fluid Technology Our research lab focuses on the thermodynamic and transport properties of high pressure systems. For example, we are equipped with a high pressure (10,000 psi), low-high temperature (-4 to 356oF), windowed, agitated, invertible, variable-volume cell that allows direct observation of the phase behavior of gases, liquids and solids. This enables us to determine the optimal conditions for high pressure processes. For example, we can determine the pressure required for a solvent such as CO2 or propane to become miscible with a crude oil, or what types of polymeric liquids are best suited for selectively capturing CO2 from a high pressure that also contains water vapor and hydrogen, or the best temperature-pressure conditions needed to remove a contaminant from a commercial motor oil product using supercritical CO2. Our lab is also equipped with the world’s highest temperaturepressure (500oF - 40000 psi) rolling ball viscometer, which is mounted on tilting tables. This apparatus allows us to precisely measure the viscosity of hydrocarbons (e.g. hexane, decane) at extreme conditions that are representative of those found in the deepest petroleum-producing formations in the world. We also have a unique windowed, high pressure reactor equipped with a high speed (6000 rpm) emulsification mixer for particle/fluid processing studies.

Design of CO2-soluble and CO2-philic Compounds for Chemical and Petroleum Engineering Applications Dr. Enick and Dr. Beckman have teamed together to design, synthesize, purify, characterize and evaluate novel compounds that have been engineered to improve the performance of high pressure CO2. For example, supercritical CO2 (T > 88oF) is used extensively to recover crude oil from underground layers of porous sandstone or carbonate rock in the Unites States. Although CO2 is a good solvent for oil recovery, its viscosity is so low that it tends to "finger" from the injection well through the rock towards the producing wells, rather than uniformly sweeping the porous volume of the rock layer. Therefore Enick and Beckman are designing high molecular weight polymers

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and small associating molecules that can not only dissolve in dense CO2, but also (at very dilute concentrations of ~0.1wt%) increase the CO2 viscosity to a value that is comparable to the oil viscosity. Our lab has also identified and designed liquid polymeric solvents that can be used to selectively remove CO2 (but not water vapor or hydrogen) from a high temperature, high pressure stream in an IGCC power plant (a novel high efficiency power plant). These polymers (e.g. silicone oil) interact favorably with CO2, but have little or no affinity for water or hydrogen. DEPARTMENT OF CHEMICAL AND PETROLEUM ENGINEERING


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Xiayun (Sharon) Zhao, PhD

37min
pages 133-154

Jörg M.K. Wiezorek, PhD

2min
page 131

Wei Xiong, PhD, D.Eng

1min
page 132

Guofeng Wang, PhD

2min
page 130

Jeffrey Vipperman, PhD

2min
page 129

Albert C. To, PhD

1min
page 128

Patrick Smolinski, PhD

1min
page 127

Inanc Senocak, PhD

1min
page 126

David Schmidt, PhD

2min
page 125

Ian Nettleship, PhD

2min
page 124

Scott X. Mao, PhD

2min
page 123

Jung-Kun Lee, PhD

3min
page 122

Tevis D. B. Jacobs, PhD

1min
page 121

William W. Clark, PhD

2min
page 118

Daniel G. Cole, PhD, PE

2min
page 119

Katherine Hornbostel, PhD

1min
page 120

Minking K. Chyu, PhD

2min
page 117

Heng Ban, PhD, PE

2min
page 115

Hessam Babaee, PhD

2min
page 114

Michael D. Sherwin, PhD, P.E

2min
pages 111-113

Markus Chmielus, PhD

1min
page 116

M. Ravi Shankar, PhD

2min
page 110

Amin Rahimian, PhD

1min
page 108

Jayant Rajgopal, PhD, P.E

2min
page 109

Lisa M. Maillart, PhD

2min
page 107

Paul W. Leu, PhD

1min
page 106

Daniel R. Jiang, PhD

1min
page 105

Oliver Hinder, PhD

2min
page 104

Joel M. Haight, PhD, P.E., CIH, CSP

2min
page 103

Renee M. Clark, PhD

2min
page 102

Karen M. Bursic, PhD

1min
page 100

Youngjae Chun, PhD

3min
page 101

Mary Besterfield-Sacre, PhD

2min
page 99

Minhee Yun, PhD

2min
pages 96-97

Mostafa Bedewy, PhD

1min
page 98

Nathan Youngblood, PhD

2min
page 95

Jun Yang, PhD

3min
page 94

Gregory F. Reed, PhD

3min
page 91

Feng Xiong, PhD

2min
page 93

Inhee Lee, PhD

2min
page 88

Guangyong Li, PhD

2min
page 89

Alexis Kwasinski, PhD

2min
page 87

Hong Koo Kim, PhD

2min
page 86

Alex K. Jones, PhD

3min
page 85

Brandon M. Grainger, PhD

2min
page 83

Alan D. George, PhD, FIEEE

2min
page 82

Masoud Barati, PhD

2min
page 81

Mai Abdelhakim, PhD

1min
page 80

Meng Wang, PhD

1min
pages 78-79

Radisav Vidic, PhD

2min
page 77

Julie M. Vandenbossche, PhD, PE

2min
page 76

Aleksandar Stevanovic, PhD, P.E., FASCE

2min
page 75

Piervincenzo Rizzo, PhD

2min
page 74

Xu Liang, PhD

2min
page 71

Jeen-Shang Lin, PhD, P.E

2min
page 72

Carla Ng, PhD

2min
page 73

Sarah Haig, PhD

2min
page 69

Lei Fang, PhD

3min
page 66

Andrew P. Bunger, PhD

2min
page 65

Alessandro Fascetti, PhD

2min
page 67

Melissa Bilec, PhD

2min
page 64

Judith C. Yang, PhD

2min
pages 61-63

Götz Veser, PhD

2min
page 59

Christopher E. Wilmer, PhD

1min
page 60

Sachin S. Velankar, PhD

2min
page 58

Tagbo Niepa, PhD

2min
page 55

Jason E. Shoemaker, PhD

1min
page 57

Giannis Mpourmpakis, PhD

2min
page 54

Badie Morsi, PhD

3min
page 53

James R. McKone, PhD

1min
page 52

Lei Li, PhD

1min
page 50

Steve R. Little, PhD

2min
page 51

John A. Keith, PhD

2min
page 49

J. Karl Johnson, PhD

2min
page 48

Susan Fullerton, PhD

2min
page 47

Robert M. Enick, PhD

2min
page 46

Eric J. Beckman, PhD

2min
page 45

Ipsita Banerjee, PhD

2min
page 44

Ioannis Zervantonakis, PhD

2min
pages 41-43

Savio L-Y. Woo, PhD, D.Sc., D.Eng

2min
page 40

Justin S. Weinbaum, PhD

1min
page 39

Jonathan Vande Geest, PhD

1min
page 37

David A. Vorp, PhD

2min
page 38

Sanjeev G. Shroff, PhD

2min
page 34

Gelsy Torres-Oviedo, PhD

3min
page 36

George Stetten, MD, PhD

2min
page 35

Joseph Thomas Samosky, PhD

2min
page 33

Warren C. Ruder, PhD

1min
page 32

Partha Roy, PhD

2min
page 31

Prashant N. Kumta, PhD

2min
page 27

Spandan Maiti, PhD

2min
page 29

Mark Redfern, PhD

2min
page 30

Patrick J. Loughlin, PhD

2min
page 28

Mangesh Kulkarni, PhD

1min
page 26

Takashi “TK” Kozai, PhD

2min
page 25

Katrina M. Knight, PhD

2min
page 24

Bistra Iordanova, PhD

1min
page 23

Alan D. Hirschman, PhD

1min
page 21

Mark Gartner, PhD

1min
page 20

William Federspiel, PhD

2min
page 18

Neeraj J. Gandhi, PhD

2min
page 19

Tamer S. Ibrahim, PhD

5min
page 22

Richard E. Debski, PhD

1min
page 17

Lance A. Davidson, PhD

2min
page 16

Rakié Cham, PhD

2min
page 13

Steven Abramowitch, PhD

2min
page 8

Moni Kanchan Datta, PhD

2min
page 15

Bryan N. Brown, PhD

1min
page 12

Kurt E. Beschorner, PhD

2min
page 10

Harvey Borovetz, PhD

1min
page 11

Aaron Batista, PhD

4min
page 9

Tracy Cui, PhD

2min
page 14
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