How Molecular Modelling Tools Can Help …
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120. Costello JM, Bowden ST (1959) The temperature variation of orthobaric density difference in
liquid-vapour systems: V. Amines. Recueil des Travaux Chimiques des Pays-Bas 78(6):391–
403
121. Wolff H, Shadiakhy A (1983) The vapour-pressure behaviour and the association of isomeric
propylamines and n-deuteriopropylamines in mixtures with n-hexane. Fluid Phase Equilib
11(3):267–287
122. Antosik M, Gałka M, Malanowski SK (2004) Vapor−liquid equilibrium for acetonitrile +
propanenitrile and 1-pentanamine + 1-methoxy-2-propanol. J Chem Eng Data 49(1):11–17
123. MacDowell N, Llovell F, Adjiman CS, Jackson G, Galindo A (2010) Modeling the fluid phase
behavior of carbon dioxide in aqueous solutions of monoethanolamine using transferable
parameters with the SAFT-VR approach. Ind Eng Chem Res 49:1883–1899
124. Lloret JO, Vega LF, Llovell F (2017) A consistent and transferable thermodynamic model to
accurately describe CO 2 capture with monoethanolamine. J CO 2 Util 21:521–533
125. Pereira LMC, Llovell F, Vega LF (2018) Thermodynamic characterisation of aqueous alkanolamine and amine solutions for acid gas processing by transferable molecular models. Appl
Energy 222:687–703
126. Cahn JW, Hilliard JE (1958) Free energy of a nonuniform system. I. Interfacial free energy.
J Chem Phys 28(2):258–267
127. Touhara H, Okazaki S, Okino F, Tanaka H, Ikari K, Nakanishi K (1982) Thermodynamic
properties of aqueous mixtures of hydrophilic compounds 2. Aminoethanol and its methyl
derivatives. J Chem Thermodyn 14(2):145–156
128. Nath A, Bender E (1983) Isothermal vapor-liquid equilibrium of binary and ternary mixtures
containing alcohol, alkanolamine, and water with a new static device. J Chem Eng Data
28(4):370–375
129. Tochigi K, Akimoto K, Ochi K, Liu F, Kawase Y (1999) Isothermal vapor−liquid equilibria
for water + 2-aminoethanol + dimethyl sulfoxide and its constituent three binary systems. J
Chem Eng Data 44(3):588–590
130. Samanta A, Bandyopadhyay SS (2006) Density and viscosity of aqueous solutions of piperazine and (2-amino-2-methyl-1-propanol + piperazine) from 298 to 333 K. J Chem Eng Data
51(2):467–470
131. Xu S, Otto FD, Mather AE (1991) Physical properties of aqueous AMP solutions. J Chem
Eng Data 36(1):71–75
132. Rinker EB, Oelschlager DW, Colussi AT, Henry KR, Sandall OC (1994) Viscosity, density,
and surface tension of binary mixtures of water and N-methyldiethanolamine and water and
diethanolamine and tertiary mixtures of these amines with water over the temperature range
20–100°C. J Chem Eng Data 39(2):392–395
133. Li MH, Shen KP (1992) Densities and solubilities of solutions of carbon dioxide in water +
monoethanolamine + N-methyldiethanolamine. J Chem Eng Data 37(3):288–290
134. Cai Z, Xie R, Wu Z (1996) Binary isobaric vapor−liquid equilibria of ethanolamines + water.
J Chem Eng Data 41(5):1101–1103
135. Voutsas E, Vrachnos A, Magoulas K (2004) Measurement and thermodynamic modeling of
the phase equilibrium of aqueous N-methyldiethanolamine solutions. Fluid Phase Equilib
224(2):193–197
136. McLees JA (2006) Vapor-liquid equilibrium of monoethanolamine/piperazine/water at 35–
70 °C. MSc thesis. The Univesity of Texas at Austin, USA
137. Hsu C-H, Li M-H (1997) Densities of aqueous blended amines. J Chem Eng Data 42(3):502–
507
138. Li M-H, Lie Y-C (1994) Densities and Viscosities of Solutions of Monoethanolamine + Nmethyldiethanolamine + Water and Monoethanolamine + 2-Amino-2-methyl-1-propanol +
Water. J Chem Eng Data 39(3):444–447
139. Sandall OC (2002) Kinetics of sulfur species—hydrocarbon—aqueous amine systems. Gas
Processors Association, Project 962, RR-182
140. Murshid G, Shariff AM, Keong LK, Bustam MA (2011) Physical properties of aqueous
solutions of piperazine and (2-amino-2-methyl-1-propanol + piperazine) from (298.15 to
333.15) K. J Chem Eng Data 56(5):2660–2663
217
120. Costello JM, Bowden ST (1959) The temperature variation of orthobaric density difference in
liquid-vapour systems: V. Amines. Recueil des Travaux Chimiques des Pays-Bas 78(6):391–
403
121. Wolff H, Shadiakhy A (1983) The vapour-pressure behaviour and the association of isomeric
propylamines and n-deuteriopropylamines in mixtures with n-hexane. Fluid Phase Equilib
11(3):267–287
122. Antosik M, Gałka M, Malanowski SK (2004) Vapor−liquid equilibrium for acetonitrile +
propanenitrile and 1-pentanamine + 1-methoxy-2-propanol. J Chem Eng Data 49(1):11–17
123. MacDowell N, Llovell F, Adjiman CS, Jackson G, Galindo A (2010) Modeling the fluid phase
behavior of carbon dioxide in aqueous solutions of monoethanolamine using transferable
parameters with the SAFT-VR approach. Ind Eng Chem Res 49:1883–1899
124. Lloret JO, Vega LF, Llovell F (2017) A consistent and transferable thermodynamic model to
accurately describe CO 2 capture with monoethanolamine. J CO 2 Util 21:521–533
125. Pereira LMC, Llovell F, Vega LF (2018) Thermodynamic characterisation of aqueous alkanolamine and amine solutions for acid gas processing by transferable molecular models. Appl
Energy 222:687–703
126. Cahn JW, Hilliard JE (1958) Free energy of a nonuniform system. I. Interfacial free energy.
J Chem Phys 28(2):258–267
127. Touhara H, Okazaki S, Okino F, Tanaka H, Ikari K, Nakanishi K (1982) Thermodynamic
properties of aqueous mixtures of hydrophilic compounds 2. Aminoethanol and its methyl
derivatives. J Chem Thermodyn 14(2):145–156
128. Nath A, Bender E (1983) Isothermal vapor-liquid equilibrium of binary and ternary mixtures
containing alcohol, alkanolamine, and water with a new static device. J Chem Eng Data
28(4):370–375
129. Tochigi K, Akimoto K, Ochi K, Liu F, Kawase Y (1999) Isothermal vapor−liquid equilibria
for water + 2-aminoethanol + dimethyl sulfoxide and its constituent three binary systems. J
Chem Eng Data 44(3):588–590
130. Samanta A, Bandyopadhyay SS (2006) Density and viscosity of aqueous solutions of piperazine and (2-amino-2-methyl-1-propanol + piperazine) from 298 to 333 K. J Chem Eng Data
51(2):467–470
131. Xu S, Otto FD, Mather AE (1991) Physical properties of aqueous AMP solutions. J Chem
Eng Data 36(1):71–75
132. Rinker EB, Oelschlager DW, Colussi AT, Henry KR, Sandall OC (1994) Viscosity, density,
and surface tension of binary mixtures of water and N-methyldiethanolamine and water and
diethanolamine and tertiary mixtures of these amines with water over the temperature range
20–100°C. J Chem Eng Data 39(2):392–395
133. Li MH, Shen KP (1992) Densities and solubilities of solutions of carbon dioxide in water +
monoethanolamine + N-methyldiethanolamine. J Chem Eng Data 37(3):288–290
134. Cai Z, Xie R, Wu Z (1996) Binary isobaric vapor−liquid equilibria of ethanolamines + water.
J Chem Eng Data 41(5):1101–1103
135. Voutsas E, Vrachnos A, Magoulas K (2004) Measurement and thermodynamic modeling of
the phase equilibrium of aqueous N-methyldiethanolamine solutions. Fluid Phase Equilib
224(2):193–197
136. McLees JA (2006) Vapor-liquid equilibrium of monoethanolamine/piperazine/water at 35–
70 °C. MSc thesis. The Univesity of Texas at Austin, USA
137. Hsu C-H, Li M-H (1997) Densities of aqueous blended amines. J Chem Eng Data 42(3):502–
507
138. Li M-H, Lie Y-C (1994) Densities and Viscosities of Solutions of Monoethanolamine + Nmethyldiethanolamine + Water and Monoethanolamine + 2-Amino-2-methyl-1-propanol +
Water. J Chem Eng Data 39(3):444–447
139. Sandall OC (2002) Kinetics of sulfur species—hydrocarbon—aqueous amine systems. Gas
Processors Association, Project 962, RR-182
140. Murshid G, Shariff AM, Keong LK, Bustam MA (2011) Physical properties of aqueous
solutions of piperazine and (2-amino-2-methyl-1-propanol + piperazine) from (298.15 to
333.15) K. J Chem Eng Data 56(5):2660–2663
