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Farid Brahim Belaribi - One of the best experts on this subject based on the ideXlab platform.
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densities and excess molar volumes of the ternary system 1 4 dioxane 2 propanol 1 1 2 2 tetrachloroethane at t 288 15 318 15 k and at atmospheric pressure experimental measurements and prigogine flory patterson modeling
Journal of Chemical & Engineering Data, 2019Co-Authors: Houda Benabida, Christophe Coquelet, Farid Brahim BelaribiAbstract:Excess molar volumes for 1,4-dioxane + 2-propanol + 1,1,2,2-tetrachloroethane ternary mixture and for the constituent binaries were determined from density measurements over the entire composition ...
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densities and excess molar volumes of the ternary system 1 4 dioxane 2 propanol 1 1 2 2 tetrachloroethane at t 288 15 318 15 k and at atmospheric pressure experimental measurements and prigogine flory patterson modeling
Journal of Chemical & Engineering Data, 2019Co-Authors: Houda Benabida, Christophe Coquelet, Farid Brahim BelaribiAbstract:Excess molar volumes for 1,4-dioxane + 2-propanol + 1,1,2,2-tetrachloroethane ternary mixture and for the constituent binaries were determined from density measurements over the entire composition range at four temperatures between 288.15 and 318.15 K and at atmospheric pressure. The ether-containing binary mixtures present a positive excess molar volume, VE, with alkanol and negative VE values with chloroalkane over the whole composition and working temperature ranges. As the temperature increases, the VE magnitude increases for 1,4-dioxane + 2-propanol, whereas it decreases for 1,4-dioxane + 1,1,2,2-tetrachloroethane. For 2-propanol + 1,1,2,2-tetrachloroethane mixture, sigmoidal–VE curves are observed and the VE increases as the temperature increases. Sigmoidal–V123E curves are observed also for 1,4-dioxane + 2-propanol + 1,1,2,2-tetrachloroethane ternary mixture. The equations of Redlich–Kister and Cibulka were used to fit the experimental excess molar volume data, for the investigated binary and terna...
Houda Benabida - One of the best experts on this subject based on the ideXlab platform.
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densities and excess molar volumes of the ternary system 1 4 dioxane 2 propanol 1 1 2 2 tetrachloroethane at t 288 15 318 15 k and at atmospheric pressure experimental measurements and prigogine flory patterson modeling
Journal of Chemical & Engineering Data, 2019Co-Authors: Houda Benabida, Christophe Coquelet, Farid Brahim BelaribiAbstract:Excess molar volumes for 1,4-dioxane + 2-propanol + 1,1,2,2-tetrachloroethane ternary mixture and for the constituent binaries were determined from density measurements over the entire composition ...
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densities and excess molar volumes of the ternary system 1 4 dioxane 2 propanol 1 1 2 2 tetrachloroethane at t 288 15 318 15 k and at atmospheric pressure experimental measurements and prigogine flory patterson modeling
Journal of Chemical & Engineering Data, 2019Co-Authors: Houda Benabida, Christophe Coquelet, Farid Brahim BelaribiAbstract:Excess molar volumes for 1,4-dioxane + 2-propanol + 1,1,2,2-tetrachloroethane ternary mixture and for the constituent binaries were determined from density measurements over the entire composition range at four temperatures between 288.15 and 318.15 K and at atmospheric pressure. The ether-containing binary mixtures present a positive excess molar volume, VE, with alkanol and negative VE values with chloroalkane over the whole composition and working temperature ranges. As the temperature increases, the VE magnitude increases for 1,4-dioxane + 2-propanol, whereas it decreases for 1,4-dioxane + 1,1,2,2-tetrachloroethane. For 2-propanol + 1,1,2,2-tetrachloroethane mixture, sigmoidal–VE curves are observed and the VE increases as the temperature increases. Sigmoidal–V123E curves are observed also for 1,4-dioxane + 2-propanol + 1,1,2,2-tetrachloroethane ternary mixture. The equations of Redlich–Kister and Cibulka were used to fit the experimental excess molar volume data, for the investigated binary and terna...
Christophe Coquelet - One of the best experts on this subject based on the ideXlab platform.
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densities and excess molar volumes of the ternary system 1 4 dioxane 2 propanol 1 1 2 2 tetrachloroethane at t 288 15 318 15 k and at atmospheric pressure experimental measurements and prigogine flory patterson modeling
Journal of Chemical & Engineering Data, 2019Co-Authors: Houda Benabida, Christophe Coquelet, Farid Brahim BelaribiAbstract:Excess molar volumes for 1,4-dioxane + 2-propanol + 1,1,2,2-tetrachloroethane ternary mixture and for the constituent binaries were determined from density measurements over the entire composition ...
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densities and excess molar volumes of the ternary system 1 4 dioxane 2 propanol 1 1 2 2 tetrachloroethane at t 288 15 318 15 k and at atmospheric pressure experimental measurements and prigogine flory patterson modeling
Journal of Chemical & Engineering Data, 2019Co-Authors: Houda Benabida, Christophe Coquelet, Farid Brahim BelaribiAbstract:Excess molar volumes for 1,4-dioxane + 2-propanol + 1,1,2,2-tetrachloroethane ternary mixture and for the constituent binaries were determined from density measurements over the entire composition range at four temperatures between 288.15 and 318.15 K and at atmospheric pressure. The ether-containing binary mixtures present a positive excess molar volume, VE, with alkanol and negative VE values with chloroalkane over the whole composition and working temperature ranges. As the temperature increases, the VE magnitude increases for 1,4-dioxane + 2-propanol, whereas it decreases for 1,4-dioxane + 1,1,2,2-tetrachloroethane. For 2-propanol + 1,1,2,2-tetrachloroethane mixture, sigmoidal–VE curves are observed and the VE increases as the temperature increases. Sigmoidal–V123E curves are observed also for 1,4-dioxane + 2-propanol + 1,1,2,2-tetrachloroethane ternary mixture. The equations of Redlich–Kister and Cibulka were used to fit the experimental excess molar volume data, for the investigated binary and terna...
D H L Prasad - One of the best experts on this subject based on the ideXlab platform.
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boiling temperature measurements on the binary mixtures formed by acetonitrile with some chloroethanes and chloroethylenes at 94 6 kpa
Fluid Phase Equilibria, 2002Co-Authors: T Vittal E Prasad, Sravan A Kumar, D H L PrasadAbstract:Boiling temperatures at 94.6 kPa, over the entire composition range are measured for the binary mixtures, formed by acetonitrile with 1,2,-dichloroethane, 1,1,1-trichloroethane, 1,1,2,2-tetrachloroethane, trichloroethylene and tetrachloroethylene, making use of a Swietoslawski type ebulliometer. The liquid phase composition versus temperature measurements are found to be well represented by the Wilson model.
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density and viscosity of methanol 1 2 dichloroethane methanol 1 1 1 trichloro ethane and methanol 1 1 2 2 tetrachloroethane mixtures
Physics and Chemistry of Liquids, 1996Co-Authors: Jaya D Prakash, Venkateshwara M Rao, Sree D Lakshmi, D H L PrasadAbstract:Abstract Density and viscosity measurements on the binary mixtures of methanol + 1,2-dichloroethane, methanol + 1,1,1-trichloroethane, and methanol + 1,1,2,2-tetrachloroethane binary mixtures at 303.15, 313.15 and 323.15 K are reported. The representation of the data by simple mixing rules is also studied.
Sukesh Chander Sharma - One of the best experts on this subject based on the ideXlab platform.
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excess molar volumes of dibutyl ether trichloromethane or Tetrachloromethane or 1 2 dichloroethane or 1 1 2 trichloroethane or 1 1 2 2 tetrachloroethane or pentachloroethane at the temperature 303 15 k
The Journal of Chemical Thermodynamics, 1993Co-Authors: Jasbir Singh, I.m. Joshi, Sukesh Chander SharmaAbstract:Abstract Excess molar volumes V E m are reported for (dibutyl ether + trichloromethane or Tetrachloromethane or 1,2-dichloroethane or 1,1,2-trichloroethane or 1,1,2,2-tetrachloroethane or pentachloroethane) at the temperature 303.15 K over the entire composition range by direct dilatometry. The curves of V E m against mole fraction x are negative at all x for all the mixtures except for that with 1,2-dichloroethane in which case V E m is positive. The excess volumes decrease in the sequences: 1,2-dichloroethane > Tetrachloromethane > 1,1,2-trichloroethane > trichloromethane > 1,1,2,2-tetrachloroethane > pentachloroethane.